Protein disulfide isomerase ERp57 protects early muscle denervation in experimental ALS

Pablo Rozas1,2,3, Cristina Pinto4, Francisca Martínez Traub1,2,3

  • 1Biomedical Neuroscience Institute, Faculty of Medicine, University of Chile, Independencia 1027, P.O. Box 70086, Santiago, Chile.

Insights

Overexpressing ERp57 in mutant SOD1 mice delayed disease progression and protected neuromuscular junctions, suggesting ERp57 modifies amyotrophic lateral sclerosis (ALS) by maintaining motoneuron connectivity.

Area of Science:

  • Neuroscience
  • Genetics
  • Molecular Biology

Background:

  • Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease affecting motoneurons, with mutations in superoxide dismutase 1 (SOD1) being a known genetic cause.
  • ERp57, a protein disulfide isomerase involved in endoplasmic reticulum protein quality control, is upregulated in ALS patients and mutant SOD1 mice, and its mutations are potential risk factors.

Purpose of the Study:

  • To investigate the role of ERp57 in the pathogenesis of experimental ALS by studying the effects of its overexpression in mutant SOD1 mice.

Main Methods:

  • Generated double transgenic SOD1G93A/ERp57WT mice to study ERp57 overexpression in an ALS model.
  • Assessed electrophysiological activity, muscle innervation, motor performance, and survival rates.
  • Analyzed SOD1 aggregation and utilized proteomic analysis to identify affected pathways.

Main Results:

  • ERp57 overexpression delayed electrophysiological decline and preserved muscle innervation in early-stage symptomatic SOD1G93A mice, improving motor performance without impacting survival.
  • Reduced mutant SOD1 aggregation was observed only at the end-stage of the disease.
  • Proteomic analysis indicated that ERp57 overexpression increased synaptic and actin cytoskeleton proteins in the spinal cord.

Conclusions:

  • ERp57 acts as an early-stage disease modifier in experimental ALS, primarily by maintaining motoneuron connectivity and synaptic integrity.
  • The neuroprotective effects are linked to enhanced synaptic and cytoskeletal proteins, rather than solely to reducing SOD1 aggregation at early stages.