Small-molecule inhibition of MuRF1 attenuates skeletal muscle atrophy and dysfunction in cardiac cachexia

Thomas Scott Bowen, Volker Adams, Sarah Werner1

  • 1Department of Internal Medicine and Cardiology, Leipzig University-Heart Center, Leipzig, Germany.

Abstract

Insights

Researchers developed a novel compound to inhibit muscle ring finger 1 (MuRF1) E3 ligase activity. This compound successfully prevented muscle wasting and improved function in cardiac cachexia models.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Pharmacology

Background:

  • Muscle ring finger 1 (MuRF1) is a key E3 ligase in skeletal muscle wasting.
  • Existing therapies to inhibit MuRF1 are limited, especially for in vivo applications.
  • Cardiac cachexia involves significant muscle wasting, necessitating novel therapeutic targets.

Purpose of the Study:

  • To develop and evaluate a novel small molecule inhibitor of MuRF1.
  • To target the central coiled coil domain of MuRF1.
  • To assess the compound's efficacy in preventing muscle wasting in cardiac cachexia models.

Main Methods:

  • High-throughput screening of 130,000 compounds to identify MuRF1-titin interaction inhibitors.
  • Synthesis and administration of nine prioritized compounds to dexamethasone-treated C2C12 myotubes and monocrotaline-induced cardiac cachexia mouse models.
  • Proteomic and Western blot analyses to assess molecular mechanisms.

Main Results:

  • One compound (ID#704946) inhibited MuRF1-titin complexation and E3 ligase activity with low toxicity.
  • ID#704946 prevented myotube atrophy and attenuated cardiac cachexia-induced muscle fiber atrophy and contractile dysfunction in vivo.
  • Treatment with ID#704946 normalized apoptosis and protein synthesis pathways, reducing actin ubiquitination and proteasome activity.

Conclusions:

  • A novel compound targeting MuRF1's protein recognition domain was identified.
  • This compound effectively attenuated in vivo muscle wasting and contractile dysfunction in cardiac cachexia.
  • The mechanism involves protecting protein synthesis while down-regulating apoptosis and proteasomal degradation.