Antagonistic pleiotropy and mutation accumulation influence human senescence and disease

被引:74
作者
Antonio Rodriguez, Juan [1 ]
Marigorta, Urko M. [1 ,2 ]
Hughes, David A. [1 ]
Spataro, Nino [1 ]
Bosch, Elena [1 ]
Navarro, Arcadi [1 ,3 ,4 ,5 ]
机构
[1] Univ Pompeu Fabra, Inst Evolutionary Biol, Dept Expt & Hlth Sci, CSIC, Barcelona 08003, Catalonia, Spain
[2] Georgia Inst Technol, Sch Biol, Atlanta, GA 30332 USA
[3] BiST, CRG, Barcelona 08003, Catalonia, Spain
[4] Natl Inst Bioinformat INB, Barcelona 08003, Catalonia, Spain
[5] ICREA, Catalonia 08003, Spain
关键词
GENE-EXPRESSION; AGE; RESOURCES; EVOLUTION;
D O I
10.1038/s41559-016-0055
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071301 [植物生态学];
摘要
Senescence has long been a public health challenge as well as a fascinating evolutionary problem. There is neither a universally accepted theory for its ultimate causes, nor a consensus about what may be its impact on human health. Here we test the predictions of two evolutionary explanations of senescence-mutation accumulation and antagonistic pleiotropy-which postulate that genetic variants with harmful effects in old ages can be tolerated, or even favoured, by natural selection at early ages. Using data from genome-wide association studies (GWAS), we study the effects of genetic variants associated with diseases appearing at different periods in life, when they are expected to have different impacts on fitness. Data fit theoretical expectations. Namely, we observe higher risk allele frequencies combined with large effect sizes for late-onset diseases, and detect a significant excess of early-late antagonistically pleiotropic variants that, strikingly, tend to be harboured by genes related to ageing. Beyond providing systematic, genome-wide evidence for evolutionary theories of senescence in our species and contributing to the long-standing question of whether senescence is the result of adaptation, our approach reveals relationships between previously unrelated pathologies, potentially contributing to tackling the problem of an ageing population.
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页数:5
相关论文
共 41 条
[1]
[2]
An integrated map of genetic variation from 1,092 human genomes [J].
Altshuler, David M. ;
Durbin, Richard M. ;
Abecasis, Goncalo R. ;
Bentley, David R. ;
Chakravarti, Aravinda ;
Clark, Andrew G. ;
Donnelly, Peter ;
Eichler, Evan E. ;
Flicek, Paul ;
Gabriel, Stacey B. ;
Gibbs, Richard A. ;
Green, Eric D. ;
Hurles, Matthew E. ;
Knoppers, Bartha M. ;
Korbel, Jan O. ;
Lander, Eric S. ;
Lee, Charles ;
Lehrach, Hans ;
Mardis, Elaine R. ;
Marth, Gabor T. ;
McVean, Gil A. ;
Nickerson, Deborah A. ;
Schmidt, Jeanette P. ;
Sherry, Stephen T. ;
Wang, Jun ;
Wilson, Richard K. ;
Gibbs, Richard A. ;
Dinh, Huyen ;
Kovar, Christie ;
Lee, Sandra ;
Lewis, Lora ;
Muzny, Donna ;
Reid, Jeff ;
Wang, Min ;
Wang, Jun ;
Fang, Xiaodong ;
Guo, Xiaosen ;
Jian, Min ;
Jiang, Hui ;
Jin, Xin ;
Li, Guoqing ;
Li, Jingxiang ;
Li, Yingrui ;
Li, Zhuo ;
Liu, Xiao ;
Lu, Yao ;
Ma, Xuedi ;
Su, Zhe ;
Tai, Shuaishuai ;
Tang, Meifang .
NATURE, 2012, 491 (7422) :56-65
[3]
[Anonymous], NATURE
[4]
Mechanisms in cardiovascular diseases: how useful are medical textbooks, eMedicine, and YouTube? [J].
Azer, Samy A. .
ADVANCES IN PHYSIOLOGY EDUCATION, 2014, 38 (02) :124-134
[5]
Revisiting the antagonistic pleiotropy theory of aging TOR-driven program and quasi-program [J].
Blagosklonny, Mikhail V. .
CELL CYCLE, 2010, 9 (16) :3151-3156
[6]
Carey J.R., 2003, Longevity: The biology and demography of life span, DOI 10.1515/9780691224084
[7]
Older age becomes common late in human evolution [J].
Caspari, R ;
Lee, SH .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (30) :10895-10900
[9]
Charlesworth B., 1980, EVOLUTION AGE STRUCT
[10]
The Human Ageing Genomic Resources: online databases and tools for biogerontologists [J].
de Magalhaes, Joao Pedro ;
Budovsky, Arie ;
Lehmann, Gilad ;
Costa, Joana ;
Li, Yang ;
Fraifeld, Vadim ;
Church, George M. .
AGING CELL, 2009, 8 (01) :65-72