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Guide to Patagonia's Monsters & Mysterious beings

I have written a book on this intriguing subject which has just been published.
In this blog I will post excerpts and other interesting texts on this fascinating subject.

Austin Whittall


Showing posts with label mtDNA. Show all posts
Showing posts with label mtDNA. Show all posts

Saturday, February 21, 2026

Back Mutations are common & more frequent than previously stated


Reversions, also known as back mutations are considered rare in biology. Basically, what it means is an initial mutation in the geneome, reverses back to its original (wild-type) form through a second mutation that restores the base in the DNA sequence.


For example, a "chunk" of DNA could contain the following bases: ACGCTG and, a random, chance mutation replaces the cytosine (C) for an adenine (A) ACGATG and a second mutation restores (reverses) the original situation ACGCTG.


This has important consequences, first of all, if we look at the ancient sample and the most recent one, there is no way we will ever know that it mutated and reverse by back-mutating, (both have the same sequence: ACGATG so how can we know if there was a back and forth flip in between both samples?)... unless we find an sample of someone in the same line, or a parallel lineage with the first (derived) mutation, but not the reversion,which seems a very unlikely situation.


Assuming that all mutations are forward oriented and never reverse, may overlook mutations that were reversed. Since coalescence time and dates of lineage splits are based on mutations, if we overlook the reversions, we will miss out on the actual mutations (to and fro), counting zero when in fact there were two mutations.


So we will assume that mutation rates are lower than they really are by missing out these back-and-forth mutations.


If we overlook reversions we will assume there were only n mutations per a given amount of years, while there were actually m mutations: "n" that we see (for instance, there is a G instead of an A at a certain locus), and "p" mutations that flipped forth and another "p" that flipped back. n is therefore smaller than m; m = n+2p. So the mutation rate is higher than assumed.


However, the Neutral Theory of genetic evolution does not consider this alternative, it requires No back-mutations. Changes can only happen in one direction A → G. Which will never again flip back G → A, and No Recurrence there can't be multiple mutations at identical loci in different lineages.

Are they Common?


William Amos (2020) suggests that "back-mutations are far commoner than has been previously assumed" he adds that "Back-mutations are ‘silent' because they create the original ancestral allele, but can reasonably be assumed to occur about twice as often as triallelic SNPs are generated (two transitions are approximately twice as likely as one transition and one transversion). Triallelic SNPs are coded ‘MULTI-ALLELIC' rather than ‘SNP' in the 1000 genome data and are often ignored, but I counted 257,827 occurrences across all autosomes, implying over half a million sites carrying back-mutations. Moreover, this is probably an underestimate because the 1000 genomes data are low coverage and rely on extensive imputation which will often cause rare third alleles to go undetected. Equally, conservative curation will tend to remove third alleles that lack strong support. Note, triallelic sites are unlikely to be generated mainly by sequencing errors because only 1% of these sites carry a singleton as the rarest allele. This analysis is not intended to provide an accurate estimate of the back-mutation rate, but instead simply to demonstrate that large numbers of back-mutations do exist to the extent that models of evolution that rely on back-mutations occurring in appreciable numbers should not be dismissed a priori."


Research by Anke Fähnrich et al., (2023) on the North and Eastern African mtDNA shows that some mutations that serve as markers appear time and time again, the authors consider some as "Shared back mutations", others are simply repeat mutations. The paper shows them in a tree for "L0a1 and (b) L2a1" and clarifies that "We highlight with magenta, gray and turquoise boxes those variants that indicate that a different phylogenetic tree may better explain the samples from North and East Africa." These trees can be seen in the image below. The paper adds that "Shared back mutations (magenta) denote that parental haplotypes may be missing in PhyloTree. Mutations repeatedly observed in a subtree (gray) suggest that child haplogroups are missing. Variants that occur in multiple samples and differ from variants defining a parental haplogroup (turquoise) suggest that different variant combinations and haplogroup specifications may better explain North and East African mtDNA sequences". It also marks them with an "@" as "assumed back mutation or missing mutation". This goes to show that markers are shared across different haplogroups.


phylo tree mtDNA
Figure 10, haplo tree mtDNA L. Source

A similar situation was reported by Neil Howell, Joanna L Elson, D M Turnbull, and Corinna Herrnstadt (2004) who were investigating the oldest mtDNA haplogroups L0 and L2. Besides finding oddities in the trees, ages, etc., they noted multiple reversions: "The L0a outgroup sequence carries C alleles at nucleotides 16189 and 16192, whereas the L2a ancestral sequence is predicted to carry C and T, respectively, at these sites. The 16189 site subsequently undergoes mutation on four occasions (three forward and one reverse relative to the outgroup sequence), whereas the 16192 site undergoes reversion on five occasions. Thus, both sites appear to have relatively high rates of mutation, a result that has been observed in previous studies (Excoffier and Yang 1999; Meyer, Weiss, and von Haeseler 1999; Howelland Bogolin Smejkal 2000) and in the L2a networks of Salas et al. (2002)... The ancestral L2a sequence carries a C:T transitional nucleotide 16519, which undergoes reversion on three occasions. These results are not surprising and this site has long been recognized to have a high mutation rate."


This seems to define a "mutation hotspot", that I mentioned in a previous post (Laguna de los Pampas 10,000 BP remains in Argentina).



Patagonian Monsters - Cryptozoology, Myths & legends in Patagonia Copyright 2009-2026 by Austin Whittall © 

Friday, February 20, 2026

mtDNA variants and Natural Selection


The chance mutations that are fixed in the DNA of our mitochondria and accumulate there have been used to trace the spread of human beings across the globe. Passed on in a matrilineal form, we all receive the mtDNA from our mother's ovum. Our father's sperm does not carry any mitochondria. Randmo mutations gradually accumulate so they serve as markers in the mtDNA and specific markers define haplogroups.


A paper suggests that these random mutations are then shaped by the forces of Natural Selection. (D. Mishmar, E. Ruiz-Pesini, P. Golik, V. Macaulay, A.G. Clark, S. Hosseini,M. Brandon, K. Easley, E. Chen, M.D. Brown, R.I. Sukernik, A. Olckers, & D.C. Wallace, /2003) Natural selection shaped regional mtDNA variation in humans, Proc. Natl. Acad. Sci. U.S.A. 100 (1) 171-176, https://doi.org/10.1073/pnas.0136972100).


They note that although mutations arise in a random way in the mtDNA, as they have an effect on the mitochondria which produce the body's cells energy and regulate cellular metabolism by producing the energy-rich molecule adenosine triphosphate (ATP), they may be a target of natural selection. They state that "Natural selection shaped regional mtDNA variation in humans."


mitochondria
Mitochondria the body's powerhouse. Copyright © 2026 by Austin Whittall

Molecular clock affected


The fact that mutations are not neutral, and are acted upon by natural selection, implies that the assumptions on which the mtDNA molecular clock are based, are flawed. The paper warns: "If selection has played an important role in the radiation of human mtDNA lineages, then the rate of mtDNA molecular clock may not have been constant throughout human history. If this is the case, then conjectures about the timing of human migrations may need to be reassessed."


The molecular clock based on mtDNA is based on an axiom: genes accumulate new mutations in a clock-like manner, so knowing the rate at which mutations take place (i.e. 3 mutations per 10,000 years), and measuring the average amount of mutations that have appeared since a particular node on a phylogenetic tree (9 mutations), allows us to date the node: 30,000 years. And from there date other nodes based on the number of mutations and the mutation rate.


This is reasonable as long as the mutation rate is constant. But if it varies, then it will provide incorrect dates.


Positive selection could affect the mutation pattern similar and cause an acceleration in the mutation speed. (Further reading on the mtDNA clock: Eva-Liis Loogväi, Toomas Kivisild, Tõnu Margus, Richard Villems (2009))


mtDNA and Selection


After a long stasis in Africa where the L haplogroup is found, humans moved into Eurasia and two branches, or clades, M and N formed outside of Africa and comprise all the mtDNA diversity in the rest of the world. M and N are derived from the African haplogroup L3. And the split is supposed to have taken place around 55-70 kya, during the Out of Africa Event.


Interestingly, M is basically absent in the Middle East, yet it is found in Ethiopia, Southern Arabia and in India and East Asia, suggesting to some a Southern route of migration out of the Horn of Africa across Bab el Mandeb and Hormuz straits. However, a paper published in 2018 by Vicente M Cabrera, Patricia Marrero, Khaled K Abu-Amero, and Jose M Larruga, suggests that both M and N originated in Southeast Asia and migrated westwards. In the case of N haplogroup, it was believed to have formed in the area that links the Levant and Africa and that it appeared in humans taking a northern route out of Africa into Eurasia. But this paper suggests that N originated in Southeast Asia, and moved west across Asia towards Africa. The authors argue that "If one accepts that basal L3 lineages (M, N) evolved independently in southeastern Asia and not in Africa or near the borders of the African continent where the remaining L3 lineages expanded, one is confronted with the question of where the basal trunk of L3 evolved. A gravitating midpoint between eastern Africa and southeastern Asia would situate the origin of L3 in inner Asia."


The paper then states:


"L3 exited from Africa as a pre-L3 lineage that evolved as basal L3 in inner Asia. From there, it expanded, returning to Africa as well as expanding to southeastern Asia, giving rise to the African L3 branches in eastern Africa and the M and N L3 Eurasian branches in southeastern Asia, respectively. This model, which implies an earlier exit of modern humans out of Africa, has been tested against independent results from other disciplines...."


The paper includes the following maps as its Figure 1, and the caption reads: "Geographic origin and dispersion of mtDNA L haplogroups: a Sequential expansion of L haplogroups inside Africa and exit of the L3 precursor to Eurasia. b Return to Africa and expansion to Asia of basal L3 lineages with subsequent differentiation in both continents. The geographic ranges of Neanderthals, Denisovans and Erectus are estimates only."



The paper adds that the "early return and subsequent expansion inside Africa of carriers of L3... haplogroup might help explain, the Neanderthal introgression detected in the western African Yoruba and in northern African Tunisian Berbers." (see my recent post on Neanderthals in Africa).


The authors assume anatomically modern humans left Africa in an early migration 125 kya , met with Neanderthals in south-central Asia, admixed and as the climate worsened ~75kya, the humans moved west and returned to Africa (with the L3 variant with them and it diversified there), and they also moved east reaching SE Asia and China.


Selection and Diversification


Getting back to Mishmar et al., they argue that in Eurasia the M and N lineages spread across the continent in different lineages: A, C, D, and G. Which have a "striking regional variation, traditionally attributed to genetic drift. However, it is not easy to account for the fact that [these lineages] show a 5-fold enrichment from central Asia to Siberia". They argue that this enrichment is the result of natural selection acting as people left their traditional environment (warm, tropical, or temperate climates) and advanced into harsher and colder continental climates in Central and Northern Asia.


The researchers analyzed 104 complete mtDNA sequences from across the world and found that the African haplogroups more or less followed the neutral model, but American, European, Siberian and Asians didn't, they deviated from it. They found that the ATP6 gene, which is a "conserved" mtDNA protein had the highest variation in its amino acid sequences. "Conserved" means that it has remained mostly unchanged over the ages and among individuals and species because it has a low tolerance for mutations, because it is critical for cellular function. So, why would it present so many mutations?


To find out why, they compared the ratios of mutations for the ATP6 gene in different climate zones (arctic, tropical, and temperate) and found that it was highly variable in mtDNAs from the Arctic. Another mtDNA protein called cytochrome b which helps move electrons and create a proton gradient, essential for cellular energy production, was particularly variable in the temperate zones. Another protein, cytochrome oxidase I (or COX1), which also plays a vital role in electron transport, was more variable in the tropical areas. The authors concluded that "selection may have played a role in shaping human regional mtDNA variation and that one of the selective influences was climate."


They then downplay the effects of founder effects arguing as follows:


"..there are striking differences in the nature of the mtDNAs found in different geographic regions. Previously, these marked differences in mtDNA haplogroup distribution were attributed to founder effects, specifically the colonizing of new geographic regions by only a few immigrants that contributed a limited number of mtDNAs.
However, this model is difficult to reconcile with the fact that northeastern Africa harbors all of the African-specific mtDNA lineages as well as the progenitors of the Eurasia radiation, yet only two mtDNA lineages (macrohaplogroups M and N) left northeastern Africa to colonize all of Eurasia and also that there is a striking discontinuity in the frequency of haplogroups A, C, D, and G between central Asia and Siberia, regions that are contiguous over thousands of kilometers.
Rather than Eurasia and Siberia being colonized by a limited number of founders, it seems more likely that environmental factors enriched for certain mtDNA lineages as humans moved to the more northern latitudes.
Natural selection has been hypothesized to explain anomalies in the branch lengths of certain European and African mtDNA lineages.
"


However, a paper by Taku Amu and Martin Brand (2007), disagrees with this concept, and states that there were no differences between the mitochondrial energy management in Arctic or Tropical populations, and that the mutations which were expected to lower coupling efficiency leading to more heat generation in colder climates wasn't detected, and in fact, "Contrary to the predictions of this hypothesis, mitochondria from Arctic haplogroups had similar or even greater coupling efficiency than mitochondria from tropical haplogroups."


More recent research by Jukka Kiiskilä et al (2021) also notes that mtDNA variants are under natural selection and that different mtDNA haplogroups exert a different effect on the physical performance in athletes! the paper looked at Finnish military conscripts and reported that "Following a standard-dose training period, excellence in endurance performance was less frequent among subjects with haplogroups J or K than among subjects with non-JK haplogroups."


Takayuki Nishimura and Shigeki Watanuki (2014) studied mtDNA haplogroup D vs. non-D groups regarding body warmth, and found that "[Non shivering thermogenesis] NST was greater in winter, and that the D group exhibited greater NST than the non-D group during winter...no significant differences in rectal and skin temperatures were found between groups in either season. Therefore, it was supposed that mitochondrial DNA haplogroups had a greater effect on variation in energy expenditure involving NST than they had on insulative responses... individuals from the D group exhibited greater winter values of ΔVO2 than individuals from the non-D group." So, mtDNA haplogroup D subjects had higher oxygen uptake (ΔVO2), meaning their body was "burning" more oxygen but not shivering or increasing the temperature. This suggests an efficient use of energy to heat the core only, and it has a clear mtDNA haplogroup component to it.


Interestingly, Haplogroup D seems to enhance energy burn (without shivering), and without increasing external temperature. From an engineering point of view this is great, since the ΔT or temperature differential between a body and its surroundings impacts directly on the energy loss (Q) the body experiences: Q = U · A · ΔT (where "A" is the area that transfers heat loss, and "U" is a heat transfer coefficient). So this is why the study didn't notice differences in skin or rectal temperatures.


Closing Comments


If random mtDNA mutations somehow provide an adaptative advantage (efficient energy use to keep warm in cold climates), and natural selection acts upon it, then the "neutral" theory is mistaken, and the molecular clock used to calculate dates is also wrong.


Patagonian Monsters - Cryptozoology, Myths & legends in Patagonia Copyright 2009-2026 by Austin Whittall © 

Tuesday, February 3, 2026

mtDNA F as another very rare founding lineage in America


The article New Native American Mitochondrial DNA Haplogroups by DNAeXplained published on March 2, 2017, describes the mtDNA haplogroups attributed to the Native American groups. It mentions the well known ones (A, B, D, and X) and the possibility that M is also a founding lineage (as mentioned in my previous posts). It also suggests that there is a chance that mtDNA haplogroup F is also an Amerindian haplogroup.


mtDNA F


"The Dark Horse Late Arrival – Haplogroup F
I debated whether I should include this information, because it’s tenuous at best.
The American Indian project at Family Tree DNA includes a sample of F1a1 full sequence result whose most distant matrilineal ancestor is found in Mexico.
Haplogroup F is an Asian haplogroup, not found in Europe or in the Americas.
Haplogroup F, according to the Genographic Project, expands across central and southern Asia. According to Doron Behar, F1a1 was born about 10,863 years ago +- 2990 years, giving it a range of 7,873 – 13,853.
Is this Mexican F1a1 family Native? If not, how did F1a1 arrive in Mexico, and when? F1a1 is not found in either Europe or Africa.
...The Genographic project has no results for F1a1 outside of Asia.
I have not yet extracted the balance of haplogroup F in the Genographic project to look for other indications of haplogroups that could potentially be Native.
"



The homeland of haplogroup F is, effectively, Asian, as you can see in the following heatmap.


mtDNA F haplogroup heatmap
mtDNA F haplogroup heatmap. Source

It is found from Madagascar (surely taken there by the Austronesian migradion ~2000 years ago) to Central Siberia, China, Japan, and Mongolia. Tenuous presence in New Guinea, The gaps are also interesting. It is not found in India, the Middle East, or Australia, and absent in the eastern tip of Siberia (near Bering, and Kamchakta). It is also said to have been spread by the Mongols or the Huns westwards (notice the hotspot in Croatia!)


Regarding its presence in America, it could have arrived recently through migration of East Asian people to America. Since the early 1500s, Mexico was in contact with South East Asia through the Spanish colony of the Philippines. They also traded with Eastern Asia, so there must have been some admixture.


It could also have reached America in Prehispanic times, and suffered many bottlenecks, and after the effects of the "Great Dying" that took place after the European discovery of America, it probably almost vanished and is found at extremely low frequencies.


Identifying this haplogroup in ancient pre-Hispanic remains would be certain proof of its antiquity. Until then we should assume it it modern.



Patagonian Monsters - Cryptozoology, Myths & legends in Patagonia Copyright 2009-2026 by Austin Whittall © 

Saturday, January 31, 2026

mtDNA Haplogroup M in America - 2007 paper revisited


Back in 2014 I posted about Ancient migrants into America carrying mtDNA M haplogroup 5,000 years ago. In it, I mentioned the only study published, in 2007*, on the analysis of remains from a site in British Columbia, Canada (China Lake) and reported finding mtDNA haplogroup M, and suggested, due to the age of the reamains, that it was, together with haplogroups A (A2), B (B2), C (C1b, Cc, C1d9), X (X2a), and D (D1) one of the founding maternal lineages in America.


This groundbreaking paper reported the following:


"We analyzed two mid-Holocene (∼5000 years before present) individuals from North America that belong to mitochondrial DNA (mtDNA) haplogroup M, a common type found in East Asia, but one that has never before been reported in ancient or living indigenous populations in the Americas. This study provides evidence that the founding migrants of the Americas exhibited greater genetic diversity than previously recognized, prompting us to reconsider the widely accepted five-founder model that posits that the Americas were colonized by only five founding mtDNA lineages."


* Malhi, Ripian et al. (2007), Mitochondrial haplogroup M discovered in prehistoric North Americans. Journal of Archaeological Science 34, 642-648. doi:10.1016/j.jas.2006.07.004


Nineteen years of Silence


I find it surprising, that in almost 19 years after the publication of the original paper there haven't been andy new studies, research, publications, or confirmation (or refutation) of this finding... What is going on?


Citations


But Malhi's paper was noticed. I checked Google Scholar and saw that there were 85 papers that cited Mahli et al. Yet, none of them seem to deal with this new founding haplogroup.


Mahli's paper specifically thanks the support provided by the "Canoe Creek, Soda Creek, and Dog Creek Bands who allowed the DNA testing of their ancestors". A similar paper, also published in 2007, reported the presence of haplogroup A in 5,000 year-old remains from Big Bar Lake, British Columbia, In this case the haplogroup is one of the recognized founding lineages and the authors stated that "Testing for mitochondrial DNA indicated haplogroup A, which is widespread in living Native Americans. Comparative mtDNA data suggest long-standing genetic continuity in the Pacific Northwest, but with evidence for a genetically diverse population in existence at 5000 BP."


This scientific ratificaton is what Native American communities are looking for, and what they like: continuity and "original people" confirmation. The paper also notes the support from the first people: "Collaboration between anthropologists and the Canoe Creek and High Bar First Nations"


I did find a publication ( Ancient DNA In Canada Reveals New Founding Lineage of Native Americans, Mammoth Trumpet, April 2007, Vol 22 No. 2 p.18), that mentions Malhi's paper and gives advances of his findings. It says, among other things: "These remains are 5,000 years old, and mtDNA recovered from the bones belong to haplogroup M. Like the other five Native American haplogroups, M has its roots in Asia, so it is consistent with the accepted model of the peopling of the Americas that has Asian groups migrating across Beringia, or along the Pacific rim, and into North America. This discovery, however, calls into serious question other aspects of the traditional model. Dr. Malhi and his co-authors write, “Our discovery demonstrates that a more genetically diverse group of migrants colonized the Americas than previously thought and supports the hypothesis that significant undocumented genetic diversity likely still remains in the Americas.” In other words, the discovery of a previously unknown haplogroup not only demonstrates that ancient America was more genetically diverse than modern native America, it also increases the likelihood that more undiscovered haplogroups remain to be revealed by additional research." It also informs that the native tribes and the scientists agreed to rebury the remains after the studies. So, maybe that is why no further research was conducted on them.


A 2015 symposium included a paper by Alexa Walker, Brian Egan and George Nicholas (DNA & Indigeneity Proceedings, p. 5. The Changing Role of Genetics in Indigenous Rights, Tribal Belonging, and Repatriation. Oct. 22, 2015, Vancouover, BC, Canada) which gives a very brief summary of the discovery: "China Lake Ancestors In 1982, two individuals dated to over 6,000 years ago were found in a single burial site near China Lake, British Columbia. Genetic results found that both individuals belong to haplogroup M. Prior to this study, haplogroup M had not been found in any ancient or living North American populations. The results indicate that we still have much to learn about human expansion into the Americas. Further reading: Malhi et al. 2007."


Mahli also attended the symposium and his presentation can be read on page 49 (Partnerships with First Nations of British Columbia on Studies that include DNA Analysis). He again mentions the finding: "However, the China Lake individuals were found to possess a mitochondrial genome not currently found in sampled Indigenous individuals from the Americas. This lineage may either be in very low frequency or it may not exist anymore, possibly as a result of European contact and colonization."


Another paper published in Science (Victor Moreno-Mayar, 2018), in its Supplementary material (see p. 3), gives more details when it mentions the Big Bar Lake mtDNA results adding that "the two individuals recovered from the roughly contemporaneous, nearby China Lake site (the two sites are separated by just ~25 km), which could only be identified to mtDNA superhaplogroup M but excluding haplogroups C and D, a lineage common in East Asia, but otherwise unknown in the Americas. But, once again, it is citing the original, and for now, only paper on this subject, Malhi's 2007 work."


mtDNA M Haplogroup


I will summarize an interesting paper on this haplogroup by Marrero P, Abu-Amero KK, Larruga JM, Cabrera VM. Carriers of human mitochondrial DNA macrohaplogroup M colonized India from southeastern Asia. BMC Evol Biol. 2016 Nov 10;16(1):246. doi: 10.1186/s12862-016-0816-8. PMID: 27832758; PMCID: PMC5105315.


There are no "ancient and autochthonous mtDNA M lineages in western Eurasia", which is strange because the Out of Africa migration had to pass through this area in its initial dispersal, and the M haplogroup is ancient, splitting from the basal African L haplogroup at the time of the Out of Africa migration. The mtDNA M haplogroup is found in Australia, South East Asia, India, China, Arabia, Central Asia, Siberia. It is also found in some parts of North Africa and Europe (due to a back-mirgration from Asia).


The authors support a northern route for its dispersal and not a southern one that followed the coast of the Indian Ocean.


There are M1 lineages in the Mediterranean regions of Europe and the Middle East, and are believed to have arrived there from North Africa during the Paleolithic. And reached Africa from Southern Asia. The M haplogroup curently found among the Finno-Ugaric people in Lapland, the Urals, Northern Russia and Hungary is very recent, and due to a migration originating in East Asia (the Huns settled in Hungary, and we have the Mongols of Gengis Khan too!). There are also historic mixtures of Indian M variants in Mesopotamia and in the Roma (gypsy) people in Europe.


The Expansion route out of Africa: across the Middle East. the authors consider the archaich "fossils of early modern humans at Skhul and Qafzeh" as the first to successfully leave Africa, carrying the L3 haplo with them. They marched with a Northeastern course, and are associated with the early modern humans found in China ~100 ka. The authors propose an older age than generally accepted for the M haplogroup and say: "...we opine that the geneticists should resynchronize the mtDNA molecular clock with the Levant and East Asia fossil records instead of consider them as result of unsuccessful migrations."


These early migrants went north, reaching the Altai Mountains, admixed with Neanderthals and Denisovans there and then headed south due to the harsh weather there, crossing China into Southeast Asia, across Sunda, into Papua New Guinea, the Philippines, and Australia. From SE Asia they headed towards the NW, into India. Later "...in subsequent mild climatic windows, demographic growth dispersed macrohaplogroup M... northwards, most probably from overlapping areas that in time colonized northern Asia and the New World."


The maps below (fig. 2 in the paper) show the original dispersal (a) and the later one (b) including the backflow of M1 into Africa (dashed line).

mtDNA M haplo dispersal map

Could these archaics, with Denisovan and Neanderthal admixture have continued their trek from Altai towards Beringia and then into America, 100,000 years ago? Did they carry the M haplogroup to America? Are the remains from China Lake in Canada the last of a long lineage that was stamped out by later arrivals c. 20 kya?


Considering also that the M haplo is also found in Melanesia... could it suggest an ancient +5ky old transpacific contact between Melanesia and British Columbia?


Continues in my next post.



Patagonian Monsters - Cryptozoology, Myths & legends in Patagonia Copyright 2009-2026 by Austin Whittall © 

Monday, November 17, 2025

On the bias and weaknesses of DNA analysis of ancient genomes


I came across a very interesting article (Lumila Paula Menéndez, (2025), The antiquity and ancestral origin of humans in the americas: a five hundred year inquiry from a biological anthropology perspective. Journal of Anthropological Sciences Istituto Italiano di Antropologia, Review Vol. 102 (2024), pp. 7-67, doi7p.10.4436/jass10201) that summarizes all the theories about the peopling of America over the past centuries.


It makes good reading. In particular, it points out the shortcomings of scientific papers about this subject due to different sources of bias, lack of research, and the inconsistencies that can arise from DNA studies based on the "settings" or "initial parameters" defined by each author when using DNA analitical tools and software, a concept that I agree with 100%.


"It is essential to acknowledge that the results we have today are not without bias and may not fully represent the past. Some biases are intrinsic due to the preservation of old samples, while others are methodological, associated with different methods used, and there are geographic and geopolitical biases. Disciplinary bias arises when, for example, only cultural evidence is discussed without incorporating human biological data (and vice-versa). Geographic sampling bias occurs when, despite continental coverage in some studies, samples from South America and Central America are typically underrepresented. Studies often include a few early Holocene individuals to infer biological relationships among populations or test dispersion models (Hubbe et al. 2009; Galland and Friess 2016; von Cramon-Taubadel et al. 2017). Due to this geographical bias, archaeological sites from Latin American countries are not frequently mentioned in the literature (or the same few ones are cited over and over), perpetuating geopolitical imbalances between researchers coming from central and peripheral countries (Yañez et al. 2023). Moreover, early Holocene individuals in these studies often derive from the same few archaeological localities, potentially underestimating the wide regional variation during that period. This sample bias may impact the perception of early Holocene variation due to incomplete sampling of a highly structured population across time. After the surge of aDNA studies, some misconceptions have emerged, such as the expectation that genetic results can answer more questions about human history than realistically possible. Contrary to common belief, interpretations based on genetic results should be approached catiously. These interpretations often rely on a small number of poorly preserved samples (i.e., aDNA molecules being usually short and damaged), constituting less than 1% of Native Americans’ variation. Additionally, various decisions made during the workflow, including molecular clock calibration, reference genomes used for sequence alignment, genotype imputation, and the selection of outgroups, significantly impact the obtained results (Axelsson et al. 2008; Orlando et al. 2021). While genetic data, in combination with other information sources like archaeology can contribute to models determining approximate population divergence (Raff 2022), it is crucial to recognize that genetic results can be misleading (Steeves 2023)..."


Confirmation Bias
Confirmation Bias. Copyright © 2025 by Austin Whittall

We all believe what we want to believe and ignore the facts that we don't like.


The Ancient DNA from Mengzi Ren

This is an example of how DNA data lead to wrong conclusions. This case went from proving Amerindians were linked to people living in Yunnan 14,000 years ago, to contamination by modern Han Chinese who manipulated the ancient remains! It took 3 years for someone to set the record straight.


A paper published in 2022 found affinities between the 14.000-year-old remains of a woman from Southern China, and Native Americans ( Zhang, X., Ji, X., Li, C., Yang, T., Huang, J., Zhao, Y., Wu, Y., Ma, S., Pang, Y., Huang, Y., et al. (2022). A Late Pleistocene human genome from Southwest China. Curr Biol 32, 3095–3109 e3095. doi:10.1016/j.cub.2022.06.016.)


The authors found that "14,000-years-ago human remains (Mengzi Ren, MZR) unearthed in Southwest China. MZR represents an early diversified human lineage in eastern Asia where they detect a clear genetic stratification of ancient populations. MZR deeply links to the East Asian ancestry that contributed to First Americans."


However, earlier this year, it was later found to be based on dubious data (Tabin, D., Patterson, N., Mah, M., and Reich, D. (2025). Concerns about ancient DNA sequences reported from a Late Pleistocene individual from Southeast Asia. Current Biology 35, R212–R213. doi:10.1016/j.cub.2024.10.012).


A final critique of the original paper was published by the same authors shortly after, and reported that the "ancient" DNA "data have specific affinity to modern Han Chinese and other related populations. This is a priori surprising given the date and location of the MZR individual. This affinity is so strong that MZR can be well modeled as entirely Han with added noise. Neither of these traits are shared with other ancient Southeast Asians and both raise additional concerns regarding the reliability of the MZR data. Contamination seems more plausible than a population with Han-like ancestry existing in Yunnan province 14 thousand years ago." (Tabin D, Patterson N, Mah M, Reich D. Addendum to Ancient DNA data from Mengzi Ren, a Late Pleistocene individual from Southeast Asia, cannot be reliably used in population genetic analysis. bioRxiv. 2025 Mar 26:2025.03.24.645126. doi: 10.1101/2025.03.24.645126. PMID: 40196503; PMCID: PMC11974788.).


Ancient DNA analysis involves complex procedures, and each step of the process, from extracting the sample, to sequencing it can affect the accuracy of the outcome. The following article: Anastasia V. Poznyak, Tatyana Vladimirovna Kirichenko et al., (2024). Ancient DNA studies: Common limitations and Genotyping, Journal of Angiotherapy, 8(6), 1-8, 9750, gives an enlightening overview of the process and its risks.



Patagonian Monsters - Cryptozoology, Myths & legends in Patagonia Copyright 2009-2025 by Austin Whittall © 

Wednesday, September 3, 2025

Paper on an early (30,000 years ago) Peopling of America


A paper published in biorxiv proposes that the first Americans arrived 30,000 years ago. It is worth reading. It has an interesting analysis of mtDNA and Y-chromosome haplogroups.


This is the citation: What uniparental genetic markers tell us about the prehistoric human colonization of the Americas, Vicente M Cabrera. bioRxiv 2025.08.04.668419; doi: https://doi.org/10.1101/2025.08.04.668419
Not peer reviewed


Two brief exerpts from this paper:


Early Entry and New Dispersal Routes within the continent


The paper suggests that:


"If we accept that Asian populations gave rise to Native Americans before 30 kya, then the story of human settlement in America can be viewed differently. It is known that since their arrival, the climate gradually worsened, covering Arctic and Antarctic regions with ice (Clark et al. 2009), clearing the Amazon and Central American rainforests (Häggi et al. 2017), and transforming most of the land into forests and dry steppes (University of Geneva, Switzerland et al. 2001). During this tough period, humans had to survive in small, isolated groups and adapt to different glacial refugia, leaving few archaeological traces. When the climate improved, these groups grew in number and expanded into new, now habitable areas. Unlike the rapid southern wave of colonization, the American continent was not empty of humans. The post-LGM colonization was not a single or multiple waves spreading from northern North America to settle Mesoamerica and then South America. Instead, it involved more or less simultaneous radiations from various regions, most of which, based on uniparental markers, are centered in South America."


Forget all the quick or slow or standstill theories


"The early arrival of Native uniparental lineages in the Americas, over 30 kya, as proposed here, renders the hypotheses of a prolonged (Hoffecker et al. 1993; Tamm et al. 2007) or brief (Pinotti et al. 2019) standstill in Beringia, a previous expansion of their ancestors into Asia (Wei et al. 2018; Sun et al. 2021; Ning et al. 2020), or the existence of a Pacific Coastal Route around 20 kya (Scheib et al. 2018; Davis and Madsen 2020; Li et al. 2023), unnecessary.
The archaeological evidence for humans in the Siberian Arctic around 30 kya (Pitulko et al. 2004) and possibly since 45 kya (Pitulko et al. 2017) supports the idea of an early entrance into America by its native ancestors. More challenging is gaining acceptance from archaeologists for human occupation in the American continent before and around the LGM, but it looks pretty likely that this occurred around 16-18 kya at Monte Verde, Chile (Dillehay et al. 2015), at the Santa Elina site in Central Brazil during the LGM, at Chiquihuite Cave in Central Mexico about 30 kya (Ardelean et al. 2020), in the Colorado Plateau more than 36 kya (Rowe et al. 2022), at White Sands, New Mexico, during a stratigraphic record spanning from 24 kya to 17 kya (Holliday et al. 2025), and at Bluefish Caves, Canada, approximately 24 kya (Bourgeon et al. 2017).
"


I also like the fact that the paper points out that the Amazon basin has ancient, deep rooted mtDNA and Y-chromosome halpogroups, and its antiquity and diversity is also reflected in the large amount of languages spoken by the locals. It is, according to this paper, a "radiation center" in the peopling of America.



Patagonian Monsters - Cryptozoology, Myths & legends in Patagonia Copyright 2009-2025 by Austin Whittall © 

Wednesday, December 12, 2018

mtDNA can be inherited from both mother and father


A paper published in PNAS a few weeks ago -Nov. 26. 2018- (1), reports that mtDNA from both mother and father has been found in seventeen individuals.


This is a very important finding because until now, mtDNA in humans, was assumed to be inherited on a matrilineal basis: the mother's mtDNA was passed on to the nesxt generation.


This type of inheritance was the origin of the Out of Africa theory, by which all extant humans can trace their mtDNA to a woman living in Africa some 200,000 years ago.


And the splits between different human groups are all branches marked by different mutations of the original mtDNA lineage.


If the father's mtDNA can find its way into his offspring, this will alter the matrilineal inheritance and impact on the timescales used to estimate the origin of mankind.


This is what the paper says (abstract) -the rest is behind a paywall:


"Significance
The energy-producing organelle mitochondrion contains its own compact genome, which is separate from the nuclear genome. In nearly all mammals, this mitochondrial genome is inherited exclusively from the mother, and transmission of paternal mitochondria or mitochondrial DNA (mtDNA) has not been convincingly demonstrated in humans. In this paper, we have uncovered multiple instances of biparental inheritance of mtDNA spanning three unrelated multiple generation families, a result confirmed by independent sequencing across multiple unrelated laboratories with different methodologies. Surprisingly, this pattern of inheritance appears to be determined in an autosomal dominantlike manner. This paper profoundly alters a widespread belief about mitochondrial inheritance and potentially opens a novel field in mitochondrial medicine.
Abstract
Although there has been considerable debate about whether paternal mitochondrial DNA (mtDNA) transmission may coexist with maternal transmission of mtDNA, it is generally believed that mitochondria and mtDNA are exclusively maternally inherited in humans. Here, we identified three unrelated multigeneration families with a high level of mtDNA heteroplasmy (ranging from 24 to 76%) in a total of 17 individuals. Heteroplasmy of mtDNA was independently examined by high-depth whole mtDNA sequencing analysis in our research laboratory and in two Clinical Laboratory Improvement Amendments and College of American Pathologists-accredited laboratories using multiple approaches. A comprehensive exploration of mtDNA segregation in these families shows biparental mtDNA transmission with an autosomal dominantlike inheritance mode. Our results suggest that, although the central dogma of maternal inheritance of mtDNA remains valid, there are some exceptional cases where paternal mtDNA could be passed to the offspring. Elucidating the molecular mechanism for this unusual mode of inheritance will provide new insights into how mtDNA is passed on from parent to offspring and may even lead to the development of new avenues for the therapeutic treatment for pathogenic mtDNA transmission.
"


This had been reported back in 2002 (2) (see paper), this new study confirms the original finding.


Sources
(1) Biparental Inheritance of Mitochondrial DNA in Humans Shiyu Luo, C. Alexander Valencia, Jinglan Zhang, Ni-Chung Lee, Jesse Slone, Baoheng Gui, Xinjian Wang, Zhuo Li, Sarah Dell, Jenice Brown, Stella Maris hen, Yin-Hsiu Chien, Wuh-Liang Hwu, Pi-Chuan Fan, Lee-Jun Wong, Paldeep S. Atwal, Taosheng Huang Proceedings of the National Academy of Sciences Nov 2018, 201810946; DOI: 10.1073/pnas.1810946115

(2) Paternal inheritance of mitochondrial DNA, M Schwartz and J Vissing., N Engl J Med, Vol. 347, No. 8 pp. 576 August 22, 2002


Patagonian Monsters - Cryptozoology, Myths & legends in Patagonia Copyright 2009-2014 by Austin Whittall © 

Friday, May 11, 2018

On human and Neanderthal - Denisovan mtDNA


There is no evidence at all of extant Neanderthal mtDNA in modern humans. This seems quite surprising, and many explanations have been offered. But the most simple and clear cut one is, in my opinion, the lack of enough samples of Neanderthal mtDNA tested to date. And this is precisely what this paper says: No Evidence of Neandertal mtDNA Contribution to Early Modern Humans, by David Serre, Andre Langaney, Mario Chech, Maria Teschler-Nicola, Maja Paunovic, Philippe Mennecier, Michael Hofreiter, Göran Possnert, Svante Pääbo (Published: March 16, 2004https://doi.org/10.1371/journal.pbio.0020057)


They clearly state the following:


"..Under the model of a constant human effective population size (Tavare 1984; Nordborg 1998) of 10,000 over time (Figure 4A), any contribution of Neandertal mtDNA to modern humans 30,000 years ago larger than 25% can be excluded at the 5% level (Figure S3). A more realistic scenario may be that the spread of modern humans was accompanied by an increase in population size before and during their migration out of Africa and subsequent colonization of western Eurasia (see Figure 4B). In that case, the Neandertal contribution that can be excluded is smaller (i.e., less gene flow could have taken place)...
It is noteworthy that under the model of constant population size, about 50 early modern human remains would need to be studied to exclude a Neandertal mtDNA contribution of 10%. To exclude a 5% contribution, one would need to study more early modern human remains than have been discovered to date. Thus, definitive knowledge of the extent of a putative contribution of Neandertals to the modern human gene pool will not be possible...
."


The authors indicate that the Neandertal fossil remains carry "closely related mtDNAs that are not found among current humans", in fact all reads are very similar to each other and, different to the standard modern human reference.


They mention the possible causes for this lack of Neanderthal mtDNA in H sapiens: "...such a contribution might have been erased by genetic drift or by the continuous influx of modern human DNA into the Neandertal gene pool. A further concern is that if some Neandertals carried mtDNA sequences similar to contemporaneous humans, such sequences may be erroneously regarded as modern contaminations when retrieved from fossils.".


Both causes seem very reasonable and the authors fin that this "... excludes any large genetic contribution by Neandertals to early modern humans, but does not rule out the possibility of a smaller contribution."


So, after all, there may have been a small introgression of Neanderthal mtDNA into us.


An intersting point to ponder is that "Although mitochondria retain their own genome, the vast majority of the >1000 proteins that function in mitochondria are encoded in the nucleus" (from The Mitonuclear Dimension of Neanderthal and Denisovan Ancestry in Modern Human Genomes. Joel Sharbrough Justin C. Havird Gregory R. Noe Jessica M. Warren Daniel B. Sloan. Genome Biology and Evolution, Volume 9, Issue 6, 1 June 2017, Pages 1567–1581, https://doi.org/10.1093/gbe/evx114).


This means that the mitochondrial genes and the nuclear genes that encode these proteins (known as N-mt genes), proteins used by the mitochondria, have to adapt to each other during episodes of introgression in order to function correctly and not cause the death of the hybrid individual.


Sharbrough et al then apply this concept to Neanderthal ⁄ Denisovan admixture with H. sapiens:


"The potential for mitonuclear interactions among hominins is of interest because, unlike in the nuclear genome, there has not been any detectable mtDNA introgression from Neanderthals or Denisovans into modern human populations (Krings et al. 1997; Serre et al. 2004). Regardless of what has caused this lack of mtDNA introgression, one consequence is that all introgressed Neanderthal and Denisovan nuclear alleles must function on a modern-human mitochondrial background..."


In other words if there is no Neanderthal or Denisovan mtDNA in humans, our modern mtDNA however must have had to adapt to the N-mt genes that did introgress from our older relatives (Neanderthals and Denisovans). And their paper looks into this.


They concluded that "... genes involved in mitochondrial function may have been subject to distinct selection pressures during the history of introgression from archaic hominins but that mitonuclear incompatibilities have had, at most, a small role in shaping genome-wide introgression patterns, perhaps because of limited functional divergence in mtDNA and interacting nuclear genes."


In other words there wasn't much incompatibility between the mtDNA and the N-mt genes after all! And this was because our and their mtDNA and nuclear genes were, or are, very similar. Which is what you'd expect anyway, we all branched off from the same tree not that long ago (say 750 Ky).


I do look forward to mtDNA sequences more complete in nature, from more individuals (archaic H. sapiens and Neanderthal & Denisovans), who knows, we may actually find one with a shared mtDNA Haplogroup...



Patagonian Monsters - Cryptozoology, Myths & legends in Patagonia Copyright 2009-2014 by Austin Whittall © 

Friday, July 7, 2017

An even older Out of Africa event (270kya)!!


A paper published in Nature, by Cosimo Posth et al, published in Nature looks into the odd discrepancy in the age of the split between Modern Human and Neanderthal genomes


The date of the split between humans and Neanderthals differs when you consider their nuclear or their mtDNA:


  • Nuclear DNA says that humans and Nearnderthals split some 765,000 to 550,000 years ago
  • Mitochondrial DNA or mtDNA says we split 365,000 to 400,000 years ago

I believe that discrepancies are what makes science leap forward (like the problems caused by the "ether" theory that led to relativity and quantum physics). And a gap like this of several hundreds of thousands of years is a big discrepancy. Either the dating is all wrong and has to be reviewed (ie. mutation rates and so forth), or the current ideas on the migration and origin of Homo sapiens are incorrect.

The paper looks into the mtDNA extracted a "complete mtDNA of an archaic femur from the Hohlenstein–Stadel (HST) cave in southwestern Germany. HST carries the deepest divergent mtDNA lineage that splits from other Neanderthals ∼270,000 years ago..."

This date of 270 kya is actualy the average, the real divergence date between HST and all other Neanderthals (95% HPD) is between 316 and 219 kya. The Altai Neanderthals split from the other Neanderthals some ∼160,000 years ago (95% HPD of 199 - 125 kya).


This paper tries to explain the genetic incongruence of Sima de los Huesos (see my post Sima de los Huesos remains, Neanderthals, Denisovans and their nuclear and mtDNA), the remains from Sima de los Huesos in Spain which are 430 ky old, have mtDNA that resembles that of Denisovans more closely than that of the Neanderthals. But, their nuclear DNA is more similar to that of Neanderthals than to Denisovan nuclear DNA.

The authors write (Bold is mine) that the nuclear DNA (nDNA) "... from the Sima de los Huesos site... confirmed their closer affinity to the Neanderthal lineage, suggesting that at least by ∼430 ka, Neanderthals and Denisovans had already diverged. However, in contrast to genome-wide data, the Sima de los Huesos mtDNA was found to branch off with the deeply divergent Denisovan mtDNA lineage. The phylogenetic discrepancies could be reconciled if the mtDNA of early Neanderthals was indeed Denisovan-like and was subsequently replaced by a more derived mtDNA lineage.".

This "derived mtDNA" got into the Neanderthals through " a genetic introgression event from African hominins into the early Neanderthal population that gave rise to the ‘Late Pleistocene’ Neanderthal mtDNA lineage".

This introgression took place long ago, and came from " an African source, which we constrain taking place more than ∼270 ka". In other words the paper suggests an Out of Africa event over 270,000 years ago which admixed human mtDNA into Neanderthals, mtDNA which replaced the older mtDNA -i.e. Denisovan and Sima de los Huesos hominin, with a new lineage, the "African mtDNA that evolved into the Late Pleistocene Neanderthal mtDNA type". And this "new" mtDNA spread from the HST Neanderthal in Germany to all others, including Sidron in Spain and eastwards all the way to Altai. Thousands of kilometers from the Atlantic to Siberia.

Furthermore, they estimate that "if Ne (effective population) was <5,000 units, a mean temporal interval of 300 ka is sufficient for an incoming mtDNA lineage below 0.1% in frequency to drift up to fixation." in other words, a very small initial input of "African genes".
But looking at this theory with a critical eye, we must point out that Neanderthals were spread out over a very wide area, which makes it very difficult for this replacement to take place in the whole population.

Furthermore a different explanation can be found: if modern humans were already outside of Africa i.e. in Asia, and they mixed with the Neanderthals outside of Africa -no Africans involved in the introgression. They would have had plenty of time to admix over a wide area, and this would also explain why there was an Ancient gene flow from early modern humans into Eastern Neanderthals 100,000 years ago as suggested by Martin Kuhlwilm et al, in Nature, Feb. 2016. DOI:10.1038/nature16544.

So instead of suggesting an earlier migration (it actually took place 1.8 Mya when Homo erectus left Africa for Asia) why not think about H. sapiens living in Eurasia and mixing with Neanderthals?

I wonder how this ties in with the Oldest Homo sapiens remains dating back to 315,000 years ago, found in Morocco?
 
Sources

(1) Deeply divergent archaic mitochondrial genome provides lower time boundary for African gene flow into Neanderthals, Cosimo Posth, Christoph Wißing, Keiko Kitagawa, Luca Pagani, Laura van Holstein, Fernando Racimo, Kurt Wehrberger, Nicholas J. Conard, Claus Joachim Kind, Hervé Bocherens & Johannes Krause. Nature Communications 8, Article number: 16046 (2017). doi:10.1038/ncomms16046.


Patagonian Monsters - Cryptozoology, Myths & legends in Patagonia Copyright 2009-2017 by Austin Whittall ©

Wednesday, November 18, 2015

Denisovans. More information on their genetics


A paper by S. Sawyer et al., Nuclear and mitochondrial DNA sequences from two Denisovan individuals, PNAS, doi: 10.1073/pnas.1519905112 Published Nov. 16, 2015 has sequenced the nuclear and mtDNA of two Denisovans. Their findings are the following:


Abstract
Denisovans, a sister group of Neandertals, have been described on the basis of a nuclear genome sequence from a finger phalanx (Denisova 3) found in Denisova Cave in the Altai Mountains. The only other Denisovan specimen described to date is a molar (Denisova 4) found at the same site. This tooth carries a mtDNA sequence similar to that of Denisova 3. Here we present nuclear DNA sequences from Denisova 4 and a morphological description, as well as mitochondrial and nuclear DNA sequence data, from another molar (Denisova 8) found in Denisova Cave in 2010. This new molar is similar to Denisova 4 in being very large and lacking traits typical of Neandertals and modern humans. Nuclear DNA sequences from the two molars form a clade with Denisova 3. The mtDNA of Denisova 8 is more diverged and has accumulated fewer substitutions than the mtDNAs of the other two specimens, suggesting Denisovans were present in the region over an extended period. The nuclear DNA sequence diversity among the three Denisovans is comparable to that among six Neandertals, but lower than that among present-day humans.


Denisovan teeth
Take note of how large the Denisovan teeth are. From the paper

The paper notes that "Both Denisova 8 and Denisova 4 are very large compared with Neandertal and early modern human molars, and Denisova 8 is even larger than Denisova 4. Only two Late Pleistocene third molars are comparable in size: those of the inferred early Upper Paleolithic modern human Oase 2 in Romania and those of ObiRakhmat 1 in Uzbekistan"


The teeth though primitive looking also seem to differ from H. erectus teeth too. Which is quite interesting.


Denisova 8 is about 60,000 years older than Denisova 3 and Denisova 4 meaning that they are 110,000 years old. This is a long period of time in a same location.


The paper says the following about this long occupation: ", suggests Denisovans were present in the area at least twice, and possibly over a long time, perhaps interrupted by Neandertal occupation or occupations. Denisovans may therefore have been present in southern Siberia over an extended period. Alternatively, they may have been present in neighboring regions, from where they may have periodically extended their range to the Altai.".


The paper ends with an open question: " Given that the high-coverage genome from the Denisovan 3 phalanx carries a component derived from an unknown hominin who diverged 1–4 million years ago from the lineage leading to Neandertals, Denisovans, and present-day humans, it is possible that this component differs among the three Denisovan individuals. In particular, it may be that the older Denisovan population living in the cave carried a larger or different such component. It is also possible that the two diverged mtDNA lineages seen in Denisova 8 on the one hand and Denisova 3 and Denisova 4 on the other were both introduced into the Denisovans from this unknown hominin, as has been suggested for the mtDNA of Denisova 3. However, more nuclear DNA sequences from Denisovan specimens of ages similar to Denisova 4 and Denisova 8 are needed to address this question fully.".



Patagonian Monsters - Cryptozoology, Myths & legends in Patagonia Copyright 2009-2015 by Austin Whittall © 

Thursday, November 13, 2014

On Mutations, mutation rates and Ust'-Ishim


A week ago I read the Supplementary Information on the 45 ky old Ust'-Ishim gene sequencing and also several posts that dealt with this very interesting paper.


I was intrigued by two points: one was their estimation of human mutation rates and the other was the autosomal "diversity" of modern and ancient humans as shown in SI 12. So I decided to write a post on each of those subjects. Today's post looks into the question of "mutation rates", the diversity issue will be the subject of a future post.


Molecular clocks and mutations


It is no secret that I am very skeptical about molecular clocks which tick with a constant rate and therefore allow us to measure the timing of past events such as splits between species or the dates when a given haplogroup appeared. So please read on with this in mind: I don't trust molecular clocks.


The key issues in today's post are:


  1. Mutations in humans take place at different rates. Yes, mtDNA, Y chromosome and autosomal DNA mutate at different rates when compared to each other, and that is ok, and explainable. What I mean by different rates is that when we compare the same kind of genetic material: mtDNA against mtDNA or autosomal DNA against autosomal DNA, in different human samples, the rates are different.
  2. Genetic mutations grow at different paces in men and women.
  3. The DNA of our closest relative, the chimpanzee mutates at a different rate, when compared to ours.
  4. More genetic diversity may not mean "older" populations but simply quicker mutation rates that accumulate in a population of the same age as a less diverse one.
  5. The concept of a molecular clock is unsustainable.

The "molecular clock" that is used to estimate past events in human evolution is based on the simple assumption that: mutations take place in our DNA at a certain fixed pace and that by comparing the quantity of mutations by which specimen A and specimen B differ, we can calculate the time that has elapsed since they shared a common ancestor.


Neat. But what exactly does it mean? and even more important: is it really a clock?


First of all, lets see what a mutation is:


We are all familiar DNA and its role in inheritance. DNA is a polymer that is found inside each and every one of our cells, inside the cellular nucleus. It is shaped like two intertwining coils (a "double helix") and these spirals are stabilized by molecules known as "nucleobases" (or "bases" for short) which link the coils together.


One base is attached to one of the coils and another base is attached to the other coil; and both bond together to form a "base pair".


Fortunately these bases come in four kinds: adenine (abbreviated A), cytosine (C), guanine (G) and thymine (T) and they link up in a very simple manner:


A only bonds with T and C only links up to G. So the "steps" of the ladder that joins the two spiral strands is made up of base pairs such as:


....
AT
TA
CG
CG
AT
GC
TA
....


During replication, the DNA strands within the nucleus of the cell, "unwind", unzipping each strand. The exposed bases attract a new pair and form the other complementary spiral. The "unpaired" Adenine will attract thymine and link to it while the guanine will bond to cytosine and so forth. This bonding takes place on each of the unzipped strands, so from one (1) initial DNA molecule, two (2) "identical" copies are obtained.


Copies and errors, causes


Well, not exactly "identical", there are some sequence errors, and this takes place even though cells have proofreading abilities and mismatch repair mechanisms that compare original and copied DNAs.


These errors in the transcription mean that the "daughter" DNAs are not an exact replica of the "mother" DNA. So maybe an AT is lost or replaced by a GC or a duplicate is inserted so TA becomes TA TA...


In other words these are natural spontaneously occuring mutations.


Other external factors known as "mutagens" can interact with the DNA and alter the nucleotide sequence producing mutations:


  • High Energy Electromagnetic radiation. For instance X-rays or Ultraviolet light (UV).
  • Oxidizing agents (or free-radicals).
  • Chemicals, such as alkylating agents, heavy metals, solvents, monomers, agrochemicals.

These factors can disrupt the sequence of a DNA strand resulting in a "new" (mutated) chunk of genetic information, either due to deletion or addition of base pairs.


There is also a process known as "Recombination" by which two DNA molecules merge in certain sections and produce a totally new variety of DNA.


Where (and when) do mutations take place?


Those terrible summer sun-burns that I suffered as a child back in the 70s, and the accumulated doses of UV radiation that my skin has received over the years, may result in a mutation that causes skin cancer (I keep my fingers crossed and visit my dermatologist once a year just in case).


The same could be said about the X-rays that have zapped me at my dentist or during my medical check-ups or the cosmic rays that incessantly criss-cross my body. Some pesticides that I ingested via fruits or cereals, those glasses of red malbec (and its metabolized by-products) or the cigarrettes that I used to smoke are also packed with mutagens... which disrupt my DNA here and there.


But all of these mutations which are taking place in some of the 40 trillion cells that make up my body would only affect me and therefore would not be passed on to future generations unless they took place in certain cells and, during a specific time frame which differs for men and women.


The new DNA information created by mutations would pass on to my progeny only if it mutated inside my "germ cells" (sperm in my case since I am a man or, for women: their ova).


Mutations that are inherited: Meiosis


Normally our cells reproduce by a process known as "Mitosis", and its outcome are two cells, each carrying the same genetic information that the mother cell had, as well as the same number of chromosomes.


We humans are dipolid organisms and as such, our cells carry two homologous copies of each chromosome, one inherited from our mother, the other from our father. Our cells therefore have 23 pairs of chromosomes of which 22 pairs are autosomes, one pair are the sex chromosomes (the X and Y chromosomes, paired XX in women and XY in men ). The grand total is 46 chromosomes per normal human cell


But our "germ cells" are different, they can only carry half of the genetic information of each parent so that the combination of the father's sperm and the mother's ovum with their chromosomes add up to exactly the full number of chromosomes.


This process of germ cell formation is known as "Meiosis", and it takes place differently in males and females:


  • Females. Meiosis in females is known as "oogonia", and consists of a series of divisions of the "original" oogonium with the complete set of chromosomes, the outcome is an an ovum with half the quantity of chromosomes.
    Meiosis in females takes place during the formation of the embryo (after the fourth week of pregnancy), as soon as the primordial germ cells migrate to the ovary, and they will lie dormant inside a protective follicle until the woman reaches puberty, when her menstrual cycle begins.
  • Males. The process in males is known as "spermatogenesis", and takes place in a continuous manner, after puberty, until death. Meiosis produces spermatozoa in the seminiferous tubes inside the testicles.

Implications


Since male germ cells are produced in a constant manner, the different mutagens that interact with an individual during is whole adult life, (meiosis is a continuous process in men) may cause mutations. Furthermore, males have a very poor DNA repair mechanism, so these mutations are more likely accumulate, without being "fixed", and therefore more likely to get transmitted to their offspring.


The female ova, on the other hand are produced during fetal growth, and are placed in hybernation for many years until the onset of puberty. But despite this long period during which external mutagens could interact with the ova's DNA producing mutations, females have a very efficient repair mechanism for postmeiotic stages which can repair DNA until after fertilization. [3]


This means that sperm accumulate more mutations than ova, and men transmit more mutations to their offspring than women do. This has been corroborated by separate studies both in humans and in chimps:


Chimpanzees, our closest relatives have different mutation rates


Chimps are our closest primate relatives, and a recent paper (Venn et al., 2014) [1] found that "mutation rates and patterns differ between [our] closely related species", Venn reported that male chimpanzees pass on between seven and eight times more mutations to their offspring than do female chimps. This means that roughly 88% of the mutations found in their offspring have a paternal origin and 12% are maternal.


Also, the older the father, the more the mutations in the paternal genes ageing adds "three mutations per year of father's age"[1].


In humans on the other hand "every additional year of father’s age contribut[es] two mutations across the genome and males contribut[e] three to four times as many mutations as females." [1], so males provide between 75 and 80% of the mutations and females 20 - 25%. /p>

This increased mutation contribution by males was reported in a genetic study by Campbell et al., 2012 [7] which found among Hutterite families that 85% of the new mutations were of paternal origin. Which is higher than those mentioned by Venn for humans and very close to those of chimps.


Campbell reported the following figures:


SNV mutation rate: 1.20 × 10-8, (95% confidence interval 0.89 – 1.43 × 10-8) mutations per basepair per generation. And 0.96×10-8 for the most recent generation.


The lower mutation rate for the latest generation was justified by "the relatively young age of the father of the trios analyzed here (21–30 years old at the time of the child’s birth)" [7], meaning that a younger father had accumulated less mutations than an older one.


Calculating Mutation Rate


The mutation rate can be calculated using the following formula:


Mutation Rate = # of mutations observed ⁄ (# of generations x # of base pairs sequenced) [a]


By comparing the discrepancies in the gene sequences of two related individuals separated by a given time span the mutation rate can be calculated (i.e. father - son pairs or comparisons of the DNA between living individuals and that sequenced from his ⁄ her ancestors).


Roach et al., (2010) [8] analyzed the full genome sequence of a family (two children and their parents) and calculated a mutation rate of 1.1 x 10-8 per position per haploid genome.


But what does this mean? Look at it this way: humans have about 6 x 109 base pairs (six billion), so it is very straightforward to work out the number of mutations that will appear in a child, inherited from its parents. They are (see [a] above) directly proportional to the number of bases, the number of generations - in this case = 1 - and the mutation rate. So, using [a] we can calculate:


# of mutations observed = Mutation Rate x # of generations x # of base pairs


So, replacing the terms with actual numbers:


# of mutations = 1.1 x 10-8 x 1 x 6 x 109


# of mutations = 66 (the new mutations in a child, compared to its parents).


Comments


Out of these 66 mutations, roughtly 80% (or 53 are parental, the other 13 maternal). Since paternal mutations grow at a rate of 2 per year [1], we can see that the child of an "old" dad aged 45 would receive 2 x (45-20) = 50 "extra" mutations in its genome in comparison to the child of a "young" 20 year old father.


So the baby of "old" dad would have 66 + 50 = 106 mutations while the baby of the "young" dad would have only 66 mutations.


Looking at a society where older parenting prevails (young males are not successful in mating with the women, or they die off before bearing children, or their children die off before reaching maturity) we would find that mutations would have accumulated at 106 mutations⁄generation. While a society where young males exclude older ones from bearing children, the mutations would accumulate at a rate of 60 mutations⁄generation.


After "n" generations the situation would be:


Old men society: n x 106 mutations. Time span: n x 40.
Mutations per year: n x 106 ⁄ n x 40 = 106⁄40 = 2.65


Young men society: n x 60 mutations. Time span: n x 20.
Mutations per year: n x 60 ⁄ n x 20 = 60⁄20 = 3.00


On a "per generation" basis there are 76.7% more mutations in the "old men" society, but on a "per year" basis, the mutation rate is 13.2% higher in the "young men" society.


This should be a word of caution when using "generations" to gauge ancient events. The conclusions will be very different in one case or the other.


The variability of Mutation Rates


The problem is that the mutaton rates are quite "variable". A paper by Wang, J. et al., (2012) [9], sequenced individual sperm cells in a 40 year-old individual. They obtained mutation rates of 2.0 to 3.8 x 10-8, which, are different from other values measured in other studies:


Hutterites (mentioned above): their "SNV mutation rate [was] 1.20 × 10-8 (95% confidence interval 0.89-1.43 × 10-8) mutations per base pair per generation." [7]


Pedigree. Xue et al., (2009) [6] compared the mutations detected in the Y chromosme of two members of the same family separated by a span of 13 generations. They reported that "The mutation rate is ... 1.0 × 10-9 mutations ⁄ nucleotide ⁄ year (95% CI: 3.0 × 10-10 – 2.5 × 10-9), or 3.0 × 10-8 mutations ⁄ nucleotide ⁄ generation (95% CI: 8.9 × 10-9 – 7.0 × 10-8)" [6] .


Just look at Xue et al.'s enormous Confidence Interval: it is almost one order of magnitude, that is the upper limit is nearly 10 times the value of the lower limit! This is like saying that we estimate the weight of the stone to be 10 pounds, with a CI of 3 lb - 25 lb.


The range between the minimum and maximum values of these studies goes from 0.89 to 7 x 10 -8 mutations ⁄ base pair ⁄ generation. A big window indeed.


Variability between families


Additional proof of the variability of mutation rates comes from a paper (Conrad et al., 2011) [5] which confirms that there is "considerable variation in mutation rates within and between families". The authors compared female and male germline and non-germline de novo mutation rates and found that "in one family [...] 92% of germline DNMs were from the paternal germline, whereas, in contrast, in the other family, 64% of DNMs were from the maternal germline." [5]


Against the constancy of mutation rates


We could imagine that additional research will refine those values and come up with a more reliable rate, but there is another problem: the mutation rate is not constant. It fluctuates accelerating and slowing down over time.


A paper by Amos W., (2013) points out a that "tendency for Africans to have diverged more from chimpanzees than non-Africans is unexpeced under classical theory." [4] Since we all derived from chimps, and have had the same time to accumulate mutations, why do Africans appear more distinct?


Applying the formula [a] it is quite simple to see that if the number of mutations is higher for Africans, then either the number of generations and ⁄ or the mutation rate must be higher for them than among non-Africans. Amos finds no reason to imagine a shorter generation time in Africa (shorter duration means more generations in a given time span). Clearly something is influencing the mutation rates in Africa.


So for Amos, this implies that the anomaly may be due to two reasons "local effects that vary across the genome due, for example, to natural selection, and genome-wide effects arising from a mutator allele impacting mutation rate or demographic influences that alter generation time." [4], the paper suggests that the mechanism that is acting to distort mutation rates is known as the "heterozygote instability" (HI) hypothesis.


Under the HI hypothesis:


mutation rate increases at and near heterozygous sites where the two homologous chromosomes differ in sequence [...] [4]


This means that "gene conversion events focused on heterozygous sites during meiosis locally increase the mutation rate [and] As humans left Africa they lost variability, which, if HI operates, should have reduced the mutation rate in non-Africans. [4]


In other words, the bottle necks that decimated humans (and also their Neanderthal and Denisovan) predecessors as they moved out of Africa and across Eurasia, led to reduced diversity and this in turn decelerated their mutation rate in comparison to those that remained in the African homeland whose diversity remained higher.


"Under the HI hypothesis, this demographically-induced reduction in heterozygosity should create a parallel reduction in mutation rate such that Africans have diverged more than non-Africans from their common ancestor" [4]


I will go over this in detail in my next post on "African diversity vs. non-African lack of diversity", but focusing on this post's subject, how does this impact on mutation rates?


Simple: mutation rate grow with increasing heterozygosity. Also "When population size is constant, smaller populations will experience lower mutation rates than related larger populations" [4].


Summary on mutation rates


DNA mutates at different rates:


  • In male or female germ cells
  • In different families
  • In less diverse populations vs highly heterozygous populations (HI hypothesis)
  • In chimpanzees (vs. humans)
  • In older men's sperm vs. younger men's sperm
  • In large populations vs. small populations

And as we will see below, ancestral DNA (obtained from the remains of ancient humans) show different rates when compared to the pedigree rates calculated by using sequences of recent modern families.


Ust'-Ishim and its estimates on mutation rates


And now, we get to the paper on the Ust'-Ishim remains (Fu, et al., 2014) [2]. Besides a wealth of data on admixture and mtDNA & Y chromosome haplogroups also deals with mutation rates, and reaches some very interesting conclusions (Below I will refer to the Supplementary Information freely available online):


Autosomal Mutation Rates Estimates


The paper measured how many mutations are "missing" in this 45 ky old individual when compared to contemporary humans. The logic behind this calculation is that we kept on evolving during that period of time and accumulated new mutations (see SI 15). Since the bone was carbon dated (41,410 ± 960 BP or 45,000 cal BP) and the substitutions can be measured, the calculation was relatively simple.


As expected, the DNA of Ust'-Ishim is around 0.6% shorter than the A-Panel (a low-coverage of 24 - 32%) modern humans and 0.35% for B-Panel samples (with a higher coverage of 35 -42%). So the autosomal mutation rates are: "0.80-0.91 × 10-9 ⁄ bp ⁄year for panel-A and 0.44-0.63 × 10-9 ⁄ bp ⁄ year for the B-panel." [2]


The authors therefore "estimate a nuclear mutation rate of 0.44 -0.63 × 10-9 ⁄ site ⁄ year, which is lower than the value that has been widely used in the past (1 × 10-9)." they do point out that the "lower quality A-panel individuals give significantly different results, indicating that this measure is sensitive to quality differences between the compared genomes" [2]


Indeed "different", the values differ by a factor of 2! Notice that they are also giving their figures in mutations per site per Year, further up, the figures we mentioned were "per Generation". Conversion from one to other depends on the time span assigned to a Generation which can range from 19 to 40 years!


Comparing Ust'-Ishim (ancestral) and Xue's pedigree values [4] there is a two-fold spread between the minimum and maximum values.


  • 0.44 - 0.63 x 10-9 ⁄ bp ⁄ year (Ust'-Ishim)
  • 0.30 - 2.50 x 10-9 ⁄ bp ⁄ year (Xue's data)

Mitochondrial DMA mutation rates


Using the mtDNA (SI 8), Fu et al., (which by the way, the mtDNA "appears to be most closely related to the direct R sub-clades R* (P, B, F, T, J)" [2]), they also estimate a mutation rate of "2.53 × 10-8 substitutions per site per year (95% HPD: 1.76 -3.23 × 10-8) for the complete mtDNA" [2]. Notice that it differs from the autosomal mutation rate calculated above by a factor of about 50 corroborating that mtDNA mutates rapidly.


Y-chromosome mutation rate


The team also sequenced Ust'-Ishim's Y chromosome and found that it "clusters with the K(xLT) haplogroup." [2], they estimated its mutation rate as "0.76 × 10-9 substitutions per site per year (95% HPD: 0.67-0.86 × 10-9)". Which was higher than the rate reported in the controversial paper by Mendez et al. (2013) which discovered a new Y chromosome lineage (A00) with a Most Recent Common Ancestor (TMRCA) of 338 ky, far older than the oldest anatomically modern human fossils.


Table S9.1, shows that the (TMRCA) for all Y-Chromosomes as 153 ky old (range: 132-175 ky).[2], since the mutation rate used is higher, the TMRCA is much more recent than the figure calculated by Mendez (153 ky vs. 338 ky).


A novel calculation of the mutation rate


Fu et al., devised a new method of calculating the mutation rate "assuming the population size history of the ancient sample is identical to that of present humans prior to the death of the archaic individual" [2] , and estimated a muation rate of 0.43×10-9 per site per year, with a 95% CI (0.38×10-9 - 0.49×10-9).


This value coincides with their estimate based on another method and is much lower than other previous values. The fact that the mutation rate is lower and therefore slower means that more time is necessary to accumulate the mutations that we carry, in other words it suggests an older date for the split between modern and ancient humans.


Another recent paper on Mutation Rates


A few days after Fu's paper, another one (Rieux et al., 2014) [10] was published, it reported an improved calibration of the mtDNA clock, and calculated a TMRC for modern humans as 143 ky (95% CI 112 - 180 ky), which agrees pretty well with Fu's estimate.


They ratified the "acceleration of substitution rates in recent times" (for mtDNA mutation rates) which is explained by the " 'time-dependency of molecular rates' hypothesis, which postulates an acceleration over recent times in coding sequences due to the time needed for selection to purge slightly deleterious mutations" [10].


They used two types of estimations, one based on the dates of the fossil remains of ancient humans (tip-based-estimates) and another calibrated on nodes, which mark peopling events such as the peopling of America, New Zealand, Madagascar, etc. They noticed that:


tip-based rate estimates are slower (by a factor of 0.63-fold) than the ones obtained using internal node calibration by Endicott and Ho (2008) but are faster (by a factor of ~1.5-fold) than previous fossil-calibrated rates
[...]
the variance over individually calibrated substitution rates is 11 times smaller for tips than internal nodes. Moreover, all of the 21 substitution rates estimated from aAMH sequences had overlapping 95% HPD (fig. 3). The situation is strikingly different for node-based calibrations, where substitution rate estimates strongly depended on the demographic episode used for dating, with only four out of ten individually calibrated rates having overlapping HPDs.
These results strongly suggest that tip calibration estimates are far more consistent than internal node-based ones. However, tip-based calibration also point to slower mean substitution rates than those based on internal nodes. Thus, one important question we need to answer is whether tipbased calibrations are affected by some systematic bias that might lead to slow (and homogeneous) substitution rates. [10]


In other words, the "nodes" or estimated dates of demographic events have a larger variance than those of the "tips" (reliably dated fossil remains). The 95% HPD interval obtained for each independent ancient sequence overlapped the others while the "nodes" only overlapped in 40% of the cases. (See their Fig. 3). The ancient remains are therefore more reliable than the estimated dates for peopling events! (something I have written about several times suggesting an ancient peopling of America). Additionally the fossils indicate a slower mutation rate meaning a more ancient date for all events (African - non-African split, Sapiens - Neanderthal split, etc.).


Rieux et al. recognize that carbon dated remains are much more reliable than the estimations of dates regarding peopling events (allow me to quote them extensively) :


the uncertainty around dated nodes is far more complex and multifactorial and is likely to lead to different degrees of reliability associated to each node. First, there is generally considerable uncertainty associated with the age of the colonization⁄migration event including error in the dating of the archaeological, anthropological, and historical evidence. The age of the oldest evidence for human presence is unlikely to coincide exactly with the demographic expansion. Very generally, we would predict to see a delay in the appearance of traces of human presence after the expansion of AMHs into any new area (Signor and Lipps 1982).
[...]
Second, even if a demographic event had been accurately dated, the age of the node in the phylogenetic tree might not coincide with it for a number of reasons (Edwards and Beerli 2000; Ho and Phillips 2009; Balloux 2010; Firth et al. 2010; Crandall et al. 2012). For instance, the phylogenetic node of interest may correspond to the most recent common ancestor (MRCA) of the sampled sequences rather than the split of the population of interest.
[...]
the population might have experienced a reduction in size later on, so that the TMRCA could coincide with this subsequent population bottleneck. We could think of additional scenarios and the situation would become even more complex if we considered a possible effect of natural selection. To summarize, node calibration can be affected bymany sources of error, and it is thus nearly impossible to model the age uncertainty around nodes satisfyingly. [10]


In other words, the nodes will give "later" dates for cases like America, subjected to a drastic bottleneck. Even so, I am quite happy to see the dates that they estimated using ancient genomes gave a much older date for the peopling of America than the usual "orthodox" 13 - 17 ky:


time peopling America
Table 2 in [10]. Coalescence Times for Major Haplogroups Involved in the Colonization/Migration Events Considered.

Yet the authors are aware of their "early" dating and try to explain the "discrepancy" to conform to orthodoxy: "However, in the case of the Canary Islands, Remote Oceania, New Zealand, and the Americas, the estimated coalescence times were systematically older than the archaeological evidence. Potential explanations for such discrepancies include ancestral polymorphism in the founding population or complex demographic histories involving multiples wavesof colonists" [10].


Finally their dating of the Divergence between Humans and Chimpanzees was 4.14 Ma (95% HPD 2.991 - 5.448). Which they admit "... may appear too young when compared with the dates that are generally derived from the fossil record." [10] . The authors attempt to explain this "recent" date as due to (i.e. "...more complex speciation scenarios where an initial split was followed by an extended period of gene flow before the final separation..."). But I do not think that it is due to a flaw in their method, but to the dissimilar mutation rates of humans and chimps, as pointed out by Venn et al., in June 2014, [1]:


Under a model in which the mutation rate increases linearly with parental age, the rate of neutral substitution is the ratio of the average number of mutations inherited per generation to the average parental age. We predict the neutral substitution rate to be ~0.46 × 10-9 per base pair (bp) per year in chimpanzees, compared to estimates in humans of ~0.51 × 10-9 bp-1 year-1 (9). These results are consistent with near-identical levels of lineage-specific sequence divergence (12) but surprising given the differences in paternal age effect. In the intersection of the autosomal genome accessible in this study and regions where human and chimpanzee genomes can be aligned with high confidence, the rate is slightly lower (0.45 × 10-9 bp-1 year-1) and the level of divergence is 1.2% (13), implying an average time to the most common ancestor of 13 million years, assuming uniformity of the mutation rate over this time (95% ETPI 11 to 17 million years; table S11). [1]


This is in agreement with the estimate of Langergraber et al., (2012) who dated the Pan-Homo divergence to between 6.78 and 13.45 Ma.


An earlier human-chimp split renders useless the calculations that calibrate molecular clocks based on that event. If it took place 13 Ma instead of 6, the clock's ticking rate has to be adjusted and all events derived from such a clock would actually be much older than currently accepted. Including the peopling of America.


More to follow, on the differing diversity of humans Africans and non-Africans


Sources
[1] Oliver Venn, et al., (2014). Strong male bias drives germline mutation in chimpanzees. Science 13 June 2014: Vol. 344 no. 6189 pp. 1272-1275 DOI: 10.1126/science.344.6189.1272
[2] Fu, Q. and many others. (2014). Genome sequence of a 45,000-year-old modern human from western Siberia. Nature, 514, 445-450. doi:10.1038/nature13810
[3] Andrew J. Wyrobek et al., (2007) Assessing Human Germ-Cell Mutagenesis in the Postgenome Era: A Celebration of the Legacy of William Lawson (Bill) Russell. Environ Mol Mutagen. Mar 2007; 48(2): 71–95. doi: 10.1002/em.20284
[4] William Amos, (2013) Variation in Heterozygosity Predicts Variation in Human Substitution Rates between Populations, Individuals and Genomic Regions. April 30, 2013DOI: 10.1371/journal.pone.0063048
[5] Donald F Conrad, et al., (2011). Variation in genome-wide mutation rates within and between human families. Nature Genetics 43, 712–714 (2011) doi:10.1038/ng.862. Published online 12 June 2011
[6] Yali Xue et al., (2009). Human Y Chromosome Base-Substitution Mutation Rate Measured by Direct Sequencing in a Deep-Rooting Pedigree. Curr Biol. Sep 15, 2009; 19(17): 1453–1457. doi: 10.1016/j.cub.2009.07.032
[7] Catarina D Campbell, et al., (2012). Estimating the human mutation rate using autozygosity in a founder population. Nature Genetics 44, 1277–1281 (2012) doi:10.1038/ng.2418
[8] Roach JC, (2010). Analysis of genetic inheritance in a family quartet by whole-genome sequencing. Science. 2010 Apr 30;328(5978):636-9. doi: 10.1126/science.1186802. Epub 2010 Mar 10
[9] Wang J, Fan HC, Behr B, Quake SR, (2012). Genome-wide single-cell analysis of recombination activity and de novo mutation rates in human sperm. Cell. 2012 Jul 20;150(2):402-12. doi: 10.1016/j.cell.2012.06.030
[10] Adrien Rieux, et al., (2014). Improved Calibration of the Human Mitochondrial Clock Using Ancient Genomes. Molecular Biology and Evolution, 2014, 2780-2792, DOI: 10.1093/molbev/msu222


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