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Cognitive impairment caused by compromised hepatic ketogenesis is prevented by endurance exercise

  • Taylor J. Kelty
  • , Nathan R. Kerr
  • , Chih H. Chou
  • , Grace E. Shryack
  • , Christopher L. Taylor
  • , Alexa A. Krause
  • , Alexandra R. Knutson
  • , Josh Bunten
  • , Tom E. Childs
  • , Grace M. Meers
  • , Ryan J. Dashek
  • , Patrycja Puchalska
  • , Peter A. Crawford
  • , John P. Thyfault
  • , Frank W. Booth
  • , R. Scott Rector

Research output: Contribution to journalArticlepeer-review

Abstract

Abstract: Extensive research has demonstrated endurance exercise to be neuroprotective. Whether these neuroprotective benefits are mediated, in part, by hepatic ketone production remains unclear. To investigate the role of hepatic ketone production on brain health during exercise, healthy 6-month-old female rats underwent viral knockdown of the rate-limiting enzyme in the liver that catalyses the first reaction in ketogenesis: 3-hydroxymethylglutaryl-CoA synthase 2 (HMGCS2). Rats were then subjected to either a bout of acute exercise or 4 weeks of chronic treadmill running (5 days/week) and cognitive behavioural testing. Acute exercise elevated ketone plasma concentration 1 h following exercise. Hepatic HMGCS2 knockdown, verified by protein expression, reduced ketone plasma concentration 1 h after acute exercise and 48 h after chronic exercise. Proteomic analysis and enrichment of the frontal cortex revealed hepatic HMGCS2 knockdown reduced markers of mitochondrial function 1 h after acute exercise. HMGCS2 knockdown significantly reduced state 3 complex I + II respiration in isolated mitochondria from the frontal cortex after chronic exercise. Spatial memory and protein markers of synaptic plasticity were significantly reduced by HMGCS2 knockdown. These deficiencies were prevented by chronic endurance exercise training. In summary, these are the first data to propose that hepatic ketogenesis is required to maintain cognition and mitochondrial function, irrespective of training status, and that endurance exercise can overcome neuropathology caused by insufficient hepatic ketogenesis. These results establish a mechanistic link between liver and brain health that enhance our understanding of how peripheral tissue metabolism influences brain health. (Figure presented.). Key points: Decades of literature demonstrate endurance exercise to be neuroprotective. Whether neuroprotective benefits are mediated, in part, by hepatic ketone production remains unclear. This study provides the first set of data that suggest hepatic ketogenesis is required to maintain cognition, synaptic plasticity and mitochondrial function. These data indicate endurance exercise can protect against cognitive decline caused by compromised hepatic ketogenesis. These results establish a mechanistic link between liver and brain function, prompting further investigation of how hepatic metabolism influences brain health.

Original languageEnglish (US)
Pages (from-to)2491-2511
Number of pages21
JournalJournal of Physiology
Volume604
Issue number6
DOIs
StatePublished - Mar 15 2026

Bibliographical note

Publisher Copyright:
© 2025 The Authors. The Journal of Physiology © 2025 The Physiological Society.

Keywords

  • HMGCS2
  • cerebral cortex
  • cognitio
  • exercise
  • ketogenesis
  • liver
  • mitochondria
  • proteomics

PubMed: MeSH publication types

  • Journal Article
  • Research Support, N.I.H., Extramural
  • Research Support, U.S. Gov't, Non-P.H.S.

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