Clusterin silencing restores myoblasts viability and down modulates the inflammatory process in osteoporotic disease

S Pucci1, C Greggi2,3, C Polidoro4

  • 1Department of Biomedicine and Prevention, Tor Vergata University of Rome, Via Montpellier 1, 00133, Rome, Italy. sabina.pucci@uniroma2.it.

Abstract

Insights

Clusterin (CLU) is overexpressed in osteoporosis, driving muscle degeneration and senescence. Silencing CLU restores muscle repair and reduces inflammation, identifying it as a therapeutic target for osteoporosis-related sarcopenia.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Gerontology

Background:

  • Clusterin (CLU), a glycoprotein, is implicated in aging and various diseases.
  • Investigating CLU's role in muscle mass decline and fiber senescence in Osteoporosis (OP) and Osteoarthritis (OA) is crucial for drug discovery.
  • Focus on CLU's expression and function in the context of OP-OA muscle degeneration.

Purpose of the Study:

  • To investigate the expression and role of Clusterin (CLU) in muscle degeneration associated with Osteoporosis (OP) and Osteoarthritis (OA).
  • To explore CLU's influence on myoblast proliferation, differentiation, senescence, and tissue repair in OP and OA.
  • To assess CLU as a potential diagnostic marker and therapeutic target for OP-related sarcopenia.

Main Methods:

  • Analysis of vastus lateralis muscle biopsies from women with OP and OA.
  • Ex vivo studies on isolated human myoblasts, including CLU treatment and siRNA-mediated knockdown.
  • Assessment of CLU expression, histone H4 acetylation, myogenin (MYOG) activation, Transglutaminase 2 (TGM2), and CX3CR1 expression.

Main Results:

  • CLU was overexpressed in degenerated muscle fibers in OP, correlated with IL6 and histone H4 acetylation.
  • CLU treatment modulated myoblast proliferation and differentiation, inducing MYOG activation in OP myoblasts.
  • CLU knockdown in OP myoblasts restored proliferation, enhanced tissue repair via TGM2 upregulation, and reduced inflammation by downregulating CX3CR1.

Conclusions:

  • CLU plays a significant role in OP-related muscle degeneration by influencing myoblast differentiation, epigenetic regulation, and senescence.
  • CLU silencing demonstrates its potential in modulating tissue repair and inflammation.
  • CLU is proposed as a novel diagnostic marker for muscle degeneration and a therapeutic target for OP-related sarcopenia.

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