生命創成探究センター・基礎生物学研究所
神経分子動態生物学グループ・神経細胞生物学研究室
原著論文
Horio, T., Ishikura, Y., Ohashi, R., *Shiina, N. (2023) Regulation of RNG105/caprin1 dynamics by pathogenic cytoplasmic FUS and TDP-43 in neuronal RNA granules modulates synaptic loss., Heliyon, 9 (6), e17065, doi: 10.1016/j.heliyon.2023.e17065
Yamashita, A., Shichino, Y., Fujii, K. , Koshidaka, Y., Adachi, M., Sasagawa, E., Mito, M., Nakagawa, S., Iwasaki, S., Takao, K., *Shiina, N. (2023) ILF3 prion-like domain regulates gene expression and fear memory under chronic stress., iScience, 26(3):106229, doi: 10.1016/j.isci.2023.106229
Nakazawa, K., Scichino, Y., Iwasaki, S., *Shiina, N. (2020) Implications of RNG140 (caprin2)-mediated translational regulation in eye lens differentiation., J. Biol. Chem. 295, 15029-15044., doi: 10.1074/jbc.RA120.012715
*Shiina, N. (2019) Liquid- and solid-like RNA granules form through specific scaffold proteins and combine into biphasic granules. J. Biol. Chem. 294, 3532-3548., doi: 10.1074/jbc.RA118.005423.
†Nakayama, K., †Ohashi, R., Shinoda, Y., Yamazaki, M., Abe, M., Fujikawa, A., Shigenobu, S., Futatsugi, A., Noda, M., Mikoshiba, K., Furuichi, T., Sakimura, K., *Shiina, N. (2017) RNG105/caprin1, an RNA granule protein for dendritic mRNA localization, is essential for long-term memory formation. eLife 6:e29677, doi: 10.7554/eLife.29677. (†These authors contributed equally., *Corresponding author)
Ohashi, R., Takao, K., Miyakawa, T., *Shiina, N. (2016) Comprehensive behavioral analysis of RNG105 (Caprin1) heterozygous mice: Reduced social interaction and attenuated response to novelty. Sci Rep. 6, 20775,doi: 10.1038/srep20775
Tsuboi, D., Kuroda, K., Tanaka, M., Namba, T., Iizuka, Y., Taya, S., Shinoda, T., Hikita, T., Muraoka, S., Iizuka, M., Nimura, A., Mizoguchi, A., Shiina, N., Sokabe, M., Okano, H., Mikoshiba, K., Kaibuchi, K. (2015) Disrupted-in-schizophrenia 1 regulates transport of ITPR1 mRNA for synaptic plasticity. Nat. Neurosci. 18, 698-707.
*Shiina, N., Nakayama, K. (2014) RNA granule assembly and disassembly modulated by nuclear factor associated with dsRNA 2 and nuclear factor 45. J. Biol. Chem. 289, 21163-21180 doi: 10.1074/jbc.M114.556365.
*Shiina, N., Yamaguchi, K., Tokunaga, M. (2010) RNG105 deficiency impairs the dendritic localization of Na+/K+ ATPase subunit isoforms and leads to the degeneration of neuronal networks. J. Neurosci. 30, 12816-12830.
*Shiina, N., Tokunaga, M. (2010) RNA granule protein 140 (RNG140), a paralog of RNG105 localized to distinct RNA granules in neuronal dendrites in the adult vertebrate brain. J. Biol. Chem. 285, 24260-24269.
*Shiina N., Shinkura K., Tokunaga M. (2005) A novel RNA-binding protein in neuronal RNA granules: Regulatory machinery for local translation. J. Neurosci. 25, 4420-4434.
Mimori-Kiyosue Y., Shiina N., Tsukita S. (2000) The dynamic behavior of the APC-binding protein EB1 on the distal ends of microtubules. Curr. Biol. 10, 865-868.
Mimori-Kiyosue Y., Shiina N., Tsukita S. (2000) Adenomatous polyposis coli (APC) protein moves along microtubules and concentrates at their growing ends in epithelial cells. J. Cell Biol. 148, 505-518.
Kubo A., Sasaki H., Yuba-Kubo A., Tsukita S., *Shiina N. (1999) Centriolar satellites: molecular characterization, ATP-dependent movement toward centrioles and possible involvement in ciliogenesis. J. Cell Biol. 147, 969-980.
*Shiina N., Tsukita S. (1999) Mutations at phosphorylation sites of Xenopus microtubule-associated protein 4 affect its microtubule-binding ability and chromosome movement during mitosis. Mol. Biol. Cell 10, 597-608.
Shiina N., Gotoh Y., Kubomura N., Iwamatsu A., Nishida E. (1994) Microtubule severing by elongation factor 1 alpha. Science 266, 282-285.
Ohta K., Shiina N., Okumura E., Hisanaga S., Kishimoto T., Endo S., Gotoh Y., Nishida E., Sakai H. (1993) Microtubule nucleating activity of centrosomes in cell-free extracts from Xenopus eggs: involvement of phosphorylation and accumulation of pericentriolar material. J Cell Sci. 104, 125-137.
Shiina N., Gotoh Y., Nishida E. (1992) A novel homo-oligomeric protein responsible for an MPF-dependent microtubule-severing activity. EMBO J. 11, 4723-4731.
Shiina N., Moriguchi T., Ohta K., Gotoh Y., Nishida E. (1992) Regulation of a major microtubule-associated protein by MPF and MAP kinase. EMBO J. 11, 3977-3984.
Gotoh Y., Nishida E., Matsuda S., Shiina N., Kosako H., Shiokawa K., Akiyama T., Ohta K., Sakai H. (1991) In vitro effects on microtubule dynamics of purified Xenopus M phase-activated MAP kinase. Nature 349, 251-254.
総 説
大橋りえ, 椎名伸之:神経RNA顆粒が制御する局所翻訳を長期記憶形成, 生化学 第94巻第4号, pp.529-536 (2022).
*Ohashi, R., *Shiina, N. (2020) Cataloguing and Selection of mRNAs Localized to Dendrites in Neurons and Regulated by RNA-Binding Proteins in RNA Granules. Biomolecules 10 (2), DOI: 10.3390/biom10020167
Roy, R., *Shiina, N., *Wang, D.O. (2019) More dynamic, more quantitative, unexpectedly intricate: Advanced understanding on synaptic RNA localization in learning and memory. Neurobiol. Learn. Mem. 168, 107149, DOI: 10.1016/j.nlm.2019.107149
*Shiina, N., Tsukita, S. (1999) Regulation of microtubule organization during interphase and M phase. Cell Struct. Function 24, 35-392.
Shiina, N., Gotoh Y., Nishida E. (1995) Microtubule-severing activity in M phase. Trends Cell Biol. 5, 283-286.
椎名伸之:RNA granuleによる樹状突起へのmRNA輸送と局所タンパク質合成.細胞工学 31: 655-659 (2012).
椎名伸之:神経樹状突起におけるRNA粒子と翻訳制御.蛋白質核酸酵素 54, 2171-2176 (2009).
椎名伸之:生体高分子のショ糖密度勾配による超遠心分画.実験医学 27, 2125-2130 (2009).
椎名伸之、徳永万喜洋:神経シナプス可塑性の分子イメージング.Clinical Neuroscience 26, 1062-1063 (2008).
椎名伸之,徳永万喜洋:神経シナプス可塑性における局所的翻訳の制御機構 蛋白質核酸酵素51, 943-949 (2006)
椎名伸之,後藤由季子,西田栄介:M期における微小管切断と微小管構築 細胞工学15, 288-295 (1996)
椎名伸之,後藤由季子,西田栄介:M期微小管構築 実験医学12, 425-430 (1994)
西田栄介,椎名伸之,後藤由季子:細胞周期と微小管構築 Mebio, 10, 27-32 (1993)
図 書
月田承一郎,米村重信,椎名伸之:細胞骨格と細胞運動 岩波講座現代医学の基礎2「分子・細胞の生物学II」p119-134.(岩波書店,2000)
椎名伸之,西田栄介:チューブリン重合 バイオマニュアルUPシリーズ「細胞生物学の基礎技術」p107-111.(羊土社,1997)