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Published on: December 3, 2017
Hypomyelination Leukodystrophy 16 (HLD16)-Associated Mutation p.Asp252Asn of TMEM106B Blunts Cell Morphological
Sui Sawaguchi1, Miki Ishida1, Yuki Miyamoto1,2
1Laboratory of Molecular Neurology, Tokyo University of Pharmacy and Life Sciences, Tokyo 192-0392, Japan.
Abstract:
Transmembrane protein 106B (TMEM106B), which is a type II transmembrane protein, is believed to be involved in intracellular dynamics and morphogenesis in the lysosome. TMEM106B is known to be a risk factor for frontotemporal lobar degeneration and has been recently identified as the receptor needed for the entry of SARS-CoV-2, independently of angiotensin-converting enzyme 2 (ACE2). A missense mutation, p.Asp252Asn, of TMEM106B is associated with hypomyelinating leukodystrophy 16 (HLD16), which is an oligodendroglial cell-related white matter disorder causing thin myelin sheaths or myelin deficiency in the central nervous system (CNS). However, it remains to be elucidated how the mutated TMEM106B affects oligodendroglial cells. Here, we show that the TMEM106B mutant protein fails to exhibit lysosome distribution in the FBD-102b cell line, an oligodendroglial precursor cell line undergoing differentiation. In contrast, wild-type TMEM106B was indeed localized in the lysosome. Cells harboring wild-type TMEM106B differentiated into ones with widespread membranes, whereas cells harboring mutated TMEM106B failed to differentiate. It is of note that the output of signaling through the lysosome-resident mechanistic target of rapamycin (mTOR) was greatly decreased in cells harboring mutated TMEM106B. Furthermore, treatment with hesperetin, a citrus flavonoid known as an activator of mTOR signaling, restored the molecular and cellular phenotypes induced by the TMEM106B mutant protein. These findings suggest the potential pathological mechanisms underlying HLD16 and their amelioration.
Insights
Mutated Transmembrane protein 106B (TMEM106B) impairs lysosome distribution and oligodendroglial cell differentiation. Hesperetin treatment restored these functions, suggesting a therapeutic approach for hypomyelinating leukodystrophy 16.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Transmembrane protein 106B (TMEM106B) is implicated in lysosomal dynamics and frontotemporal lobar degeneration.
- TMEM106B is a SARS-CoV-2 entry receptor and a risk factor for neurodegenerative diseases.
- A specific TMEM106B mutation (p.Asp252Asn) causes hypomyelinating leukodystrophy 16 (HLD16), a white matter disorder.
Purpose of the Study:
- To investigate the cellular and molecular mechanisms by which mutated TMEM106B affects oligodendroglial cells in HLD16.
- To explore potential therapeutic interventions for HLD16.
Main Methods:
- Utilized the FBD-102b oligodendroglial precursor cell line.
- Compared the effects of wild-type TMEM106B versus the p.Asp252Asn mutant TMEM106B.
- Assessed lysosome distribution, cell differentiation, and mechanistic target of rapamycin (mTOR) signaling.
- Investigated the therapeutic potential of hesperetin.
Main Results:
- Mutant TMEM106B disrupted lysosome distribution and impaired oligodendroglial cell differentiation.
- Wild-type TMEM106B localized correctly to lysosomes and supported differentiation.
- mTOR signaling output was significantly reduced in cells with mutant TMEM106B.
- Hesperetin treatment reversed the molecular and cellular defects caused by mutant TMEM106B.
Conclusions:
- The p.Asp252Asn mutation in TMEM106B disrupts lysosomal function and oligodendroglial differentiation, contributing to HLD16 pathogenesis.
- Dysregulated mTOR signaling is a key mechanism in TMEM106B-associated HLD16.
- Hesperetin shows promise as a therapeutic agent for HLD16 by restoring TMEM106B function and mTOR signaling.

