Molecular Challenges and Opportunities in Climate Change-Induced Kidney Diseases

Biomolecules. 2024 Feb 21;14(3):251. doi: 10.3390/biom14030251.

Abstract

As temperatures continue to modify due to weather changes, more regions are being exposed to extreme heat and cold. Physiological distress due to low and high temperatures can affect the heart, blood vessels, liver, and especially, the kidneys. Dehydration causes impaired cell function and heat itself triggers cellular stress. The decline in circulating plasma volume by sweat, which stresses the renal and cardiovascular systems, has been related to some molecules that are crucial players in preventing or provoking cellular damage. Hypovolemia and blood redistribution to cutaneous blood vessels reduce perfusion to the kidney triggering the activation of the renin-angiotensin-aldosterone system. In this review, we expose a deeper understanding of the modulation of molecules that interact with other proteins in humans to provide significant findings in the context of extreme heat and cold environments and renal damage reversal. We focus on the molecular changes exerted by temperature and dehydration in the renal system as both parameters are heavily implicated by weather change (e.g., vasopressin-induced fructose uptake, fructogenesis, and hypertension). We also discuss the compensatory mechanisms activated under extreme temperatures that can exert further kidney injury. To finalize, we place special emphasis on the renal mechanisms of protection against temperature extremes, focusing on two important protein groups: heat shock proteins and sirtuins.

Keywords: RAAS; chronic kidney disease; fructose uptake; heat shock proteins; heat stress; molecular mechanisms; public health; sirtuins; therapeutic.

Publication types

  • Review

MeSH terms

  • Climate Change
  • Dehydration* / metabolism
  • Humans
  • Kidney / metabolism
  • Kidney Diseases* / etiology
  • Kidney Diseases* / metabolism
  • Temperature

Grants and funding

This research received no external funding.