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Molecular footprint of Medawar's mutation accumulation process in mammalian aging.

Publication ,  Journal Article
Turan, ZG; Parvizi, P; Dönertaş, HM; Tung, J; Khaitovich, P; Somel, M
Published in: Aging cell
August 2019

Medawar's mutation accumulation hypothesis explains aging by the declining force of natural selection with age: Slightly deleterious germline mutations expressed in old age can drift to fixation and thereby lead to aging-related phenotypes. Although widely cited, empirical evidence for this hypothesis has remained limited. Here, we test one of its predictions that genes relatively highly expressed in old adults should be under weaker purifying selection than genes relatively highly expressed in young adults. Combining 66 transcriptome datasets (including 16 tissues from five mammalian species) with sequence conservation estimates across mammals, here we report that the overall conservation level of expressed genes is lower at old age compared to young adulthood. This age-related decrease in transcriptome conservation (ADICT) is systematically observed in diverse mammalian tissues, including the brain, liver, lung, and artery, but not in others, most notably in the muscle and heart. Where observed, ADICT is driven partly by poorly conserved genes being up-regulated during aging. In general, the more often a gene is found up-regulated with age among tissues and species, the lower its evolutionary conservation. Poorly conserved and up-regulated genes have overlapping functional properties that include responses to age-associated tissue damage, such as apoptosis and inflammation. Meanwhile, these genes do not appear to be under positive selection. Hence, genes contributing to old age phenotypes are found to harbor an excess of slightly deleterious alleles, at least in certain tissues. This supports the notion that genetic drift shapes aging in multicellular organisms, consistent with Medawar's mutation accumulation hypothesis.

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Published In

Aging cell

DOI

EISSN

1474-9726

ISSN

1474-9718

Publication Date

August 2019

Volume

18

Issue

4

Start / End Page

e12965

Related Subject Headings

  • Up-Regulation
  • Transcriptome
  • Selection, Genetic
  • Rats
  • Phenotype
  • Mutation Accumulation
  • Mice
  • Macaca
  • Humans
  • Genetic Drift
 

Citation

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Turan, Z. G., Parvizi, P., Dönertaş, H. M., Tung, J., Khaitovich, P., & Somel, M. (2019). Molecular footprint of Medawar's mutation accumulation process in mammalian aging. Aging Cell, 18(4), e12965. https://doi.org/10.1111/acel.12965
Turan, Zeliha Gözde, Poorya Parvizi, Handan Melike Dönertaş, Jenny Tung, Philipp Khaitovich, and Mehmet Somel. “Molecular footprint of Medawar's mutation accumulation process in mammalian aging.Aging Cell 18, no. 4 (August 2019): e12965. https://doi.org/10.1111/acel.12965.
Turan ZG, Parvizi P, Dönertaş HM, Tung J, Khaitovich P, Somel M. Molecular footprint of Medawar's mutation accumulation process in mammalian aging. Aging cell. 2019 Aug;18(4):e12965.
Turan, Zeliha Gözde, et al. “Molecular footprint of Medawar's mutation accumulation process in mammalian aging.Aging Cell, vol. 18, no. 4, Aug. 2019, p. e12965. Epmc, doi:10.1111/acel.12965.
Turan ZG, Parvizi P, Dönertaş HM, Tung J, Khaitovich P, Somel M. Molecular footprint of Medawar's mutation accumulation process in mammalian aging. Aging cell. 2019 Aug;18(4):e12965.
Journal cover image

Published In

Aging cell

DOI

EISSN

1474-9726

ISSN

1474-9718

Publication Date

August 2019

Volume

18

Issue

4

Start / End Page

e12965

Related Subject Headings

  • Up-Regulation
  • Transcriptome
  • Selection, Genetic
  • Rats
  • Phenotype
  • Mutation Accumulation
  • Mice
  • Macaca
  • Humans
  • Genetic Drift