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Obestatin signalling counteracts glucocorticoid-induced skeletal muscle atrophy via NEDD4/KLF15 axis
Tania Cid-Díaz1, Saúl Leal-López2, Fátima Fernández-Barreiro1
1Laboratorio de Endocrinología Celular, Instituto de Investigación Sanitaria de Santiago (IDIS), Complejo Hospitalario Universitario de Santiago (CHUS), Servicio Gallego de Salud (SERGAS), Trav. Choupana s/n, Santiago de Compostela, Spain.
Background:
A therapeutic approach for the treatment of glucocorticoid-induced skeletal muscle atrophy should be based on the knowledge of the molecular mechanisms determining the unbalance between anabolic and catabolic processes and how to re-establish this balance. Here, we investigated whether the obestatin/GPR39 system, an autocrine signalling system acting on myogenesis and with anabolic effects on the skeletal muscle, could protect against chronic glucocorticoid-induced muscle atrophy.
Methods:
In this study, we used an in vivo model of muscle atrophy induced by the synthetic glucocorticoid dexamethasone to examine the liaison molecules that define the interaction between the glucocorticoid receptor and the obestatin/GPR39 systems. The findings were extended to in vitro effects on human atrophy using human KM155C25 myotubes.
Results:
KLF15 and FoxO transcription factors were identified as direct targets of obestatin signalling in the control of proteostasis in skeletal muscle. The KLF15-triggered gene expression program, including atrogenes and FoxOs, was regulated via KLF15 ubiquitination by the E3 ubiquitin ligase NEDD4. Additionally, a specific pattern of FoxO post-translational modification, including FoxO4 phosphorylation by Akt pathway, was critical in the regulation of the ubiquitin-proteasome system. The functional cooperativity between Akt and NEDD4 in the regulation of FoxO and KLF15 provides integrated cues to counteract muscle proteostasis and re-establish protein synthesis.
Conclusions:
The effective control of FoxO activity in response to glucocorticoid is critical to counteract muscle-related pathologies. These results highlight the potential of the obestatin/GPR39 system to fine-tune the effects of glucocorticoids on skeletal muscle wasting.
Insights
The obestatin/GPR39 system protects against glucocorticoid-induced muscle atrophy by regulating KLF15 and FoxO transcription factors. This system offers a potential therapeutic strategy for muscle wasting conditions.
Area of Science:
- Molecular Biology
- Skeletal Muscle Physiology
- Endocrinology
Background:
- Glucocorticoid-induced skeletal muscle atrophy results from an imbalance between anabolic and catabolic processes.
- Understanding molecular mechanisms is key to developing effective therapeutic strategies.
- The obestatin/GPR39 system, with known anabolic effects on skeletal muscle, was investigated for its protective potential.
Purpose of the Study:
- To investigate the obestatin/GPR39 system's role in protecting against glucocorticoid-induced muscle atrophy.
- To identify molecular interactions between glucocorticoid receptor and obestatin/GPR39 signaling pathways.
- To explore the therapeutic potential of the obestatin/GPR39 system in mitigating muscle wasting.
Main Methods:
- Utilized an in vivo model of dexamethasone-induced muscle atrophy.
- Examined liaison molecules connecting glucocorticoid receptor and obestatin/GPR39 systems.
- Extended findings to in vitro studies using human myotubes (KM155C25).
Main Results:
- Identified KLF15 and FoxO transcription factors as direct targets of obestatin signaling in skeletal muscle proteostasis.
- Demonstrated that KLF15 ubiquitination by NEDD4 regulates atrogenes and FoxOs.
- Showcased the critical role of FoxO4 phosphorylation by the Akt pathway in regulating the ubiquitin-proteasome system.
Conclusions:
- Effective control of FoxO activity is crucial for counteracting glucocorticoid-induced muscle pathologies.
- The obestatin/GPR39 system demonstrates potential for fine-tuning glucocorticoid effects on skeletal muscle.
- This system offers a promising avenue for therapeutic intervention against muscle wasting.
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