研究者詳細

顔写真

クチツ ヨシヒコ
朽津 芳彦
Yoshihiko Kuchitsu
所属
大学院生命科学研究科 脳生命統御科学専攻 細胞ネットワーク講座(細胞小器官疾患学分野)
職名
助教
学位
  • 博士 (東北大学)

経歴 5

  • 2024年8月 ~ 継続中
    東北大学 生命科学研究科 助教

  • 2023年4月 ~ 2024年7月
    独立行政法人日本学術振興会 特別研究員(PD)

  • 2022年4月 ~ 2023年3月
    東北大学大学院 大学院生命科学研究科

  • 2019年4月 ~ 2022年3月
    独立行政法人日本学術振興会 特別研究員(DC1)

  • 2018年4月 ~ 2019年3月
    東北大学 高等大学院機構 学際高等研究教育院 修士研究教育院生

学歴 4

  • 東北大学 大学院生命科学研究科 脳生命統御科学専攻

    2019年4月 ~ 2022年3月

  • 東北大学 大学院生命科学研究科 生命機能科学専攻

    2017年4月 ~ 2019年3月

  • 東北大学 理学部 生物学科

    2013年4月 ~ 2017年3月

  • 渋谷教育学園幕張中学・高等学校

    2006年4月 ~ 2012年3月

委員歴 2

  • 日本生化学会 「生化学」誌企画協力委員

    2026年1月 ~ 2027年1月

  • 日本生化学会 「生化学」誌企画協力委員

    2024年1月 ~ 2026年1月

研究分野 1

  • ライフサイエンス / 細胞生物学 /

受賞 18

  1. 研究奨励助成金

    2025年12月 公益財団法人 小野医学研究財団

  2. 研究奨励金

    2025年12月 公益財団法人上原記念生命科学財団

  3. 優秀演題

    2025年8月 第46回日本炎症・再生医学会

  4. 生命科学研究科研究奨励賞

    2024年12月 東北大学 生命科学研究科

  5. 優秀論文賞

    2024年5月 日本生化学会 東北支部

  6. 第40回井上研究奨励賞

    2023年12月 井上科学振興財団

  7. 優秀ポスター発表賞

    2023年11月 新学術領域研究「マルチモードオートファジー」

  8. 若手最優秀発表賞

    2023年6月 日本細胞生物学会

  9. 総長賞

    2022年3月 東北大学

  10. 青葉理学振興会賞

    2022年3月 東北大学 理学研究科

  11. 研究科長賞

    2022年3月 東北大学 生命科学研究科

  12. 優秀演題

    2022年2月 第5回日本免疫不全・自己炎症学会総会・学術集会

  13. 若手優秀発表賞

    2021年9月 第94回日本生化学大会

  14. 最優秀発表賞

    2019年9月 第18回次世代を担う若手のためのファーマ・バイオフォーラム2019

  15. 表彰

    2019年6月 細胞生物若手の会

  16. 研究科長賞

    2019年3月 東北大学 生命科学研究科

  17. 最優秀発表賞

    2018年8月 生化学若い研究者の会 第58回生命科学夏の学校

  18. Best Poster Presentation Award

    2018年8月 CWRU-TU (Case Western Reserve University – Tohoku University) 5th Joint Workshop

︎全件表示 ︎最初の5件までを表示

論文 23

  1. An N-terminal CDC42 T43I variant reveals the mechanism of pyrin inflammasome activation. 国際誌 査読有り

    Mariko Aoki, Alberto Iannuzzo, Philippe Mertz, Shouya Feng, Naoya Iwata, Chiara Perugini, Naomi Tsuchida, Rana El Masri, Yoshihiko Kuchitsu, Rachida Tacine, Simona Coppola, Hirofumi Shibata, Margaux Cescato, Masahiko Nishitani-Isa, Alexandre Terré, Yuri Kawasaki, Sarah Dalmon, Kenichi Nishimura, Flora Magnotti, Satoko Miyatake, Marc André, Keisuke Hamada, Jonathan London, Kazushi Izawa, Akira Niwa, Nobuhiko Okamoto, Kazuhiro Ogata, Masashi Nishikawa, Erika Zara, Megumu K Saito, Marco Tartaglia, Shuichi Ito, Mathieu P Rodero, Koh-Ichi Nagata, Asma Smahi, Naomichi Matsumoto, Laurent Le Corre, Junko Takita, Guilaine Boursier, Atsushi Hijikata, Thomas Henry, Tomohiko Taguchi, Véronique Hentgen, Sophie Georgin-Lavialle, Yoshitaka Honda, Seth L Masters, Takahiro Yasumi, Jérôme Delon

    Science immunology 11 (122) eaea0515 2026年8月7日

    DOI: 10.1126/sciimmunol.aea0515  

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    Heterozygous carboxyl-terminal variants in the RHO guanosine triphosphatase (GTPase) CDC42 are known to cause severe autoinflammatory syndromes. Here, we identified a heterozygous amino-terminal p.T43I (Thr43→Ile) CDC42 variant in patients with autoinflammation and uncovered a molecular link between CDC42 and the inflammasome sensor pyrin, mutated in the hereditary autoinflammatory syndrome familial Mediterranean fever. We demonstrate that the region surrounding residue T43 of CDC42 interacts with the carboxyl-terminal B30.2 domain of pyrin and regulates its localization and activation. The p.T43I substitution strengthens the CDC42-pyrin interaction through additional van der Waals interactions, leading to increased pyrin inflammasome activation, as evidenced by increased ASC (apoptosis-associated speck-like protein containing a caspase activating and recruitment domain) speck formation, enhanced pyroptosis, and excessive interleukin-1β (IL-1β) and IL-18 production. These findings identify CDC42 as a pyrin ligand and provide critical insights into the role of the pyrin B30.2 domain in inflammasome activation, suggesting dual regulation of pyrin by two RHO family GTPases, RHOA and CDC42.

  2. A genotype-first approach reveals the molecular basis of pyrin inflammasome activation. 国際誌 査読有り

    Naoya Iwata, Yoshihiko Kuchitsu, Atsushi Hijikata, Hirofumi Shibata, Masahiko Nishitani-Isa, Mariko Aoki, Kazushi Izawa, Hiroyuki Yoshitomi, Junko Takita, Hideki Ueno, Tomohiko Taguchi, Takahiro Yasumi, Yoshitaka Honda

    Science immunology 11 (122) eaea0705 2026年8月7日

    DOI: 10.1126/sciimmunol.aea0705  

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    Mutations in the MEFV gene, which encodes pyrin, are associated with a spectrum of inflammatory conditions called pyrin-associated autoinflammatory diseases (PAADs). Of the 400 MEFV variants listed in the Infevers database, most are classified as variants of uncertain significance. Thus, genetic diagnosis of PAADs remains challenging, and the molecular mechanisms underlying pyrin activation remain poorly understood. Here, we used a cell-based pyroptosis assay to stratify 265 missense MEFV variants and identified previously uncharacterized pathogenic variants. We then characterized the interaction between the pyrin B30.2 domain and CDC42, a key regulator of pyrin intracellular trafficking and activation. We found that classical familial Mediterranean fever (FMF)-related variants bind tightly to CDC42 to induce pyrin hyperactivation, whereas certain non-FMF variants induce pyrin hyperactivation independently of CDC42, indicating involvement of multiple pathways in pyrin activation. Our approach provides a proof of concept for a genotype-first approach, which may advance our understanding of complex human diseases.

  3. A PI(3,5)P2/CHMP4B axis on lysosomes is essential for microautophagic degradation of STING. 国際誌 査読有り

    Tsumugi Shoji, Ayumi Shinojima, Takuma Kishimoto, Kanako Sato, Nana Ikegami, Eisuke Yumoto, Ruri Shindo, Yasunori Uchida, Satoshi Kusumi, Daisuke Koga, Eiji Yamamoto, Yoshinori Hirano, Ryo Ogino, Hirofumi Shibata, Kazushi Izawa, Takahiro Yasumi, Ryota Sato, Jun Nakayama, Shigeki Higashiyama, Junya Hasegawa, Hiroaki Kajiho, Takehiko Sasaki, Yoshihiko Kuchitsu, Tomohiko Taguchi

    Nature communications 17 (1) 2026年5月27日

    DOI: 10.1038/s41467-026-72828-4  

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    Stimulator of interferon genes (STING) is critical for the type I interferon responses to pathogen- or self-derived cytosolic DNA. STING signalling is terminated by ESCRT-driven lysosomal microautophagy. How STING is directly encapsulated by lysosomes has not yet been understood. Here we show that two lysosomal components, a phosphoinositide PI(3,5)P2 and CHMP4B (a subunit of ESCRT-III subcomplex) are essential for STING encapsulation by lysosomes. Liposome sedimentation assay reveals that CHMP4B binds to PI(3,5)P2. The forced recruitment of the catalytic core of Pikfyve (a lipid kinase generating PI(3,5)P2) to early endosomes, recruits a fraction of CHMP4B to early endosomes. CHMP4B mutant, defective in the binding to PI(3,5)P2, cannot restore the microautophagic degradation of STING or the resolution of the STING signalling in cells depleted of Chmp4b. Our results reveal a molecular mechanism that terminates innate immune signalling at the lysosomal membrane.

  4. Visualizing Newly Synthesized Proteins and Their Degradation Dynamics by Using Long-Wavelength-Emitting Fluorescent Dye-DBCO Conjugates. 国際誌 査読有り

    Shun Sumitani, Eita Sasaki, Hisashi Ohno, Sota Yamada, Orie Takayama, Fan-Yan Wei, Yoshihiko Kuchitsu, Tomohiko Taguchi, Kenjiro Hanaoka

    Bioconjugate chemistry 2026年4月24日

    DOI: 10.1021/acs.bioconjchem.5c00645  

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    Understanding the spatiotemporal dynamics of protein synthesis and degradation is important for establishing how cells maintain protein homeostasis. Conventional methods for detecting newly synthesized proteins include metabolic labeling with radioactive [35S]methionine (Met) or the incorporation of l-azidohomoalanine (AHA) or l-homopropargylglycine followed by fluorescent labeling via copper(I)-catalyzed click chemistry. However, these methods typically require cell fixation, making them unsuitable for live-cell imaging. Here, we describe a fluorescence imaging technique to monitor newly synthesized proteins in living cells by utilizing a strain-promoted azide-alkyne cycloaddition (SPAAC) reaction, in which l-AHA-containing proteins are labeled with fluorescent dyes conjugated to dibenzocyclooctyne (DBCO). We synthesized orange-emitting tetramethylrhodamine (TAMRA)-DBCO and far-red-emitting silicon rhodamine (SiR)-DBCO. TAMRA-DBCO enabled the visualization of newly synthesized proteins and their time-dependent degradation throughout the entire cell. SiR-DBCO was similarly effective, but was mainly distributed to the cytoplasm. The time-dependent decrease of TAMRA-DBCO fluorescence intensity in living cells was suppressed by lysosomal enzyme inhibitors and a proteasome inhibitor, suggesting that newly synthesized proteins are degraded via both pathways. Moreover, imaging of drug-induced senescent cells with TAMRA-DBCO suggested that senescent cells have a lower protein degradation ability than nonsenescent cells. These methods should be useful for investigating protein homeostasis in living cells.

  5. Adenosine kinase and ADAL coordinate detoxification of modified adenosines to safeguard metabolism. 国際誌 査読有り

    Akiko Ogawa, Satoshi Watanabe, Iuliia Ozerova, Allen Yi-Lun Tsai, Yoshihiko Kuchitsu, Harrison Byron Chong, Tomoyoshi Kawakami, Jirio Fuse, Wei Han, Ryuhei Kudo, Tomoki Naito, Kota Sato, Toru Nakazawa, Yasunori Saheki, Akiyoshi Hirayama, Peter F Stadler, Mieko Arisawa, Kimi Araki, Liron Bar-Peled, Tomohiko Taguchi, Shinichiro Sawa, Kenji Inaba, Fan-Yan Wei

    Cell 2025年8月13日

    DOI: 10.1016/j.cell.2025.07.041  

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    RNA contains diverse post-transcriptional modifications, and its catabolic breakdown yields numerous modified nucleosides requiring correct processing, but the mechanisms remain unknown. Here, we demonstrate that three RNA-derived modified adenosines, N6-methyladenosine (m6A), N6,N6-dimethyladenosine (m6,6A), and N6-isopentenyladenosine (i6A), are sequentially metabolized into inosine monophosphate (IMP) to mitigate their intrinsic cytotoxicity. After phosphorylation by adenosine kinase (ADK), they undergo deamination by adenosine deaminase-like (ADAL). In Adal knockout mice, N6-modified adenosine monophosphates (AMPs) accumulate and allosterically inhibit AMP-activated protein kinase (AMPK), dysregulating glucose metabolism. Furthermore, ADK deficiency, linked to human inherited disorders of purine metabolism, elevates levels of the three modified adenosines, resulting in early lethality in mice. Mechanistically, excessive m6A, m6,6A, and i6A impair lysosomal function by interfering with lysosomal membrane proteins, thereby disrupting lipid metabolism and causing cellular toxicity. Through this nucleotide metabolism pathway and mechanism, cells detoxify modified adenosines, linking modified RNA metabolism to human disease.

  6. Cell biological insights into human STING variants. 査読有り

    Shogo Koide, Eisuke Yumoto, Jun Nakayama, Shigeki Higashiyama, Yoshihiko Kuchitsu, Tomohiko Taguchi

    Cell structure and function 2025年5月14日

    DOI: 10.1247/csf.25020  

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    Stimulator of interferon genes (STING) is an endoplasmic reticulum (ER)-localized transmembrane protein. STING induces the type I interferon and inflammatory responses against a variety of double-stranded DNA (dsDNA) viruses, which is critical to limiting their infection and replication. In certain settings where self-DNAs (genomic or mitochondrial DNA) emerge in the cytosol or the intracellular membrane traffic is impaired, STING becomes activated and triggers inflammation, which may contribute to the pathogenesis of various autoinflammatory and neurodegenerative diseases including COPA syndrome and Parkinson's disease. The human STING gene holds genetic heterogeneity with R232, HAQ (R71H-G230A-R293Q), and H232 being the most common variants, and population stratification. A very recent study has shown that HAQ, not R232 or H232, mediates completely clinical protection in the pathogenesis of COPA syndrome. These results reveal, for the first time, the distinct activities of the major variants in the context of pathogenesis of autoinflammatory diseases. Besides these major variants, there exist minor pathogenic STING variants that cause an autoinflammatory disease called STING-associated vasculopathy with onset in infancy (SAVI). This review summarizes recent insights into human STING variants and their inflammatory activities.Key words: innate immunity, STING variants, COPA syndrome, membrane traffic, the Golgi.

  7. A quantitative method to monitor STING degradation with dual-luciferase reporters. 査読有り

    Tsumugi Shoji, Kanako Sato, Ayumi Shinojima, Shogo Koide, Ruri Shindo, Kazune Hongo, Kojiro Mukai, Yoshihiko Kuchitsu, Tomohiko Taguchi

    Cell structure and function 2025年4月19日

    DOI: 10.1247/csf.25011  

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    Stimulator of interferon genes (STING) triggers the type I interferon and inflammatory responses against a variety of DNA pathogens, which is essential to limiting viral infection and replication. STING activates the downstream kinase TBK1 at the trans-Golgi network (TGN) and is degraded at lysosomes through a process called lysosomal microautophagy. Impaired STING targeting to lysosomes results in the prolonged inflammatory signal, which may be associated with a variety of neurodegenerative and autoinflammatory diseases. Thus, development of methods to quantify STING degradation helps understand the mechanism of lysosomal microautophagy and its related diseases. Here we report a quantitative method to monitor STING degradation with two luciferases, firefly luciferase (FLuc) and Nanoluciferase (NLuc). The expression plasmid is composed of FLuc, a P2A self-cleavage site, and NLuc-tagged STING. FLuc intensity reflects the total amount of translated protein, serving as an internal control, while NLuc intensity corresponds to the amount of STING. Comparison of the NLuc/FLuc ratio after STING stimulation reported the kinetics of decay of STING levels in live cells. This method should provide a useful complement to western blotting and fluorescence- activated cell sorter (FACS) analysis presently used to monitor STING degradation.Key words: Innate immunity, STING, membrane traffic, lysosomal degradation, luciferase.

  8. Innate immune signals triggered on organelle membranes. 国際誌 査読有り

    Yoshihiko Kuchitsu, Tomohiko Taguchi

    Journal of biochemistry 2025年4月8日

    DOI: 10.1093/jb/mvaf016  

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    Our body is constantly exposed to pathogens, and equipped with a highly elaborate immune system to fight against invading pathogens. The first line of defense is the innate immune system. It has evolved to detect conserved microbial molecular patterns, dubbed pathogen-associated molecular patterns (PAMPs), through pattern recognition receptors (PRRs). The binding of PRRs to PAMPs activates intracellular signalling cascades that lead to the expression of proinflammatory cytokines, type I interferons, and other antiviral proteins that all coordinate the elimination of pathogens and infected cells. PRRs can be classified as transmembrane receptors, including Toll-like receptors (TLRs) and some C-type lectin receptors (CLRs), and as cytosolic receptors including retinoic acid-inducible gene-I (RIG-I)-like receptors, nucleotide-binding domain and leucine-rich repeat-containing (NLR) proteins, and cyclic GMP-AMP (cGAMP) synthase (cGAS). Studies have revealed that innate immune signals, including the ones activated by cytosolic PRRs, are triggered on organelle membranes. Here we review the recent insights into how organelle membranes and their associated membrane lipids contribute to PRR-mediated innate immune signals.

  9. The common HAQ STING allele prevents clinical penetrance of COPA syndrome 査読有り

    Noa Simchoni, Shogo Koide, Maryel Likhite, Yoshihiko Kuchitsu, Senkottuvelan Kadirvel, Christopher S. Law, Brett M. Elicker, Santosh Kurra, Margaret Mei-Kay Wong, Bo Yuan, Alice Grossi, Ronald M. Laxer, Stefano Volpi, Dilan Dissanayake, Tomohiko Taguchi, David B. Beck, Tiphanie P. Vogel, Anthony K. Shum

    Journal of Experimental Medicine 2025年4月7日

    DOI: 10.1084/jem.20242179  

  10. A non-toxic equinatoxin-II reveals the dynamics and distribution of sphingomyelin in the cytosolic leaflet of the plasma membrane. 国際誌 査読有り

    Toshiki Mori, Takahiro Niki, Yasunori Uchida, Kojiro Mukai, Yoshihiko Kuchitsu, Takuma Kishimoto, Shota Sakai, Asami Makino, Toshihide Kobayashi, Hiroyuki Arai, Yasunari Yokota, Tomohiko Taguchi, Kenichi G N Suzuki

    Scientific reports 14 (1) 16872-16872 2024年7月23日

    DOI: 10.1038/s41598-024-67803-2  

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    Sphingomyelin (SM) is a major sphingolipid in mammalian cells. SM is enriched in the extracellular leaflet of the plasma membrane (PM). Besides this localization, recent electron microscopic and biochemical studies suggest the presence of SM in the cytosolic leaflet of the PM. In the present study, we generated a non-toxic SM-binding variant (NT-EqtII) based on equinatoxin-II (EqtII) from the sea anemone Actinia equina, and examined the dynamics of SM in the cytosolic leaflet of living cell PMs. NT-EqtII with two point mutations (Leu26Ala and Pro81Ala) had essentially the same specificity and affinity to SM as wild-type EqtII. NT-EqtII expressed in the cytosol was recruited to the PM in various cell lines. Super-resolution microscopic observation revealed that NT-EqtII formed tiny domains that were significantly colocalized with cholesterol and N-terminal Lyn. Meanwhile, single molecule observation at high resolutions down to 1 ms revealed that all the examined lipid probes including NT-EqtII underwent apparent fast simple Brownian diffusion, exhibiting that SM and other lipids in the cytosolic leaflet rapidly moved in and out of domains. Thus, the novel SM-binding probe demonstrated the presence of the raft-like domain in the cytosolic leaflet of living cell PMs.

  11. STINGing organelle surface with acid 国際誌 査読有り

    Yoshihiko Kuchitsu, Tomohiko Taguchi

    EMBO Reports 2024年3月19日

    DOI: 10.1038/s44319-024-00120-x  

  12. Single-molecule localization microscopy reveals STING clustering at the trans-Golgi network through palmitoylation-dependent accumulation of cholesterol. 国際誌 査読有り

    Haruka Kemmoku*, Kanoko Takahashi*, Kojiro Mukai*, Toshiki Mori, Koichiro M Hirosawa, Fumika Kiku, Yasunori Uchida, Yoshihiko Kuchitsu, Yu Nishioka, Masaaki Sawa, Takuma Kishimoto, Kazuma Tanaka, Yasunari Yokota, Hiroyuki Arai, Kenichi G N Suzuki**, Tomohiko Taguchi**

    Nature communications 15 (1) 220-220 2024年1月11日

    DOI: 10.1038/s41467-023-44317-5  

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    Stimulator of interferon genes (STING) is critical for the type I interferon response to pathogen- or self-derived DNA in the cytosol. STING may function as a scaffold to activate TANK-binding kinase 1 (TBK1), but direct cellular evidence remains lacking. Here we show, using single-molecule imaging of STING with enhanced time resolutions down to 5 ms, that STING becomes clustered at the trans-Golgi network (about 20 STING molecules per cluster). The clustering requires STING palmitoylation and the Golgi lipid order defined by cholesterol. Single-molecule imaging of TBK1 reveals that STING clustering enhances the association with TBK1. We thus provide quantitative proof-of-principle for the signaling STING scaffold, reveal the mechanistic role of STING palmitoylation in the STING activation, and resolve the long-standing question of the requirement of STING translocation for triggering the innate immune signaling.

  13. Lysosomal microautophagy: an emerging dimension in mammalian autophagy. 国際誌 査読有り

    Yoshihiko Kuchitsu*, Tomohiko Taguchi*

    Trends in cell biology 2023年12月15日

    DOI: 10.1016/j.tcb.2023.11.005  

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    Autophagy is a self-catabolic process through which cellular components are delivered to lysosomes for degradation. There are three types of autophagy, i.e., macroautophagy, chaperone-mediated autophagy (CMA), and microautophagy. In macroautophagy, a portion of the cytoplasm is wrapped by the autophagosome, which then fuses with lysosomes and delivers the engulfed cytoplasm for degradation. In CMA, the translocation of cytosolic substrates to the lysosomal lumen is directly across the limiting membrane of lysosomes. In microautophagy, lytic organelles, including endosomes or lysosomes, take up a portion of the cytoplasm directly. Although macroautophagy has been investigated extensively, microautophagy has received much less attention. Nonetheless, it has become evident that microautophagy plays a variety of cellular roles from yeast to mammals. Here we review the very recent updates of microautophagy. In particular, we focus on the feature of the degradative substrates and the molecular machinery that mediates microautophagy.

  14. STING signalling is terminated through ESCRT-dependent microautophagy of vesicles originating from recycling endosomes. 国際誌 査読有り

    Yoshihiko Kuchitsu*, Kojiro Mukai*, Rei Uematsu, Yuki Takaada, Ayumi Shinojima, Ruri Shindo, Tsumugi Shoji, Shiori Hamano, Emari Ogawa, Ryota Sato, Kensuke Miyake, Akihisa Kato, Yasushi Kawaguchi, Masahiko Nishitani-Isa, Kazushi Izawa, Ryuta Nishikomori, Takahiro Yasumi, Takehiro Suzuki, Naoshi Dohmae, Takefumi Uemura, Glen N Barber, Hiroyuki Arai, Satoshi Waguri, Tomohiko Taguchi

    Nature cell biology 25 (3) 453-466 2023年3月

    DOI: 10.1038/s41556-023-01098-9  

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    Stimulator of interferon genes (STING) is essential for the type I interferon response against a variety of DNA pathogens. Upon emergence of cytosolic DNA, STING translocates from the endoplasmic reticulum to the Golgi where STING activates the downstream kinase TBK1, then to lysosome through recycling endosomes (REs) for its degradation. Although the molecular machinery of STING activation is extensively studied and defined, the one underlying STING degradation and inactivation has not yet been fully elucidated. Here we show that STING is degraded by the endosomal sorting complexes required for transport (ESCRT)-driven microautophagy. Airyscan super-resolution microscopy and correlative light/electron microscopy suggest that STING-positive vesicles of an RE origin are directly encapsulated into Lamp1-positive compartments. Screening of mammalian Vps genes, the yeast homologues of which regulate Golgi-to-vacuole transport, shows that ESCRT proteins are essential for the STING encapsulation into Lamp1-positive compartments. Knockdown of Tsg101 and Vps4, components of ESCRT, results in the accumulation of STING vesicles in the cytosol, leading to the sustained type I interferon response. Knockdown of Tsg101 in human primary T cells leads to an increase the expression of interferon-stimulated genes. STING undergoes K63-linked ubiquitination at lysine 288 during its transit through the Golgi/REs, and this ubiquitination is required for STING degradation. Our results reveal a molecular mechanism that prevents hyperactivation of innate immune signalling, which operates at REs.

  15. The activity of disease-causative STING variants can be suppressed by wild-type STING through heterocomplex formation 国際誌 査読有り

    Ruri Shindo*, Yoshihiko Kuchitsu*, Kojiro Mukai, Tomohiko Taguchi

    Frontiers in Cell and Developmental Biology 10 1037999-1037999 2022年11月3日

    出版者・発行元: Frontiers Media SA

    DOI: 10.3389/fcell.2022.1037999  

    eISSN:2296-634X

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    Stimulator of interferon genes (STING) is essential for the type I interferon response induced by microbial DNA from viruses or self-DNA from mitochondria/nuclei. Recently, gain-of-function mutations in STING have been identified in patients with STING-associated vasculopathy with onset in infancy (SAVI). The SAVI patients exhibit complex systemic vascular inflammation and interstitial lung disease, resulting in pulmonary fibrosis and respiratory failure. SAVI mouse models have recently developed, harbouring common SAVI mutations, such as N153S and V154M, which correspond to the human N154S and V155M, respectively. Interestingly, crosses of heterozygous SAVI mice did not yield homozygous SAVI mice as of embryonic day 14, indicating that homozygous SAVI embryos were not viable and that wild-type (WT) allele would function dominantly over SAVI alleles in terms of viability. However, the molecular mechanism underlying the dominance has not been understood. In the present study, we show that STING (WT) and STING (SAVI) can form heterocomplex. The heterocomplex localized primarily in the endoplasmic reticulum (ER) and failed to reach the trans-Golgi network (TGN), where STING activates the downstream kinase TBK1. SURF4 is the essential protein functioning in the retrieval of STING from the Golgi to the ER. The amount of SURF4 bound to STING (SAVI) significantly increased in the presence of STING (WT). These results suggest that STING (WT) can suppress the activity of STING (SAVI) by tethering STING (SAVI) to the ER through heterocomplex formation. The dormant heterocomplex formation may underlie, at least in part, the dominance of STING WT allele over SAVI alleles in the STING-triggered inflammatory response.

  16. Specific association of TBK1 with the trans-Golgi network following STING stimulation 査読有り

    Haruka Kemmoku*, Yoshihiko Kuchitsu*, Kojiro Mukai, Tomohiko Taguchi

    Cell Structure and Function 47 (1) 19-30 2022年3月8日

    DOI: 10.1247/csf.21080  

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    Stimulator of interferon genes (STING) is essential for the type I interferon response induced by microbial DNA or self-DNA leaked from mitochondria/nuclei. In response to the emergence of such DNAs in the cytosol, STING relocates from the endoplasmic reticulum (ER) to the Golgi, and activates TANK-binding kinase 1 (TBK1), a cytosolic kinase essential for the activation of STING-dependent downstream signalling. To understand at which subcellular compartments TBK1 becomes associated with STING, we generated cells stably expressing fluorescent protein-tagged STING (mNeonGreen-STING) and TBK1 (TBK1-mScarletI). We found that after STING stimulation, TBK1 became associated with the trans-Golgi network (TGN), not the other parts of the Golgi. STING variants that constitutively induce the type I interferon response have been identified in patients with autoinflammatory diseases named "STING-associated vasculopathy with onset in infancy (SAVI)". Even in cells expressing these constitutively active STING variants, TBK1 was found to be associated with TGN, not the other parts of the Golgi. These results suggest that TGN acts as a specific platform where STING associates with and activates TBK1.Key words: the Golgi, membrane traffic, innate immunity, STING.

  17. STINGの恒常活性化に起因する自己炎症・神経変性疾患 招待有り 査読有り

    朽津 芳彦, 向井 康治朗, 田口 友彦

    日本免疫不全・自己炎症学会雑誌 1 (1) 24-34 2022年1月17日

    出版者・発行元: 一般社団法人 日本免疫不全・自己炎症学会

    DOI: 10.34563/jsiadjournal.1.1_24  

    ISSN:2435-7693

    eISSN:2435-7693

    詳細を見る 詳細を閉じる

    cGAS-STING経路は, ウイルスが宿主の細胞質に持ち込む“非自己”DNAに応答して, I型インターフェロンや炎症性サイトカインの発現誘導を惹起する自然免疫シグナル経路である. しかしながら, 本経路がゲノムDNAやミトコンドリアDNAなどの“自己”DNAにも応答し活性化すること, 本経路の異常な活性化が多様な自己炎症性疾患[Aicardi-Goutières syndrome(AGS)など]や神経変性疾患[amyotrophic lateral sclerosis(ALS)など]の発症に関与することが相次いで報告され, 注目を集めている. さらに, 細胞生物学的なアプローチによるcGAS-STING経路の解析が進展し, その成果が本経路の選択的な阻害剤の開発につながっている. 本総説では, cGAS-STING活性化分子機構, およびcGAS-STING経路が関与する自己炎症性疾患や神経変性疾患について, 筆者らの最新の知見を交えて概説する.

  18. Homeostatic regulation of STING by retrograde membrane traffic to the ER. 査読有り

    Mukai K, Ogawa E, Uematsu R, Kuchitsu Y, Kiku F, Uemura T, Waguri S, Suzuki T, Dohmae N, Arai H, Shum AK, Taguchi T

    Nature communications 2021年1月

    DOI: 10.1038/s41467-020-20234-9  

  19. Comprehensive knockout analysis of the Rab family GTPases in epithelial cells. 国際誌 査読有り

    Yuta Homma, Riko Kinoshita, Yoshihiko Kuchitsu, Paulina S Wawro, Soujiro Marubashi, Mai E Oguchi, Morié Ishida, Naonobu Fujita, Mitsunori Fukuda

    The Journal of cell biology 218 (6) 2035-2050 2019年6月3日

    DOI: 10.1083/jcb.201810134  

    詳細を見る 詳細を閉じる

    The Rab family of small GTPases comprises the largest number of proteins (∼60 in mammals) among the regulators of intracellular membrane trafficking, but the precise function of many Rabs and the functional redundancy and diversity of Rabs remain largely unknown. Here, we generated a comprehensive collection of knockout (KO) MDCK cells for the entire Rab family. We knocked out closely related paralogs simultaneously (Rab subfamily knockout) to circumvent functional compensation and found that Rab1A/B and Rab5A/B/C are critical for cell survival and/or growth. In addition, we demonstrated that Rab6-KO cells lack the basement membrane, likely because of the inability to secrete extracellular matrix components. Further analysis revealed the general requirement of Rab6 for secretion of soluble cargos. Transport of transmembrane cargos to the plasma membrane was also significantly delayed in Rab6-KO cells, but the phenotype was relatively mild. Our Rab-KO collection, which shares the same background, would be a valuable resource for analyzing a variety of membrane trafficking events.

  20. Revisiting Rab7 Functions in Mammalian Autophagy: Rab7 Knockout Studies. 国際誌 査読有り

    Yoshihiko Kuchitsu, Mitsunori Fukuda

    Cells 7 (11) 2018年11月19日

    DOI: 10.3390/cells7110215  

    詳細を見る 詳細を閉じる

    Rab7 (or Ypt7 in yeast) is one of the well-characterized members of the Rab family small GTPases, which serve as master regulators of membrane trafficking in eukaryotes. It localizes to late endosomes and lysosomes and has multiple functions in the autophagic pathway as well as in the endocytic pathway. Because Rab7/Ypt7 has previously been shown to regulate the autophagosome-lysosome fusion step in yeast and fruit flies (i.e., autophagosome accumulation has been observed in both Ypt7-knockout [KO] yeast and Rab7-knockdown fruit flies), it is widely assumed that Rab7 regulates the autophagosome-lysosome fusion step in mammals. A recent analysis of Rab7-KO mammalian cultured cells, however, has revealed that Rab7 is essential for autolysosome maturation (i.e., autolysosome accumulation has been observed in Rab7-KO cells), but not for autophagosome-lysosome fusion, under nutrient-rich conditions. Thus, although Rab7/Ypt7 itself is essential for the proper progression of autophagy in eukaryotes, the function of Rab7/Ypt7 in autophagy in yeast/fruit flies and mammals must be different. In this review article, we describe novel roles of Rab7 in mammalian autophagy and discuss its functional diversification during evolution.

  21. Rab11a-Rab8a cascade regulates the formation of tunneling nanotubes through vesicle recycling. 国際誌 査読有り

    Seng Zhu, Shaarvari Bhat, Sylvie Syan, Yoshihiko Kuchitsu, Mitsunori Fukuda, Chiara Zurzolo

    Journal of cell science 131 (19) 2018年10月5日

    DOI: 10.1242/jcs.215889  

    詳細を見る 詳細を閉じる

    Tunneling nanotubes (TNTs) are actin-enriched membranous channels enabling cells to communicate over long distances. TNT-like structures form between various cell types and mediate the exchange of different cargos, such as ions, vesicles, organelles and pathogens; thus, they may play a role in physiological conditions and diseases (e.g. cancer and infection). TNTs also allow the intercellular passage of protein aggregates related to neurodegenerative diseases, thus propagating protein misfolding. Understanding the mechanism of TNT formation is mandatory in order to reveal the mechanism of disease propagation and to uncover their physiological function. Vesicular transport controlled by the small GTPases Rab11a and Rab8a can promote the formation of different plasma membrane protrusions (filopodia, cilia and neurites). Here, we report that inhibiting membrane recycling reduces the number of TNT-connected cells and that overexpression of Rab11a and Rab8a increases the number of TNT-connected cells and the propagation of vesicles between cells in co-culture. We demonstrate that these two Rab GTPases act in a cascade in which Rab11a activation of Rab8a is independent of Rabin8. We also show that VAMP3 acts downstream of Rab8a to regulate TNT formation.

  22. Rab7 knockout unveils regulated autolysosome maturation induced by glutamine starvation. 国際誌 査読有り

    Yoshihiko Kuchitsu, Yuta Homma, Naonobu Fujita, Mitsunori Fukuda

    Journal of cell science 131 (7) 2018年4月6日

    DOI: 10.1242/jcs.215442  

    詳細を見る 詳細を閉じる

    Macroautophagy (simply called autophagy hereafter) is an intracellular degradation mechanism that is activated by nutrient starvation. Although it is well known that starvation induces autophagosome formation in an mTORC1-dependent manner, whether starvation also regulates autophagosome or autolysosome maturation was unclear. In the present study, we succeeded in demonstrating that starvation activates autolysosome maturation in mammalian cells. We found that knockout (KO) of Rab7 (herein referring to the Rab7a isoform) caused an accumulation of a massive number of LC3-positive autolysosomes under nutrient-rich conditions, indicating that Rab7 is dispensable for autophagosome-lysosome fusion. Intriguingly, the autolysosomes that had accumulated in Rab7-KO cells matured and disappeared after starvation for a brief period (∼10 min), and we identified glutamine as an essential nutrient for autolysosome maturation. In contrast, forced inactivation of mTORC1 through treatment with its inhibitor Torin2 failed to induce autolysosome maturation, suggesting that the process is controlled by an mTORC1-independent mechanism. Since starvation-induced autolysosome maturation was also observed in wild-type cells, the nutrient-starvation-induced maturation of autolysosomes is likely to be a generalized mechanism in the same manner as starvation-induced autophagosome formation. Such multistep regulatory mechanisms would enable efficient autophagic flux during starvation.

  23. Genetic screen in Drosophila muscle identifies autophagy-mediated T-tubule remodeling and a Rab2 role in autophagy. 国際誌 査読有り

    Naonobu Fujita, Wilson Huang, Tzu-Han Lin, Jean-Francois Groulx, Steve Jean, Jen Nguyen, Yoshihiko Kuchitsu, Ikuko Koyama-Honda, Noboru Mizushima, Mitsunori Fukuda, Amy A Kiger

    eLife 6 2017年1月7日

    DOI: 10.7554/eLife.23367  

    詳細を見る 詳細を閉じる

    Transverse (T)-tubules make-up a specialized network of tubulated muscle cell membranes involved in excitation-contraction coupling for power of contraction. Little is known about how T-tubules maintain highly organized structures and contacts throughout the contractile system despite the ongoing muscle remodeling that occurs with muscle atrophy, damage and aging. We uncovered an essential role for autophagy in T-tubule remodeling with genetic screens of a developmentally regulated remodeling program in Drosophila abdominal muscles. Here, we show that autophagy is both upregulated with and required for progression through T-tubule disassembly stages. Along with known mediators of autophagosome-lysosome fusion, our screens uncovered an unexpected shared role for Rab2 with a broadly conserved function in autophagic clearance. Rab2 localizes to autophagosomes and binds to HOPS complex members, suggesting a direct role in autophagosome tethering/fusion. Together, the high membrane flux with muscle remodeling permits unprecedented analysis both of T-tubule dynamics and fundamental trafficking mechanisms.

︎全件表示 ︎最初の5件までを表示

MISC 37

  1. 自己炎症性疾患2025 II.病態解析 cGAS-STING自然免疫経路の分子機構

    田口友彦, 朽津芳彦

    日本臨床 83 (2) 2025年

    ISSN: 0047-1852

  2. いま知りたい!!見過ごされていた”ミクロ”オートファジー-そのメカニズムと生理的意義がみえてきた 2 自然免疫分子STINGのミクロオートファジー分解

    朽津芳彦, 田口友彦

    実験医学 42 (13) 2024年

    ISSN: 0288-5514

  3. 3-アミノステロール誘導体の合成およびヒトSTING経路に対する薬理学的作用解析

    露木理緒, 中里英礼奈, 高橋花乃子, 朽津芳彦, 石川稔, 向井康治朗, 田口友彦, 大金賢司

    日本薬学会年会要旨集(Web) 144th 2024年

    ISSN: 0918-9823

  4. STING経路の活性化を抑制するオキシステロール誘導体の構造活性相関

    中里英礼奈, 高橋花乃子, 露木理緒, 朽津芳彦, 石川稔, 向井康治朗, 田口友彦, 大金賢司, 大金賢司

    日本薬学会年会要旨集(Web) 144th 2024年

    ISSN: 0918-9823

  5. COPA異常症の発症を規定するヒトSTINGバリアントの同定

    小出頌悟, 見目悠, 朽津芳彦, 田口友彦

    日本生化学会大会(Web) 97th 2024年

  6. がん細胞における自然免疫分子STINGの分解依存的な制御機構の解明

    湯本瑛亮, 家村顕自, 朽津芳彦, 田口友彦, 田中耕三

    日本生化学会大会(Web) 97th 2024年

  7. アミノ酸飢餓による急速なリソソームpH低下現象の発見

    五十嵐柊明, 栗山卓也, 野本歩夢, 花岡健二郎, 朽津芳彦, 田口友彦

    日本生化学会大会(Web) 97th 2024年

  8. PI(3,5)P2/CHMP4Bによるリソソームミクロオートファジー分解制御機構

    東海林紬, 篠島あゆみ, 久住聡, 甲賀大輔, 向井康治朗, 中山淳, 東山繁樹, 東山繁樹, 東山繁樹, 朽津芳彦, 田口友彦

    日本生化学会大会(Web) 97th 2024年

  9. ゴルジ体膜タンパク質LAPTM4Aは定常的にリソソームミクロオートファジーにより分解を受ける

    池上夏汀, 砂山風磨, 進藤瑠璃, 朽津芳彦, 田口友彦

    日本生化学会大会(Web) 97th 2024年

  10. リソソームコレステロールによる自然免疫分子STINGミクロオートファジー分解制御

    佐藤加奈子, 朽津芳彦, 岸本拓磨, 田口友彦

    日本生化学会大会(Web) 97th 2024年

  11. 新規レシオ型pHプローブによるアミノ酸飢餓依存的なリソソーム内腔pH低下現象の発見とその制御機構

    朽津芳彦, 栗山卓也, 五十嵐柊明, 野本歩夢, 花岡健二郎, 田口友彦

    日本生化学会大会(Web) 97th 2024年

  12. STING炎症シグナル

    田口友彦, 朽津芳彦

    月刊臨床免疫・アレルギー科 80 (6) 2023年

    ISSN: 1881-1930

  13. LPDS及び7-デヒドロコレステロールレダクターゼ阻害剤(AY9944)同時処理によって,STING経路の活性化は抑制される

    高橋花乃子, 朽津芳彦, 田口友彦

    日本生化学会大会(Web) 96th 2023年

  14. アラニンスキャニング変異体解析による自然免疫分子STINGの新規活性制御部位の同定

    湯本瑛亮, 朽津芳彦, 小出頌悟, 向井康治朗, 田口友彦

    日本生化学会大会(Web) 96th 2023年

  15. リソソームによる内包化・分解現象の基質:STINGクラスリン被覆小胞クラスター

    進藤瑠璃, 朽津芳彦, 向井康治朗, 和栗聡, 田口友彦

    日本生化学会大会(Web) 96th 2023年

  16. トランスゴルジネットワークにおけるコレステロール依存的なSTINGのクラスター形成とその意義

    見目悠, 高橋花乃子, 向井康治朗, 朽津芳彦, 鈴木健一, 見目悠

    日本生化学会大会(Web) 96th 2023年

  17. 新規レシオ型pHプローブによるリソソーム内腔pHのライブイメージング解析

    栗山卓也, 野本歩夢, 花岡健二郎, 朽津芳彦, 田口友彦

    日本生化学会大会(Web) 96th 2023年

  18. PI(3,5)P2によるリソソーム内包化・分解現象の制御

    東海林紬, 朽津芳彦, 篠島あゆみ, 向井康治朗, 田口友彦

    日本生化学会大会(Web) 96th 2023年

  19. 自然免疫分子STINGの恒常活性化に起因する自己炎症性疾患の発症機構

    進藤瑠璃, 朽津芳彦, 向井康治朗, 田口友彦

    日本免疫不全・自己炎症学会雑誌(Web) 2 (2) 2023年

    ISSN: 2435-7693

  20. リソソーム分解を介した自然免疫応答経路STINGシグナルの収束機構

    朽津芳彦, 向井康治朗, 高阿田有希, 篠島あゆみ, 植村武文, 和栗聡, 田口友彦

    日本免疫不全・自己炎症学会雑誌(Web) 1 (2) 2022年

    ISSN: 2435-7693

  21. リソソームミクロオートファジーによるSTINGの分解を介した自然免疫応答制御

    向井康治朗, 朽津芳彦, 田口友彦

    日本生化学会大会(Web) 95th 2022年

  22. 自然免疫分子STINGのミクロオートファジー分解

    田口友彦, 朽津芳彦, 高阿田有希, 篠島あゆみ, 向井康治朗, 植村武文, 和栗聡

    日本解剖学会総会・全国学術集会講演プログラム・抄録集 127th (CD-ROM) 2022年

  23. 自然免疫分子STINGの小胞体局在維持機構とその破綻に起因する疾患 国際誌

    向井康治朗, 小川笑満里, 植松黎, 朽津芳彦, 菊史佳, 植村武文, 和栗聡, 鈴木健裕, 堂前直, 新井洋由, SHUM Anthony K., 田口友彦

    日本細胞生物学会大会(Web) 12 (1) 61-61 2021年1月4日

    DOI: 10.1038/s41467-020-20234-9  

  24. 自然免疫分子STINGのミクロオートファジー分解

    朽津芳彦, 高阿田有希, 篠島あゆみ, 向井康治朗, 田口友彦

    日本細胞生物学会大会(Web) 73rd 2021年

  25. ESCRT複合体の欠損はcGAS/STING経路に依存した炎症応答を引きおこす

    濱野栞里, 朽津芳彦, 向井康治朗, 田口友彦

    日本生化学会大会(Web) 94th 2021年

  26. リソソームベシクロファジーによるSTING自然免疫シグナルの収束

    朽津芳彦, 向井康治朗, 高阿田有希, 篠島あゆみ, 植村武文, 和栗聡

    日本生化学会大会(Web) 94th 2021年

  27. 自然免疫分子STINGの小胞体局在性維持機構とその破綻に起因する遺伝性自己炎症性疾患

    向井康治朗, 小川笑満里, 植松黎, 朽津芳彦, 植村武文, 和栗聡, 鈴木健裕, 堂前直, 新井洋由, SHUM Anthony K., 田口友彦

    日本生化学会大会(Web) 93rd 2020年

  28. 自然免疫分子STINGのリソソームによる分解機構

    田口友彦, 向井康治朗, 朽津芳彦, 高阿田有希

    日本生化学会大会(Web) 93rd 2020年

  29. リソソーム内pHを測定可能なレシオ型蛍光プローブの開発

    溝口舞, 花岡健二郎, 朽津芳彦, 福田光則, 浦野泰照, 浦野泰照, 浦野泰照

    日本薬学会年会要旨集(CD-ROM) 140th 2020年

    ISSN: 0918-9823

  30. 自然免疫分子STINGをモデルとしたリソソームへの新規輸送経路の解析

    朽津芳彦, 向井康治朗, 小川笑満里, 新井洋由, 田口友彦, 田口友彦

    次世代を担う若手ファーマ・バイオフォーラム講演要旨集 18th 2019年

  31. Rabファミリー遺伝子の網羅的ノックアウト上皮細胞の解析

    本間悠太, 木下理子, 朽津芳彦, WAWRO Paulina S., 丸橋総史郎, 小口舞, 石田森衛, 藤田尚信, 福田光則

    日本分子生物学会年会プログラム・要旨集(Web) 42nd 2019年

  32. グルタミン飢餓によりオートリソソームの成熟が促進される現象の発見

    朽津芳彦, 本間悠太, 藤田尚信, 福田光則

    日本生化学会大会(Web) 91st 2018年

  33. オートファジーを介した筋細胞の再構成機構

    藤田尚信, 朽津芳彦, AMY Kiger, 福田光則

    日本細胞生物学会大会(Web) 69th 2017年

  34. Rab7によるオートファジー制御機構の再評価

    朽津芳彦, 藤田尚信, 福田光則

    日本細胞生物学会大会(Web) 69th 2017年

  35. アミノ酸飢餓により誘導されるオートリソソームの成熟機構

    朽津芳彦, 藤田尚信, 福田光則

    日本生化学会大会(Web) 90th 2017年

  36. Theオートファジー 研究者たちの集大成が見える最新ビジュアルテキスト 第2章 オートファジーの分子機構 3.Rabによるオートファジー制御

    朽津芳彦, 藤田尚信, 福田光則

    実験医学 35 (15) 2017年

    ISSN: 0288-5514

  37. Rabによるオートファジー制御

    朽津芳彦, 藤田尚信, 福田光則

    実験医学増刊号「The オートファジー」 35 (15) 58-65 2017年

︎全件表示 ︎最初の5件までを表示

講演・口頭発表等 3

  1. Autolysosome maturation induced by glutamine starvation.

    Yoshihiko Kuchitsu, Mitsunori Fukuda

    Neoprotein biology – From synthesis to trafficking (Sendai, Japan) 2018年8月23日

  2. Discovery of glutamine-starvation induced autolysosome maturation.

    Yoshihiko Kuchitsu, Yuta Homma, Naonobu Fujita, Mitsunori Fukuda

    2018年8月2日

  3. Blockade of autophagic flux by Rab7 knockout depends on nutrient status in mammalian cells.

    Yoshihiko Kuchitsu, Naonobu Fujita, Mitsunori Fukuda

    2017年5月30日

共同研究・競争的資金等の研究課題 2

  1. STING小胞クラスターのミクロオートファジー分解機構

    朽津 芳彦

    2023年4月25日 ~ 2026年3月31日

  2. グルタミン飢餓により誘導される新規リソソーム活性調節機構の解明

    朽津 芳彦

    2019年4月25日 ~ 2022年3月31日

    詳細を見る 詳細を閉じる

    リソソームは酸性加水分解酵素を含むオルガネラで、エンドサイトーシスやオートファジーにより膜内に取り込まれた生体分子の分解に関与している。このため、リソソームの分解活性を適切に保つことは、細胞内の恒常性の維持に不可欠である。特に、オートファジーが亢進し、リソソームへ多くの基質が流れ込む栄養飢餓時には、リソソームの分解能も亢進していると考えられる。しかしながら、これまで飢餓によるリソソームの分解能の調節機構はほとんど分かっていない。低分子量Gタンパク質Rab7の欠損細胞の解析を通して、栄養飢餓により、リソソームの分解能が急速に亢進する現象を独自に見出した。本研究では、このRab7欠損細胞をモデル系に用いて、新規リソソームの活性調節機構の解明を目指す。前年度までに、栄養飢餓によりオートファジー経路の最終段階(オートリソソームの分解・再生過程)が促進されることを見出している。さらに、オートファジー経路だけでなく、エンドサイトーシス経路も栄養飢餓により促進されることを見出している。本年度は、その分子メカニズムにアプローチするため、リソソーム内腔の酸性化を制御するプロトンポンプ・V-ATPaseに着目した。V-ATPaseの活性は、細胞質中に存在するV1サブユニットとリソソーム膜に局在するV0サブユニットの複合体形成により制御される。そこで蛍光タンパク質を付加したV1、V0サブユニットを発現する細胞株の樹立に成功し、栄養条件、飢餓条件における複合体の形成能を評価できる実験系を構築した。来年度以降の解析によって、栄養条件に依存した複合体の形成能の変化について解析が進展するものと期待される。