A novel PSMB8 isoform associated with multiple sclerosis lesions induces P-body formation

Benjamin C Shaw1, Jessica L Williams1,2

  • 1Department of Neurosciences, Lerner Research Institute Cleveland Clinic, Cleveland, OH, United States.

Abstract

Insights

Researchers discovered a new form of the PSMB8 gene in multiple sclerosis (MS) lesions that may impair glial cell repair functions. This finding highlights how alternative splicing in MS white matter lesions could impact disease progression.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Immunology

Background:

  • Multiple sclerosis (MS) is a central nervous system (CNS) inflammatory and demyelinating disease.
  • Current MS therapies are less effective in chronic progressive stages where glial cells play a larger role.
  • Inflammation in MS lesions can lead to alternative splicing events.

Purpose of the Study:

  • Investigate alternative splicing of the PSMB8 gene in MS white matter lesions.
  • Determine the functional consequences of a novel PSMB8 isoform in astrocytes.
  • Correlate alternative splicing changes with the cellular microenvironment in MS lesions.

Main Methods:

  • Quantitative PCR (qPCR) on postmortem MS and normal-appearing white matter.
  • In vitro studies using primary human astrocytes.
  • Immunostaining of MS tissue.
  • Analysis of PSMB8 alternative splicing and nonsense-mediated decay.

Main Results:

  • A novel, intron-retained PSMB8 isoform was upregulated specifically in MS white matter lesions.
  • This novel isoform activates nonsense-mediated decay and is degraded in primary human astrocytes.
  • Overexpression of the novel isoform increases processing bodies in astrocytes.
  • MS white matter lesions show a higher burden of processing bodies, particularly in GFAP-positive astrocytes.

Conclusions:

  • Increased alternative splicing of PSMB8 in MS lesions may contribute to cellular stress.
  • The lesion microenvironment might induce widespread alternative splicing, affecting glial responses.
  • Alternative splicing could impair protective or reparative functions of glia in MS lesions.