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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.
Background:
Muscle ring finger 1 (MuRF1) is a muscle-specific ubiquitin E3 ligase activated during clinical conditions associated with skeletal muscle wasting. Yet, there remains a paucity of therapeutic interventions that directly inhibit MuRF1 function, particularly in vivo. The current study, therefore, developed a novel compound targeting the central coiled coil domain of MuRF1 to inhibit muscle wasting in cardiac cachexia.
Methods:
We identified small molecules that interfere with the MuRF1-titin interaction from a 130 000 compound screen based on Alpha Technology. A subset of nine prioritized compounds were synthesized and administrated during conditions of muscle wasting, that is, to C2C12 muscle cells treated with dexamethasone and to mice treated with monocrotaline to induce cardiac cachexia.
Results:
The nine selected compounds inhibited MuRF1-titin complexation with IC50 values <25 μM, of which three were found to also inhibit MuRF1 E3 ligase activity, with one further showing low toxicity on cultured myotubes. This last compound, EMBL chemical core ID#704946, also prevented atrophy in myotubes induced by dexamethasone and attenuated fibre atrophy and contractile dysfunction in mice during cardiac cachexia. Proteomic and western blot analyses showed that stress pathways were attenuated by ID#704946 treatment, including down-regulation of MuRF1 and normalization of proteins associated with apoptosis (BAX) and protein synthesis (elF2B-delta). Furthermore, actin ubiquitinylation and proteasome activity was attenuated.
Conclusions:
We identified a novel compound directed to MuRF1's central myofibrillar protein recognition domain. This compound attenuated in vivo muscle wasting and contractile dysfunction in cardiac cachexia by protecting de novo protein synthesis and by down-regulating apoptosis and ubiquitin-proteasome-dependent proteolysis.
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.

