Insight into the function of a unique voltage-sensor protein (TMEM266) and its short form in mouse cerebellum

Author:

Kawai Takafumi1ORCID,Narita Hirotaka2,Konno Kohtarou3,Akter Sharmin1,Andriani Rizki Tsari1,Iwasaki Hirohide4,Nishikawa Shoji2,Yokoi Norihiko56,Fukata Yuko56,Fukata Masaki56,Wiriyasermkul Pattama7,Kongpracha Pornparn7,Nagamori Shushi7,Takao Keizo89,Miyakawa Tsuyoshi810,Abe Manabu11,Sakimura Kenji11,Watanabe Masahiko3,Nakagawa Atsushi212,Okamura Yasushi112

Affiliation:

1. 1Integrative Physiology, Graduate School of Medicine, Osaka University, Yamada-oka 2-2, Suita, Japan

2. 2Institute for Protein Research, Osaka University, Suita, Japan

3. 3Department of Anatomy, Faculty of Medicine, Hokkaido University, Sapporo, Hokkaido, Japan

4. 4Department of Anatomy, Gunma University Graduate School of Medicine, Maebashi, Gunma, Japan

5. 5Division of Membrane Physiology, Department of Molecular and Cellular Physiology, National Institute for Physiological Sciences, National Institutes of Natural Sciences, Okazaki, Aichi, Japan

6. 6Department of Physiological Sciences, School of Life Science, SOKENDAI (The Graduate University for Advanced Studies), Okazaki, Aichi, Japan

7. 7Department of Laboratory Medicine, The Jikei University School of Medicine, Tokyo, Japan

8. 8Section of Behavior Patterns, Center for Genetic Analysis of Behavior, National Institute for Physiological Sciences, 5-1 Higashiyama, Myodaiji-cho, Okazaki, Aichi, Japan

9. 9Life Science Research Center, University of Toyama, Toyama, Japan

10. 10Division of Systems Medical Science, Institute for Comprehensive Medical Science, Fujita Health University, Toyoake, Japan

11. 11Department of Animal Model Development, Brain Research Institute, Niigata University, Niigata, Japan

12. 12Graduate School of Frontier Biosciences, Osaka University, Suita, Japan

Abstract

Voltage-sensing proteins generally consist of voltage-sensor domains and pore-gate domains, forming the voltage-gated ion channels. However, there are several unconventional voltage-sensor proteins that lack pore-gate domains, conferring them unique voltage-sensing machinery. TMEM266, which is expressed in cerebellum granule cells, is one of the interesting voltage-sensing proteins that has a putative intracellular coiled-coil and a functionally unidentified cytosolic region instead of a pore-gate domain. Here, we approached the molecular function of TMEM266 by performing co-immunoprecipitation experiments. We unexpectedly discovered that TMEM266 proteins natively interact with the novel short form splice variants that only have voltage-sensor domains and putative cytosolic coiled-coil region in cerebellum. The crystal structure of coiled-coil region of TMEM266 suggested that these coiled-coil regions play significant roles in forming homodimers. In vitro expression experiments supported the idea that short form TMEM266 (sTMEM266) or full length TMEM266 (fTMEM266) form homodimers. We also performed proximity labeling mass spectrometry analysis for fTMEM266 and sTMEM266 using Neuro-2A, neuroblastoma cells, and fTMEM266 showed more interacting molecules than sTMEM266, suggesting that the C-terminal cytosolic region in fTMEM266 binds to various targets. Finally, TMEM266-deficient animals showed the moderate abnormality in open-field test. The present study provides clues about the novel voltage-sensing mechanism mediated by TMEM266.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

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