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Frontotemporal dementia causative CHMP2B impairs neuronal endolysosomal traffic-rescue by TMEM106B knockdown
Emma L Clayton1,2, Carmelo Milioto1,3, Bhavana Muralidharan1,3
1Department of Neurodegenerative Disease, UCL Institute of Neurology, Queen Square, London, UK.
Abstract:
Mutations in the endosome-associated protein CHMP2B cause frontotemporal dementia and lead to lysosomal storage pathology in neurons. We here report that physiological levels of mutant CHMP2B causes reduced numbers and significantly impaired trafficking of endolysosomes within neuronal dendrites, accompanied by increased dendritic branching. Mechanistically, this is due to the stable incorporation of mutant CHMP2B onto neuronal endolysosomes, which we show renders them unable to traffic within dendrites. This defect is due to the inability of mutant CHMP2B to recruit the ATPase VPS4, which is required for release of CHMP2B from endosomal membranes. Strikingly, both impaired trafficking and the increased dendritic branching were rescued by treatment with antisense oligonucleotides targeting the well validated frontotemporal dementia risk factor TMEM106B, which encodes an endolysosomal protein. This indicates that reducing TMEM106B levels can restore endosomal health in frontotemporal dementia. As TMEM106B is a risk factor for frontotemporal dementia caused by both C9orf72 and progranulin mutations, and antisense oligonucleotides are showing promise as therapeutics for neurodegenerative diseases, our data suggests a potential new strategy for treating the wide range of frontotemporal dementias associated with endolysosomal dysfunction.
Insights
Mutant CHMP2B protein causes frontotemporal dementia (FTD) by disrupting neuronal endolysosome trafficking. Reducing TMEM106B levels with antisense oligonucleotides offers a potential therapeutic strategy for FTD.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Mutations in the endosome-associated protein CHMP2B are linked to frontotemporal dementia (FTD).
- FTD pathogenesis involves lysosomal storage pathology in neurons.
Purpose of the Study:
- To investigate the impact of mutant CHMP2B on neuronal endolysosome function.
- To explore potential therapeutic strategies for FTD associated with endolysosomal dysfunction.
Main Methods:
- Studied the effects of physiological levels of mutant CHMP2B in neurons.
- Assessed endolysosome trafficking, numbers, and dendritic morphology.
- Investigated the role of VPS4 recruitment.
- Treated cells with antisense oligonucleotides targeting TMEM106B.
Main Results:
- Mutant CHMP2B caused reduced endolysosome numbers and impaired trafficking in neuronal dendrites.
- Stable incorporation of mutant CHMP2B onto endolysosomes prevented their trafficking.
- This defect was linked to impaired VPS4 recruitment.
- Antisense oligonucleotide treatment targeting TMEM106B rescued endolysosome trafficking and reduced dendritic branching.
Conclusions:
- Mutant CHMP2B disrupts neuronal endolysosome trafficking, contributing to FTD pathology.
- Reducing TMEM106B levels can restore endosomal health in FTD.
- Targeting TMEM106B represents a potential therapeutic strategy for a broad range of FTDs involving endolysosomal dysfunction.
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