The Wolfram-like variant WFS1E864K destabilizes MAM and compromises autophagy and mitophagy in human and mice

Simone Patergnani1, Méghane S Bataillard2, Alberto Danese1

  • 1Department of Medical Sciences, Section of Experimental Medicine, Technopole of Ferrara, Laboratory for Advanced Therapies (LTTA), Ferrara, Italy.

Autophagy
|April 23, 2024
PubMed

Insights

Wolfram-like syndrome (WLS) protein WFS1E864K impairs mitochondrial function and calcium transfer, similar to WFS1 loss. This highlights WFS1

Area of Science:

  • Cellular biology
  • Mitochondrial function
  • Endoplasmic reticulum-mitochondria communication

Background:

  • Dominant WFS1 variants cause Wolfram-like syndrome (WLS).
  • WFS1 loss impairs ER-mitochondria calcium transfer and mitochondrial function.
  • The cellular impact of WLS-associated WFS1 mutations remains unclear.

Purpose of the Study:

  • To investigate the cellular effects of the WLS-associated WFS1E864K mutation.
  • To compare the cellular pathology of WLS with WFS1 loss.
  • To explore WFS1's role in mitochondria-associated endoplasmic reticulum membrane (MAM) integrity.

Main Methods:

  • Analysis of human fibroblasts and murine neuronal cultures expressing WFS1E864K.
  • Assessment of mitochondrial bioenergetics and calcium uptake.
  • Evaluation of autophagic flux and MAM number in Wfs1 mutant models.

Main Results:

  • WFS1E864K expression decreased mitochondrial bioenergetics and calcium uptake.
  • Mitochondrial quality control and autophagic flux were dysregulated.
  • WFS1 deficiency in mice correlated with reduced MAM number.

Conclusions:

  • WLS-associated WFS1 mutations cause cellular defects similar to WFS1 loss.
  • WFS1 is crucial for maintaining MAM integrity and function.
  • Findings suggest potential therapeutic strategies for WLS.