GlialCAM/MLC1 modulates LRRC8/VRAC currents in an indirect manner: Implications for megalencephalic
Xabier Elorza-Vidal1, Sònia Sirisi2, Héctor Gaitán-Peñas1
1Unitat de Fisiologia, Departament de Ciències Fisiològiques, Genes Disease and Therapy Program IDIBELL-Institute of Neurosciences, Universitat de Barcelona, L'Hospitalet de Llobregat, Spain; Centro de Investigación en red de enfermedades raras (CIBERER), ISCIII, Spain.
Abstract:
Megalencephalic leukoencephalopathy with subcortical cysts (MLC) is a rare type of leukodystrophy caused by mutations in either MLC1 or GLIALCAM genes. Previous work indicated that chloride currents mediated by the volume-regulated anion channel (VRAC) and ClC-2 channels were affected in astrocytes deficient in either Mlc1 or Glialcam. ClC-2 forms a ternary complex with GlialCAM and MLC1. LRRC8 proteins have been identified recently as the molecular components of VRAC, but the relationship between MLC and LRRC8 proteins is unknown. Here, we first demonstrate that LRRC8 and MLC1 are functionally linked, as MLC1 cannot potentiate VRAC currents when LRRC8A, the main subunit of VRAC, is knocked down. We determine that LRRC8A and MLC1 do not co-localize or interact and, in Xenopus oocytes, MLC1 does not potentiate LRRC8-mediated VRAC currents, indicating that VRAC modulation in astrocytes by MLC1 may be indirect. Investigating the mechanism of modulation, we find that a lack of MLC1 does not influence either mRNA or total and plasma membrane protein levels of LRRC8A; and neither does it affect LRRC8A subcellular localization. In agreement with recent results that indicated that overexpression of MLC1 decreases the phosphorylation of extracellular signal-regulated kinases (ERK), we find that astrocytes lacking MLC1 show an increase in ERK phosphorylation. In astrocytes with reduced or increased levels of MLC1 we observe changes in the phosphorylation state of the VRAC subunit LRRC8C. Our results thus reinforce previous suggestions that indicated that GlialCAM/MLC1 might modify signal transduction pathways that influence the activity of different proteins, such as VRAC.
Insights
Megalencephalic leukoencephalopathy with subcortical cysts (MLC) is linked to LRRC8 proteins, the components of volume-regulated anion channels (VRAC). MLC1 does not directly interact with LRRC8A but influences VRAC activity indirectly through signaling pathways.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Megalencephalic leukoencephalopathy with subcortical cysts (MLC) is a rare leukodystrophy linked to mutations in MLC1 or GLIALCAM genes.
- Previous studies showed altered chloride currents in astrocytes lacking Mlc1 or Glialcam, affecting VRAC and ClC-2 channels.
- LRRC8 proteins are identified as VRAC components, but their connection to MLC remains unclear.
Purpose of the Study:
- To investigate the functional relationship between MLC1 and LRRC8 proteins, the key subunits of VRAC.
- To elucidate the mechanism by which MLC1 influences VRAC activity in astrocytes.
Main Methods:
- Functional assays in Xenopus oocytes to assess VRAC currents.
- Knockdown of LRRC8A to evaluate its effect on MLC1 potentiation of VRAC currents.
- Analysis of protein levels, co-localization, interaction, and phosphorylation states (ERK, LRRC8C) in astrocytes with altered MLC1 levels.
Main Results:
- MLC1 potentiation of VRAC currents is dependent on LRRC8A, indicating a functional link.
- MLC1 and LRRC8A do not co-localize or directly interact, suggesting an indirect modulation mechanism.
- Lack of MLC1 leads to increased ERK phosphorylation and altered LRRC8C phosphorylation, implicating signaling pathways in VRAC regulation.
Conclusions:
- MLC1 indirectly modulates VRAC activity, likely through influencing signaling pathways such as ERK.
- GlialCAM/MLC1 complex may regulate VRAC activity by affecting signal transduction pathways.
- These findings provide new insights into the molecular mechanisms underlying MLC and VRAC function.
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