Anabolic deficits and divergent unfolded protein response underlie skeletal and cardiac muscle growth impairments in the Yoshida hepatoma tumor model of cancer cachexia

Physiol Rep. 2024 Sep;12(18):e70044. doi: 10.14814/phy2.70044.

Abstract

Cancer cachexia manifests as whole body wasting, however, the precise mechanisms governing the alterations in skeletal muscle and cardiac anabolism have yet to be fully elucidated. In this study, we explored changes in anabolic processes in both skeletal and cardiac muscles in the Yoshida AH-130 ascites hepatoma model of cancer cachexia. AH-130 tumor-bearing rats experienced significant losses in body weight, skeletal muscle, and heart mass. Skeletal and cardiac muscle loss was associated with decreased ribosomal (r)RNA, and hypophosphorylation of the eukaryotic factor 4E binding protein 1. Endoplasmic reticulum stress was evident by higher activating transcription factor mRNA in skeletal muscle and growth arrest and DNA damage-inducible protein (GADD)34 mRNA in both skeletal and cardiac muscles. Tumors provoked an increase in tissue expression of interferon-γ in the heart, while an increase in interleukin-1β mRNA was apparent in both skeletal and cardiac muscles. We conclude that compromised skeletal muscle and heart mass in the Yoshida AH-130 ascites hepatoma model involves a marked reduction translational capacity and efficiency. Furthermore, our observations suggest that endoplasmic reticulum stress and tissue production of pro-inflammatory factors may play a role in the development of skeletal and cardiac muscle wasting.

Keywords: cancer; inflammation; ribosomal RNA; unfolded protein response; wasting.

MeSH terms

  • Animals
  • Cachexia* / etiology
  • Cachexia* / genetics
  • Cachexia* / metabolism
  • Cachexia* / pathology
  • Carcinoma, Hepatocellular / metabolism
  • Carcinoma, Hepatocellular / pathology
  • Endoplasmic Reticulum Stress
  • Liver Neoplasms, Experimental / metabolism
  • Liver Neoplasms, Experimental / pathology
  • Male
  • Muscle, Skeletal* / metabolism
  • Muscle, Skeletal* / pathology
  • Myocardium* / metabolism
  • Myocardium* / pathology
  • Rats
  • Rats, Wistar
  • Transcription Factor CHOP / genetics
  • Transcription Factor CHOP / metabolism
  • Unfolded Protein Response*

Substances

  • Transcription Factor CHOP