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Updated: May 10, 2026

Monitoring Leucine-Rich Repeat Containing 8 Channel (LRRC8/VRAC) Activity Using Sensitized-Emission Förster Resonance Energy Transfer (SE-FRET)
Published on: August 9, 2024
Insights into MLC pathogenesis: GlialCAM is an MLC1 chaperone required for proper activation of volume-regulated
Xavier Capdevila-Nortes1, Tania López-Hernández, Pirjo M Apaja
1Sección de Fisiología, Departamento de Ciencias Fisiológicas II and.
Abstract:
Megalencephalic leukoencephalopathy with subcortical cysts (MLC) is a rare type of leukodystrophy caused by mutations in either MLC1 or GLIALCAM genes and is associated with myelin and astrocyte vacuolation. It has been suggested that MLC is caused by impaired cell volume regulation as a result of defective activation of astrocytic volume-regulated anion currents (VRAC). GlialCAM brings MLC1 and the ClC-2 Cl(-) channel to cell-cell junctions, even though the role of ClC-2 in MLC disease remains incompletely understood. To gain insights into the biological role of GlialCAM in the pathogenesis of MLC disease, here we analyzed the gain- and loss-of-function phenotypes of GlialCAM in Hela cells and primary astrocytes, focusing on its interaction with the MLC1 protein. Unexpectedly, GlialCAM ablation provoked intracellular accumulation and reduced expression of MLC1 at the plasma membrane. Conversely, over-expression of GlialCAM increased the cellular stability of mutant MLC1 variants. Reduction in GlialCAM expression resulted in defective activation of VRAC and augmented vacuolation, phenocopying MLC1 mutations. Importantly, over-expression of GlialCAM together with MLC1 containing MLC-related mutations was able to reactivate VRAC currents and to reverse the vacuolation caused in the presence of mutant MLC1. These results indicate a previously unrecognized role of GlialCAM in facilitating the biosynthetic maturation and cell surface expression of MLC1, and suggest that pharmacological strategies aimed to increase surface expression of MLC1 and/or VRAC activity may be beneficial for MLC patients.
Insights
Megalencephalic leukoencephalopathy with subcortical cysts (MLC) is linked to GlialCAM's role in MLC1 protein expression. Enhancing GlialCAM function may offer therapeutic benefits for MLC patients by restoring cell volume regulation.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Megalencephalic leukoencephalopathy with subcortical cysts (MLC) is a rare leukodystrophy.
- Mutations in MLC1 or GLIALCAM genes cause MLC, leading to myelin and astrocyte vacuolation.
- MLC is hypothesized to stem from impaired cell volume regulation due to defective astrocytic volume-regulated anion currents (VRAC).
Purpose of the Study:
- To investigate the role of GlialCAM in MLC pathogenesis.
- To analyze the interaction between GlialCAM and MLC1.
- To understand GlialCAM's function in VRAC activation and astrocyte vacuolation.
Main Methods:
- Examined gain- and loss-of-function phenotypes of GlialCAM in Hela cells and primary astrocytes.
- Focused on GlialCAM's interaction with the MLC1 protein.
- Assessed VRAC currents and vacuolation in response to altered GlialCAM expression.
Main Results:
- GlialCAM ablation led to intracellular MLC1 accumulation and reduced plasma membrane expression.
- GlialCAM overexpression stabilized mutant MLC1 variants and reduced vacuolation.
- Reduced GlialCAM expression impaired VRAC activation and increased vacuolation, mimicking MLC1 mutations.
- Co-expression of GlialCAM and mutant MLC1 restored VRAC currents and reversed vacuolation.
Conclusions:
- GlialCAM plays a critical role in MLC1 biosynthetic maturation and cell surface expression.
- Pharmacological strategies targeting GlialCAM or VRAC activity may benefit MLC patients.
- Restoring MLC1 surface expression and/or VRAC activity presents a potential therapeutic avenue for MLC.
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