The Relative Efficacy of Available Proteasome Inhibitors in Preventing Muscle Contractures Following Neonatal

Indranshu Das1, Kritton Shay-Winkler2, Marianne E Emmert2

  • 1Department of Medical Sciences, University of Cincinnati College of Medicine, Cincinnati, Ohio.

Insights

Newer proteasome inhibitors (PIs) show promise in preventing neonatal brachial plexus injury (NBPI) contractures, but all tested PIs demonstrated significant toxicity, limiting their clinical application.

Area of Science:

  • Biochemistry
  • Muscle Physiology
  • Pharmacology

Background:

  • Neonatal brachial plexus injury (NBPI) can lead to muscle contractures and growth deficits.
  • Proteasome inhibitors (PIs) like bortezomib (BTZ) can prevent NBPI-induced contractures but cause significant toxicity.
  • Developing safer and more effective PIs is crucial for managing NBPI complications.

Purpose of the Study:

  • To evaluate the efficacy and toxicity of newer-generation PIs (ixazomib, carfilzomib, marizomib) in preventing NBPI-induced contractures.
  • To compare the safety and effectiveness profiles of these PIs against BTZ.
  • To explore the role of the proteasome in contracture formation.

Main Methods:

  • Surgical induction of unilateral brachial plexus injuries in neonatal mice.
  • Treatment with saline or various doses of ixazomib, carfilzomib, or marizomib.
  • Assessment of joint range of motion for contracture severity and survival curves for toxicity.

Main Results:

  • All tested PIs, except ixazomib for shoulder contractures, prevented elbow and shoulder contractures.
  • Efficacy and toxicity varied among PIs, with dose-limiting toxicity observed for all.
  • Bortezomib remained optimal for contracture prevention despite its toxicity.

Conclusions:

  • Second-generation PIs demonstrate potential in reducing NBPI-induced contractures, confirming the proteasome's regulatory role.
  • Precise proteasome regulation is necessary, as indicated by the narrow effective dose ranges.
  • Substantial toxicity necessitates the development of targeted muscle strategies for safe contracture prevention.
Abstract

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