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Sex and Aging
David G. Le Couteur, Rozalyn M. Anderson, Rafael de Cabo
The Journals of Gerontology Series A · 2017 · ▲ 14 citations
Genomic instability
Telomere attrition
Mitochondrial dysfunction
Dysbiosis
Epigenetic alterations
Caloric restriction
Rapamycin / mTOR inhibition
Human
Mouse
C. elegans
Drosophila
Cell culture / in vitro
Review
Abstract
Women have longer lifespans than men in all populations (1) and this has been attributed to various factors such as lifestyle, hormones, or asymmetry in the inheritance of mitochondrial DNA and chromosomes (2). Despite their longer lifespans, women tend to have longer periods of frailty and disability, the so-called “male-female health-survival paradox” (3) which suggests that sex influences the relationship between the deleterious effects of aging and lifespan in humans. In animal experiments, sex influences the rate of aging and the responses to many antiaging interventions including dietary restriction, genetic manipulation and pharmaceutical agents (2,4). Yet as pointed out by Pomatto et al. in this issue (5), only 22–42% of all aging studies report the sex of the animals used, and even less report the sex of cell lines. Regardless of the profound effects of sex on aging, it seems that biogerontologists have yet to fully embrace research into the effects of sex on the aging process. Therefore in this special issue of the Journal of Gerontology Biological Sciences, we have published a series of review and research articles that explore the relationship between sex and aging in animals and humans. One of the key questions is whether sex differences in aging are unique to humans or occur across species. Amongst free-living mammals there is a general pattern that females outlive males while the effects of sex on aging on laboratory models of aging such as Caenorhabditis elegans, Drosophila, and mice are more difficult to discern due to variability in animal husbandry and experimental design among the various aging studies (2). The effect of sex on lifespan of companion dogs is particularly interesting and important because dogs are a model for studies of antiaging drugs such as mTOR(definition)-inhibiting drug studied for extending healthspan and lifespan." style="text-decoration:underline dotted; text-underline-offset:2px; cursor:help;">rapamycin(definition) (6) and caloric restriction(definition) (7), and because many dogs are neutered so that the effects of sex hormones on lifespan can be evaluated. Hoffman et al. (8) studied two very large veterinary databases and found few sex differences in lifespan or causes of death and concluded that any sex differences in lifespan are secondary to neutering. Neutering increased lifespan consistent with the concept that sex hormones are detrimental to aging and that there maybe be a trade-off between longevity and reproduction. Gibbs et al. (9) provide insight into the effects of sex on the response of mice to acarbose, a pharmaceutical agent that delays aging. On average across multiple studies, male and female mice have similar lifespans, although this varies substantially probably secondary to differences in animal husbandry and genetics. In the Interventions Testing Program (ITP), the median lifespan of female mice was about 13% longer than male mice (2), which is probably the most robust indicator that we have of sex differences in lifespan of mice. Perhaps more important is the variability in the lifespan responses of mice to genetic, pharmacological, and dietary interventions (2), including acarbose. Acarbose is a medication that is approved for the treatment and prevention of type II diabetes mellitus in humans. It inhibits intestinal alpha glucosidase, thereby reducing the breakdown of complex carbohydrates so that less glucose is absorbed. Acarbose increased median lifespan in male mice by 22% but only 5% in female mice, while the effects on maximum lifespan were 11% and 9%, respectively (10). To further explore mechanisms for these sex differences, Gibbs et al. (9) fed mice either control diet ad libitum, with 40% caloric restriction or with 0.1% acarbose until 12 months of age when liver and cecal contents were analysed for metabolomics. There were large differences by sex in the response of liver metabolome to both acarbose and caloric restriction with over 50% of metabolites dissimilar between males and females. However, there were no sex differences in the gut metabolome which is perhaps not surprising since the microbiome is separate to (if not independent from) its host. Acarbose only recapitulated some of the characteristic changes in both cecal and liver metabolome generated by caloric restriction. It is interesting that caloric restriction was associated with increased cecal metabolites while acarbose, which tends to increase food consumption, reduced cecal metabolites. This might reflect bacterial population-type differences in the gut microbiome’s response to nitrogen sources, where previous independent studies found that one guild utilized dietary nitrogen, while the other guild used host mucus as its nitrogen source (11). The study by Gibbs et al. provides an excellent example of the value in evaluating sex differences in the response to interventions that influence aging. Fischer and Riddle (12) reviewed sex differences in genomic instability with aging across a range of species including humans. The telomere(definition) attrition, cellular senescence(definition))." style="text-decoration:underline dotted; text-underline-offset:2px; cursor:help;">Hallmarks of Aging(definition) include many genetic mechanisms, specifically genomic instability, as well as other genetic changes to the epigenome, telomeres, and mitochondria (13), all of which are covered in this extensive review. Fischer and Riddle find that somatic mutation rate and load are higher in men which may account for earlier onset of cancers in men. This does not seem to be secondary to sex differences in the efficiency of DNA repair. On the other hand, sex differences in laboratory animals such as mice and Drosophila occur but are complex and not as well described as in humans. The effects of sex on age-related mitochondrial mutations are largely unexplored because the vast majority (88%) of published studies failed to indicate the sex of the animals used in the study. Women may have longer telomeres regardless of age or cell type while the effects of sex on epigenetics and nuclear architecture are not clear. Given the established importance of genetic mechanisms of aging, the authors conclude that are an “urgent need and terrific opportunities” for studies that specifically evaluate the effects of sex o
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APA
Couteur, D.G.L., Anderson, R.M., & Cabo, R.D. (2017). Sex and Aging. <em>The Journals of Gerontology Series A</em>. https://doi.org/10.1093/gerona/glx221
Vancouver
Couteur DGL, Anderson RM, Cabo RD. Sex and Aging. The Journals of Gerontology Series A. 2017. doi:10.1093/gerona/glx221.
BibTeX
@article{david2017Sexand,
title = {Sex and Aging},
author = {David G. Le Couteur and Rozalyn M. Anderson and Rafael de Cabo},
journal = {The Journals of Gerontology Series A},
year = {2017},
doi = {10.1093/gerona/glx221},
}
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