先進診断システム探索研究部門

高橋 泰伽

タカハシ タイガ  (Taiga Takahashi)

基本情報

所属
藤田医科大学 研究推進本部 オープンファシリティセンター 講師

研究者番号
80968248
ORCID ID
 https://orcid.org/0000-0002-8821-2125
J-GLOBAL ID
202101003961037045
researchmap会員ID
R000028227

外部リンク

論文

 10
  • YJ Lin, A Takahashi-Nakazato, K Tsutsumi, T Takahashi, D Mercier, H Ashitomi, MC Chiang, M Haberl, M Uytiepo, A Maximov, Y Makino, T Nemoto, R Enoki, A Hirano, K Soga, S Looprasertkul, N Ohno, Y Kubota, T Sakurai, KZ Tanaka
    bioRxiv 2025年12月11日  筆頭著者
    Abstract The memory trace at the neuronal and synaptic levels remains controversial. Stable, larger spines are thought to support memory, but the high turnover of dendritic spines and the drifting of neuronal representations following memory formation suggest alternative possibilities. To elucidate a structural trace underlying memory retention, we utilize a mouse model of artificial hibernation. During hibernation, hippocampal neurons exhibited a substantial reduction in their activity and an extensive elimination of dendritic spines and synapses. Despite these changes, their memory and associated hippocampal neuronal representations are intact after arousal. We find that a subset of spines is maintained during hibernation. These spatially clustered engram-engram synapses are exclusively protected from elimination and characterized by synaptic contacts with multi-synaptic boutons. These findings suggest that synaptic engram architecture, rather than larger spines per se, is resilient to network remodeling and underlies long-term memory retention.
  • Taiga Takahashi, Yu Makino, Yosuke Okamura, Tomomi Nemoto
    BIO-PROTOCOL 15(1375) 2025年6月5日  査読有り筆頭著者責任著者
  • Taiga Takahashi, Yuanyuan Zhou, Motosuke Tsutsumi, Chihiro Ito, Azumi Hatakeyama, Hirokazu Ishii, Akiyoshi Saitoh, Hiroshi Yukawa, Junichi Nabekura, Tomomi Nemoto, Kohei Otomo, Naoji Matsuhisa, Masakazu Agetsuma
    Bioarxiv 2025年6月2日  筆頭著者
    Abstract The mammalian brain is a thick and densely layered structure comprising a huge number of neurons that work together to process information and regulate brain functions. Although various optical methods have been developed to investigate deep brain dynamics, they are limited by technical constraints, invasiveness, suboptimal spatial resolution, and/or a restricted field of view. To overcome these limitations, we developed an implantable, optically optimized microprism interface with a refractive index matched to that of brain tissue and water, enabling minimally-invasive, wide-field two-photon imaging method with enhanced brightness and sub-micron resolution in deep prefrontal areas.
  • Taiga Takahashi, Hong Zhang, Masakazu Agetsuma, Junichi Nabekura, Kohei Otomo, Yosuke Okamura, Tomomi Nemoto
    Communications Biology 2024年3月4日  査読有り
  • Motosuke Tsutsumi, Taiga Takahashi, Kentaro Kobayashi, Tomomi Nemoto
    Frontiers in Cellular Neuroscience 17 1243633 2023年10月10日  査読有り

MISC

 8

所属学協会

 2

共同研究・競争的資金等の研究課題

 5

産業財産権

 3