Cancer cachexia-induced muscle atrophy: evidence for alterations in microRNAs important for muscle size

David E Lee1, Jacob L Brown1, Megan E Rosa-Caldwell1

  • 1Integrative Muscle Metabolism Laboratory, University of Arkansas, Fayetteville, Arkansas.

Physiological Genomics
|March 26, 2017
PubMed

Insights

Cancer cachexia causes muscle atrophy, impairing patients. This study identified nine key microRNAs (miRNAs) involved in muscle wasting, offering potential targets to combat cancer-related muscle loss.

Area of Science:

  • Oncology
  • Molecular Biology
  • Muscle Physiology

Background:

  • Cancer cachexia is a severe condition characterized by muscle atrophy, significantly impacting patient function and survival.
  • MicroRNAs (miRNAs) play roles in muscle regulation, but their specific involvement in cancer cachexia-induced muscle atrophy remains underexplored.

Purpose of the Study:

  • To investigate the microRNA (miRNA) profile of skeletal muscle during cancer cachexia.
  • To identify specific miRNAs implicated in the catabolic processes leading to muscle wasting in cancer patients.

Main Methods:

  • Lewis lung carcinoma (LLC) cells were used to induce cachexia in C57BL/6J mice over 4 weeks.
  • Tibialis anterior muscles were harvested for small RNA isolation and subsequent miRNA sequencing.
  • Ingenuity Pathway Analysis was employed to analyze miRNA functions and predict gene network alterations.

Main Results:

  • Mice with LLC tumors exhibited significant reductions in tibialis anterior muscle mass (18.5%) and cross-sectional area (40%) compared to controls.
  • Out of 371 detected miRNAs, nine were found to be differentially expressed in cachectic muscle.
  • Altered miRNAs were associated with cancer, cell signaling, and cellular development pathways, with predicted impacts on Akt and FOXO3.

Conclusions:

  • This study reveals a distinct miRNA signature associated with cancer cachexia-induced muscle atrophy.
  • The identified differentially expressed miRNAs and predicted gene targets provide a foundation for developing novel therapeutic strategies.
  • Targeting these specific miRNAs or their downstream effectors may offer a means to attenuate muscle loss in cancer cachexia.

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