Atherosclerosis as the Damocles’ sword of human evolution: insights from nonhuman ape-like primates, ancient human remains, and isolated modern human populations

Author:

Kumar Annora Ai-Wei1ORCID,Huangfu Gavin123,Figtree Gemma A.45,Dwivedi Girish123ORCID

Affiliation:

1. Medical School, The University of Western Australia, Crawley, Western Australia, Australia

2. Department of Cardiology, Fiona Stanley Hospital, Murdoch, Western Australia, Australia

3. Harry Perkins Institute of Medical Research, Murdoch, Western Australia, Australia

4. Cardiovascular Discovery Group, Kolling Institute of Medical Research, St. Leonards, New South Wales, Australia

5. Department of Cardiology, Royal North Shore Hospital, St. Leonards, New South Wales, Australia

Abstract

Atherosclerosis is the leading cause of death worldwide, and the predominant risk factors are advanced age and high-circulating low-density lipoprotein cholesterol (LDL-C). However, the findings of atherosclerosis in relatively young mummified remains and a lack of atherosclerosis in chimpanzees despite high LDL-C call into question the role of traditional cardiovascular risk factors. The inflammatory theory of atherosclerosis may explain the discrepancies between traditional risk factors and observed phenomena in current literature. Following the divergence from chimpanzees several millennia ago, loss of function mutations in immune regulatory genes and changes in gene expression have resulted in an overactive human immune system. The ubiquity of atherosclerosis in the modern era may reflect a selective pressure that enhanced the innate immune response at the cost of atherogenesis and other chronic disease states. Evidence provided from the fields of genetics, evolutionary biology, and paleoanthropology demonstrates a sort of circular dependency between inflammation, immune system functioning, and evolution at both a species and cellular level. More recently, the role of proinflammatory stimuli, somatic mutations, and the gene-environment effect appear to be underappreciated elements in the development and progression of atherosclerosis. Neurobiological stress, metabolic syndrome, and traditional cardiovascular risk factors may instead function as intermediary links between inflammation and atherosclerosis. Therefore, considering evolution as a mechanistic process and atherosclerosis as part of the inertia of evolution, greater insight into future preventative and therapeutic interventions for atherosclerosis can be gained by examining the past.

Publisher

American Physiological Society

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