FIG4 regulates lysosome membrane homeostasis independent of phosphatase function

Rajnish Bharadwaj1, Kathleen M Cunningham1, Ke Zhang1

  • 1Department of Neurology, and.

Human Molecular Genetics
|December 15, 2015
PubMed

Insights

Mutations in FIG4 cause rare diseases like Charcot-Marie-Tooth Disease 4J. Drosophila models reveal FIG4 has a non-phosphatase role in maintaining lysosomal membrane homeostasis, crucial for preventing disease.

Area of Science:

  • Cell Biology
  • Genetics
  • Neuroscience

Background:

  • FIG4 is a phosphoinositide phosphatase implicated in Charcot-Marie-Tooth Disease 4J (CMT4J) and Yunis-Varon syndrome (YVS).
  • Understanding FIG4's function is key to elucidating the pathogenesis of these rare genetic disorders.

Purpose of the Study:

  • To investigate the disease mechanism of FIG4 mutations using Drosophila models.
  • To determine the specific function of FIG4 in lysosomal biology and membrane homeostasis.

Main Methods:

  • Generated Drosophila models with null and missense mutations in the Fig4 gene.
  • Assessed lysosomal compartment size, flight ability, and genetic interactions with other cellular pathways (Rab7, HOPS, retromer).
  • Analyzed the enzymatic activity and complex formation of FIG4 and FAB1.

Main Results:

  • Fig4 null mutants exhibited enlarged lysosomes and age-related flight decline.
  • Pathogenic human FIG4 mutations partially rescued lysosomal phenotypes, suggesting loss of function.
  • FIG4 mutations inactivating phosphatase activity still rescued lysosomal phenotypes, indicating a phosphatase-independent role.
  • FIG4 functions in endosome-to-lysosome fusion, independent of retromer-mediated recycling.

Conclusions:

  • FIG4 plays a critical, non-catalytic role in maintaining lysosomal membrane homeostasis.
  • Mutations causing CMT4J and YVS disrupt this essential function.
  • Drosophila models provide valuable insights into FIG4-related disease mechanisms.

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