PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 25, 2026AJP Regulatory Integrative and Comparative Physiology0 citations

The impact of muscle inactivity and exercise training on histidine dipeptide homeostasis in rat skeletal muscle

View Full Paper
ASAmanda Romualdo SantanaBVBianca Scigliano VargasLBLuiz Roberto Grassmann Bechara

Key Points

  • The study aims to explore how muscle inactivity and exercise training affect carnosine and other histidine dipeptides in rat skeletal muscle.
  • Forty-five male Wistar rats divided into immobilisation, SHAM control, and immobilisation+exercise groups.
  • Muscles assessed for carnosine, anserine, total histidine-dipeptides, cross-sectional fibre area, and fibre type distribution.
  • Contractile function measured ex-vivo; gene expression assessed via real-time PCR.
  • Muscle inactivity led to a significant reduction in muscle mass, contractile function, and fibre area.
  • Carnosine and anserine content decreased due to long-term muscle inactivity post-denervation.
  • Exercise training did not significantly alter muscle histidine-dipeptides content.

Abstract

Evidence suggests that muscle activity can affect muscle carnosine, but the results are mixed. To address this question, we investigated muscle carnosine under the two extremes of the muscle activity-inactivity spectrum. Forty-five male Wistar rats were divided into 3 groups: immobilisation ( n=16), SHAM control ( n=14), and immobilisation+exercise ( n=15). In the immobilised groups, one side was submitted to a sciatic nerve sectioning surgery, with the opposite side being submitted to a SHAM control surgery, creating 4 experimental conditions: denervated (DEN), SHAM active control (SHAM), denervated+exercise (DEN+Ex), and SHAM+exercise (SHAM+Ex). The immobilisation period was 12 weeks, and the swimming training period was 10 weeks (4 times per week, up to 30 min per session). The tibialis anterior (TA) and soleus muscles from both sides were assessed for carnosine and anserine content, total histidine-dipeptides (HCDs), cross-sectional fibre area (CSA) and fibre type distribution. Contractile function was determined ex-vivo in the extensor digitorum longus and the expression of the Carns1, Cndp2 and TauT genes was determined with real-time PCR in TA. Physical inactivity reduced drastically muscle mass, contractile function, and fibre CSA. Long-term post-denervation muscle paralysis reduced muscle carnosine and anserine content, which was not dependent on diet, age, sex or fibre-type. This demonstrates that muscle inactivity is a strong modulator of muscle HCDs content, at least under extreme conditions. Gene expression was not significantly altered in any of the experimental conditions. Exercise training, on the other hand, did not affect muscle HCDs, and may be a less potent regulator of muscle HCDs content.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Santana et al. (2026) studied this question.

synapsesocial.com/papers/699e91eaf5123be5ed04fbcdhttps://doi.org/10.1152/ajpregu.00105.2025
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1The role of chronic muscle (in)activity on carnosine homeostasis: a study with spinal cord-injured athletes2021 · 6 citations
  2. 2Quantitative Analysis of Glutathione and Carnosine Adducts with 4-Hydroxy-2-nonenal in Muscle in a hSOD1G93A ALS Rat Model2024 · 5 citations
  3. 3High-Intensity Interval Training Augments Muscle Carnosine in the Absence of Dietary Beta-alanine Intake2018 · 40 citations
  4. 4PURIFICATION AND CHARACTERIZATION OF CARNOSINE SYNTHETASE FROM MOUSE OLFACTORY BULBS1978 · 114 citations
  5. 5Identification and Characterization of a Mouse Dipeptidase That Hydrolyzes l-Carnosine2005 · 50 citations