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PMID: 19284537 Published · epublish English Comparative Study Journal Article Research Support, Non-U.S. Gov't

The erratic mitochondrial clock: variations of mutation rate, not population size, affect mtDNA diversity across birds and mammals.

BMC evolutionary biology ·Vol. 9 ·2009-03-10 ·Pages 54

Nabholz B, Glémin S, Galtier N

Abstract

During the last ten years, major advances have been made in characterizing and understanding the evolution of mitochondrial DNA, the most popular marker of molecular biodiversity. Several important results were recently reported using mammals as model organisms, including (i) the absence of relationship between mitochondrial DNA diversity and life-history or ecological variables, (ii) the absence of prominent adaptive selection, contrary to what was found in invertebrates, and (iii) the unexpectedly large variation in neutral substitution rate among lineages, revealing a possible link with species maximal longevity. We propose to challenge these results thanks to the bird/mammal comparison. Direct estimates of population size are available in birds, and this group presents striking life-history trait differences with mammals (higher mass-specific metabolic rate and longevity). These properties make birds the ideal model to directly test for population size effects, and to discriminate between competing hypotheses about the causes of substitution rate variation. A phylogenetic analysis of cytochrome b third-codon position confirms that the mitochondrial DNA mutation rate is quite variable in birds, passerines being the fastest evolving order. On average, mitochondrial DNA evolves slower in birds than in mammals of similar body size. This result is in agreement with the longevity hypothesis, and contradicts the hypothesis of a metabolic rate-dependent mutation rate. Birds show no footprint of adaptive selection on cytochrome b evolutionary patterns, but no link between direct estimates of population size and cytochrome b diversity. The mutation rate is the best predictor we have of within-species mitochondrial diversity in birds. It partly explains the differences in mitochondrial DNA diversity patterns observed between mammals and birds, previously interpreted as reflecting Hill-Robertson interferences with the W chromosome. Mitochondrial DNA diversity patterns in birds are strongly influenced by the wide, unexpected variation of mutation rate across species. From a fundamental point of view, these results are strongly consistent with a relationship between species maximal longevity and mitochondrial mutation rate, in agreement with the mitochondrial theory of ageing. Form an applied point of view, this study reinforces and extends the message of caution previously expressed for mammals: mitochondrial data tell nothing about species population sizes, and strongly depart the molecular clock assumption.

MeSH Terms
Animals Birds/genetics Cytochromes b/genetics DNA, Mitochondrial/genetics Evolution, Molecular Longevity/genetics Mammals/genetics Mitochondria/genetics Models, Genetic Mutation Polymorphism, Genetic Population Density Sequence Alignment
Chemicals
DNA, Mitochondrial Cytochromes b
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Nabholz Benoit
Université Montpellier 2 CNRS UMR 5554 - Institut des Sciences de l'Evolution Place E. Bataillon - CC064, Montpellier, France. [email protected]
Glémin Sylvain
Galtier Nicolas
References (71)
71 references, click to expand
  1. Low mitochondrial variability in birds may indicate Hill-Robertson effects on the W chromosome.
    Heredity (Edinb). 2007 Oct;99(4):389-96 PMID: 17551522
  2. Accumulation of point mutations in mitochondrial DNA of aging mice.
    Mutat Res. 2003 May 15;526(1-2):1-7 PMID: 12714177
  3. Rapid evolution of animal mitochondrial DNA.
    Proc Natl Acad Sci U S A. 1979 Apr;76(4):1967-71 PMID: 109836
  4. Cultured renal epithelial cells from birds and mice: enhanced resistance of avian cells to oxidative stress and DNA damage.
    J Gerontol A Biol Sci Med Sci. 1998 Jul;53(4):B287-92 PMID: 18314559
  5. Mutation hot spots in mammalian mitochondrial DNA.
    Genome Res. 2006 Feb;16(2):215-22 PMID: 16354751
  6. An evaluation of the molecular clock hypothesis using mammalian DNA sequences.
    J Mol Evol. 1987;25(4):330-42 PMID: 3118047
  7. H2O2 production of heart mitochondria and aging rate are slower in canaries and parakeets than in mice: sites of free radical generation and mechanisms involved.
    Mech Ageing Dev. 1998 Jun 15;103(2):133-46 PMID: 9701767
  8. On the number of segregating sites in genetical models without recombination.
    Theor Popul Biol. 1975 Apr;7(2):256-76 PMID: 1145509
  9. Comment on "Population size does not influence mitochondrial genetic diversity in animals".
    Science. 2006 Dec 1;314(5804):1390 PMID: 17138883
  10. Cytochrome b evolution in birds and mammals: an evaluation of the avian constraint hypothesis.
    Mol Biol Evol. 1999 Nov;16(11):1575-85 PMID: 10555289
  11. Metabolic rate, generation time, and the rate of molecular evolution in birds.
    Mol Phylogenet Evol. 1994 Dec;3(4):344-50 PMID: 7697191
  12. The Hill-Robertson effects extend from nucleus to mitochondria.
    Heredity (Edinb). 2007 Oct;99(4):357-8 PMID: 17687252
  13. Mitochondrial versus nuclear gene sequences in deep-level mammalian phylogeny reconstruction.
    Mol Biol Evol. 2001 Feb;18(2):132-43 PMID: 11158372
  14. Strong variations of mitochondrial mutation rate across mammals--the longevity hypothesis.
    Mol Biol Evol. 2008 Jan;25(1):120-30 PMID: 17998254
  15. A neutral model with fluctuating population size and its effective size.
    Genetics. 2002 May;161(1):381-8 PMID: 12019252
  16. No variation and low synonymous substitution rates in coral mtDNA despite high nuclear variation.
    BMC Evol Biol. 2006 Mar 16;6:24 PMID: 16542456
  17. Relaxed phylogenetics and dating with confidence.
    PLoS Biol. 2006 May;4(5):e88 PMID: 16683862
  18. Inferring speciation times under an episodic molecular clock.
    Syst Biol. 2007 Jun;56(3):453-66 PMID: 17558967
  19. Bayesian estimation of species divergence times under a molecular clock using multiple fossil calibrations with soft bounds.
    Mol Biol Evol. 2006 Jan;23(1):212-26 PMID: 16177230
  20. Avian mtDNA diversity?: An alternate explanation for low mtDNA diversity in birds: an age-old solution?
    Heredity (Edinb). 2008 May;100(5):443 PMID: 18270532
  21. Mitochondria and the W chromosome: low variability on the W chromosome in birds is more likely to indicate selection on mitochondrial genes.
    Heredity (Edinb). 2008 May;100(5):444-5 PMID: 18270529
  22. Determination of mitochondrial genetic diversity in mammals.
    Genetics. 2008 Jan;178(1):351-61 PMID: 18202378
  23. The rate of DNA evolution: effects of body size and temperature on the molecular clock.
    Proc Natl Acad Sci U S A. 2005 Jan 4;102(1):140-5 PMID: 15618408
  24. Calibration of a molecular clock in tits (Paridae)--do nucleotide substitution rates of mitochondrial genes deviate from the 2% rule?
    Mol Phylogenet Evol. 2007 Jul;44(1):1-14 PMID: 17512759
  25. Additional support for Afrotheria and Paenungulata, the performance of mitochondrial versus nuclear genes, and the impact of data partitions with heterogeneous base composition.
    Syst Biol. 1999 Mar;48(1):65-75 PMID: 12078646
  26. Mitochondrial DNA repeats constrain the life span of mammals.
    Trends Genet. 2004 May;20(5):226-9 PMID: 15109774
  27. A mitogenomic timescale for birds detects variable phylogenetic rates of molecular evolution and refutes the standard molecular clock.
    Mol Biol Evol. 2006 Sep;23(9):1731-40 PMID: 16774978
  28. Divergence time and evolutionary rate estimation with multilocus data.
    Syst Biol. 2002 Oct;51(5):689-702 PMID: 12396584
  29. Determinants of rate variation in mammalian DNA sequence evolution.
    J Mol Evol. 1996 Dec;43(6):610-21 PMID: 8995058
  30. Do island populations have less genetic variation than mainland populations?
    Heredity (Edinb). 1997 Mar;78 ( Pt 3):311-27 PMID: 9119706
  31. Bird evolution: testing the Metaves clade with six new mitochondrial genomes.
    BMC Evol Biol. 2008 Jan 23;8:20 PMID: 18215323
  32. The latitudinal gradient in recent speciation and extinction rates of birds and mammals.
    Science. 2007 Mar 16;315(5818):1574-6 PMID: 17363673
  33. The incomplete natural history of mitochondria.
    Mol Ecol. 2004 Apr;13(4):729-44 PMID: 15012752
  34. Estimating the rate of evolution of the rate of molecular evolution.
    Mol Biol Evol. 1998 Dec;15(12):1647-57 PMID: 9866200
  35. Excess amino acid polymorphism in mitochondrial DNA: contrasts among genes from Drosophila, mice, and humans.
    Mol Biol Evol. 1996 Jul;13(6):735-48 PMID: 8754210
  36. Problems with mitochondrial DNA as a marker in population, phylogeographic and phylogenetic studies: the effects of inherited symbionts.
    Proc Biol Sci. 2005 Aug 7;272(1572):1525-34 PMID: 16048766
  37. A simple, fast, and accurate algorithm to estimate large phylogenies by maximum likelihood.
    Syst Biol. 2003 Oct;52(5):696-704 PMID: 14530136
  38. Is the population size of a species relevant to its evolution?
    Evolution. 2001 Nov 11;55(11):2161-9 PMID: 11794777
  39. Cytochrome b phylogeny and the taxonomy of great apes and mammals.
    Mol Biol Evol. 2001 Apr;18(4):465-71 PMID: 11264397
  40. There is no universal molecular clock for invertebrates, but rate variation does not scale with body size.
    Proc Natl Acad Sci U S A. 2006 May 9;103(19):7366-71 PMID: 16651532
  41. Slow mitochondrial COI sequence evolution at the base of the metazoan tree and its implications for DNA barcoding.
    J Mol Evol. 2008 Feb;66(2):167-74 PMID: 18259800
  42. Resolving the root of the avian mitogenomic tree by breaking up long branches.
    Mol Phylogenet Evol. 2007 Jan;42(1):1-13 PMID: 16854605
  43. The evolutionary radiation of Arvicolinae rodents (voles and lemmings): relative contribution of nuclear and mitochondrial DNA phylogenies.
    BMC Evol Biol. 2006 Oct 09;6:80 PMID: 17029633
  44. An examination of the generation-time effect on molecular evolution.
    Proc Natl Acad Sci U S A. 1993 Nov 15;90(22):10676-80 PMID: 8248159
  45. Bio++: a set of C++ libraries for sequence analysis, phylogenetics, molecular evolution and population genetics.
    BMC Bioinformatics. 2006 Apr 04;7:188 PMID: 16594991
  46. Accumulation of slightly deleterious mutations in mitochondrial protein-coding genes of large versus small mammals.
    Proc Natl Acad Sci U S A. 2007 Aug 14;104(33):13390-5 PMID: 17679693
  47. Vicariance biogeography in the Pleistocene and speciation in North American wood warblers: a test of Mengel's model.
    Proc Natl Acad Sci U S A. 1992 Jul 15;89(14):6624-8 PMID: 11607307
  48. Population size does not influence mitochondrial genetic diversity in animals.
    Science. 2006 Apr 28;312(5773):570-2 PMID: 16645093
  49. Most species are not driven to extinction before genetic factors impact them.
    Proc Natl Acad Sci U S A. 2004 Oct 19;101(42):15261-4 PMID: 15477597
  50. Rates of mitochondrial DNA evolution in sharks are slow compared with mammals.
    Nature. 1992 May 14;357(6374):153-5 PMID: 1579163
  51. Phylogeny and diversification of the largest avian radiation.
    Proc Natl Acad Sci U S A. 2004 Jul 27;101(30):11040-5 PMID: 15263073
  52. bold: The Barcode of Life Data System (http://www.barcodinglife.org).
    Mol Ecol Notes. 2007 May 1;7(3):355-364 PMID: 18784790
  53. Dynamic evolution of plant mitochondrial genomes: mobile genes and introns and highly variable mutation rates.
    Proc Natl Acad Sci U S A. 2000 Jun 20;97(13):6960-6 PMID: 10860957
  54. Birds as long-lived animal models for the study of aging.
    Exp Gerontol. 2003 Nov-Dec;38(11-12):1365-75 PMID: 14698817
  55. HAGR: the Human Ageing Genomic Resources.
    Nucleic Acids Res. 2005 Jan 1;33(Database issue):D537-43 PMID: 15608256
  56. Correlates of substitution rate variation in mammalian protein-coding sequences.
    BMC Evol Biol. 2008 Feb 19;8:53 PMID: 18284663
  57. Comparative biology of aging in birds: an update.
    Exp Gerontol. 2001 Apr;36(4-6):869-83 PMID: 11295520
  58. Body size, metabolic rate, generation time, and the molecular clock.
    Proc Natl Acad Sci U S A. 1993 May 1;90(9):4087-91 PMID: 8483925
  59. Parallel radiations in the primary clades of birds.
    Evolution. 2004 Nov;58(11):2558-73 PMID: 15612298
  60. Evolutionary genetics. Clonal inheritance of avian mitochondrial DNA.
    Nature. 2001 Sep 6;413(6851):37-8 PMID: 11544517
  61. Calibrating the avian molecular clock.
    Mol Ecol. 2008 May;17(10):2321-8 PMID: 18422932
  62. Polymorphix: a sequence polymorphism database.
    Nucleic Acids Res. 2005 Jan 1;33(Database issue):D481-4 PMID: 15608242
  63. CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice.
    Nucleic Acids Res. 1994 Nov 11;22(22):4673-80 PMID: 7984417
  64. Statistical method for testing the neutral mutation hypothesis by DNA polymorphism.
    Genetics. 1989 Nov;123(3):585-95 PMID: 2513255
  65. Lineage-specific evolutionary rate in mammalian mtDNA.
    Mol Biol Evol. 2000 Jul;17(7):1022-31 PMID: 10889215
  66. Calibration of mitochondrial DNA evolution in geese.
    J Mol Evol. 1987;24(3):212-7 PMID: 3033252
  67. Thermal habit, metabolic rate and the evolution of mitochondrial DNA.
    Trends Ecol Evol. 1994 Apr;9(4):125-31 PMID: 21236795
  68. Diversification of Neoaves: integration of molecular sequence data and fossils.
    Biol Lett. 2006 Dec 22;2(4):543-7 PMID: 17148284
  69. Mitochondrial genomes and avian phylogeny: complex characters and resolvability without explosive radiations.
    Mol Biol Evol. 2007 Jan;24(1):269-80 PMID: 17062634
  70. Free radicals and aging.
    Trends Neurosci. 2004 Oct;27(10):595-600 PMID: 15374670
  71. The origins of eukaryotic gene structure.
    Mol Biol Evol. 2006 Feb;23(2):450-68 PMID: 16280547
Article Info
Journal
BMC evolutionary biology
Abbr.
BMC Evol Biol
ISSN
1471-2148
Published
2009-03-10
Epub
2009-00-10
Pages
54
Language
English
Region
England
NLM ID
100966975
PMCID
PMC2660308
Subset
IM
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