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Updated: Mar 28, 2026

Quantification of Endosome and Lysosome Motilities in Cultured Neurons Using Fluorescent Probes
Published on: May 22, 2017
FIG4 regulates lysosome membrane homeostasis independent of phosphatase function
Rajnish Bharadwaj1, Kathleen M Cunningham1, Ke Zhang1
1Department of Neurology, and.
Abstract:
FIG4 is a phosphoinositide phosphatase that is mutated in several diseases including Charcot-Marie-Tooth Disease 4J (CMT4J) and Yunis-Varon syndrome (YVS). To investigate the mechanism of disease pathogenesis, we generated Drosophila models of FIG4-related diseases. Fig4 null mutant animals are viable but exhibit marked enlargement of the lysosomal compartment in muscle cells and neurons, accompanied by an age-related decline in flight ability. Transgenic animals expressing Drosophila Fig4 missense mutations corresponding to human pathogenic mutations can partially rescue lysosomal expansion phenotypes, consistent with these mutations causing decreased FIG4 function. Interestingly, Fig4 mutations predicted to inactivate FIG4 phosphatase activity rescue lysosome expansion phenotypes, and mutations in the phosphoinositide (3) phosphate kinase Fab1 that performs the reverse enzymatic reaction also causes a lysosome expansion phenotype. Since FIG4 and FAB1 are present together in the same biochemical complex, these data are consistent with a model in which FIG4 serves a phosphatase-independent biosynthetic function that is essential for lysosomal membrane homeostasis. Lysosomal phenotypes are suppressed by genetic inhibition of Rab7 or the HOPS complex, demonstrating that FIG4 functions after endosome-to-lysosome fusion. Furthermore, disruption of the retromer complex, implicated in recycling from the lysosome to Golgi, does not lead to similar phenotypes as Fig4, suggesting that the lysosomal defects are not due to compromised retromer-mediated recycling of endolysosomal membranes. These data show that FIG4 plays a critical noncatalytic function in maintaining lysosomal membrane homeostasis, and that this function is disrupted by mutations that cause CMT4J and YVS.
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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