Updated on 2026/07/03

Information

 

写真a

 
IMAI TAKASHI
 
Organization
Faculty of Medical Sciences Department of Clinical Medicine Assistant Professor
School of Medicine Department of Medicine(Concurrent)
Title
Assistant Professor
External link

Research Areas

  • Life Science / Cell biology

  • Life Science / Embryonic medicine and pediatrics

  • Life Science / Immunology

Degree

  • 博士(医学) ( 2019.3 Kyushu University )

Research History

  •  Faculty of Medical Sciences Department of Clinical Medicine  Assistant Professor 

    2025.4 - Present

Education

  • Kyushu University   医学部   医学科

    2003.4 - 2009.3

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    Country:Japan

Research Interests・Research Keywords

  • Research theme: Evaluation of immune responses in TINU syndrome

    Keyword: TINU syndrome

    Research period: 2025.4

Awards

  • Young Investigator Award

    2025.2   日本免疫不全・自己炎症学会  

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    Award type:Award from Japanese society, conference, symposium, etc. 

  • 優秀論文賞

    2021.11   九州小児科学会  

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    Award type:Award from Japanese society, conference, symposium, etc. 

  • 第36回井上研究奨励賞

    2020.2   井上科学振興財団  

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    Award type:Award from publisher, newspaper, foundation, etc. 

  • 最優秀論文賞

    2019.11   九州小児科学会  

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    Award type:Award from Japanese society, conference, symposium, etc. 

  • 優秀演題賞

    2019.4   日本感染症学会  

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    Award type:Award from Japanese society, conference, symposium, etc. 

  • Young Investigator Award

    2018.11   Asian Congress of Pediatric Infectious Diseases  

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    Award type:Award from international society, conference, symposium, etc. 

  • ベストプレゼンテーション賞

    2017.12   日本免疫学会  

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    Award type:Award from Japanese society, conference, symposium, etc. 

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Papers

  • The RIPK1 death domain restrains ZBP1- and TRIF-mediated cell death and inflammation. Reviewed International coauthorship International journal

    Takashi Imai, Juan Lin, Göksu Gökberk Kaya, Eunjin Ju, Vangelis Kondylis, Konstantinos Kelepouras, Gianmaria Liccardi, Chun Kim, Manolis Pasparakis

    Immunity   2024.5

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    Authorship:Lead author   Language:English   Publishing type:Research paper (scientific journal)  

    RIPK1 is a multi-functional kinase that regulates cell death and inflammation and has been implicated in the pathogenesis of inflammatory diseases. RIPK1 acts in a kinase-dependent and kinase-independent manner to promote or suppress apoptosis and necroptosis, but the underlying mechanisms remain poorly understood. Here, we show that a mutation (R588E) disrupting the RIPK1 death domain (DD) caused perinatal lethality induced by ZBP1-mediated necroptosis. Additionally, these mice developed postnatal inflammatory pathology, which was mediated by necroptosis-independent TNFR1, TRADD, and TRIF signaling, partially requiring RIPK3. Our biochemical mechanistic studies revealed that ZBP1- and TRIF-mediated activation of RIPK3 required RIPK1 kinase activity in wild-type cells but not in Ripk1R588E/R588E cells, suggesting that DD-dependent oligomerization of RIPK1 and its interaction with FADD determine the mechanisms of RIPK3 activation by ZBP1 and TRIF. Collectively, these findings revealed a critical physiological role of DD-dependent RIPK1 signaling that is important for the regulation of tissue homeostasis and inflammation.

    DOI: 10.1016/j.immuni.2024.04.016

    PubMed

  • Smooth muscle cell specific NEMO deficiency inhibits atherosclerosis in ApoE-/- mice. Reviewed International coauthorship International journal

    Takashi Imai, Trieu-My Van, Manolis Pasparakis, Apostolos Polykratis

    Scientific reports   12 ( 1 )   12538 - 12538   2022.7

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    Authorship:Lead author   Language:English   Publishing type:Research paper (scientific journal)  

    The development of atherosclerotic plaques is the result of a chronic inflammatory response coordinated by stromal and immune cellular components of the vascular wall. While endothelial cells and leukocytes are well-recognised mediators of inflammation in atherosclerosis, the role of smooth muscle cells (SMCs) remains incompletely understood. Here we aimed to address the role of canonical NF-κB signalling in SMCs in the development of atherosclerosis. We investigated the role of NF-κB signalling in SMCs in atherosclerosis by employing SMC-specific ablation of NEMO, an IKK complex subunit that is essential for canonical NF-κB activation, in ApoE-/- mice. We show that SMC-specific ablation of NEMO (NEMOSMCiKO) inhibited high fat diet induced atherosclerosis in ApoE-/- mice. NEMOSMCiKO/ApoE-/- mice developed less and smaller atherosclerotic plaques, which contained fewer macrophages, decreased numbers of apoptotic cells and smaller necrotic areas and showed reduced inflammation compared to the plaques of ApoE-/- mice. In addition, the plaques of NEMOSMCiKO/ApoE-/- mice showed higher expression of α-SMA and lower expression of the transcriptional factor KLF4 compared to those of ApoE-/- mice. Consistently, in vitro, NEMO-deficient SMCs exhibited reduced proliferation and migration, as well as decreased KLF4 expression and lower production of IL-6 and MCP-1 upon inflammatory stimulus (TNF or LPS) compared to NEMO-expressing SMCs. In conclusion, NEMO-dependent activation of NF-κB signalling in SMCs critically contributes to the pathogenesis of atherosclerosis by regulating SMC proliferation, migration and phenotype switching in response to inflammatory stimuli.

    DOI: 10.1038/s41598-022-16737-8

    PubMed

  • Vacuolar sterol β-glucosidase EGCrP2/Sgl1 deficiency in Cryptococcus neoformans: Dysfunctional autophagy and Mincle-dependent immune activation as targets of novel antifungal strategies Reviewed

    Watanabe T., Nagai M., Ishibashi Y., Iwasaki M., Mizoguchi M., Nagata M., Imai T., Takato K., Imamura A., Kakuta Y., Teramoto T., Tani M., Matsuda J., Ishida H., Yamasaki S., Okino N., Ito M.

    Plos Pathogens   21 ( 4 )   2025.4   ISSN:15537366

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    Language:English   Publishing type:Research paper (scientific journal)   Publisher:Plos Pathogens  

    Cryptococcus neoformans (Cn) is a fungal pathogen responsible for cryptococcal meningitis, which accounts for 15% of AIDS-related deaths. Recent studies have shown that the absence of sterol β-glucosidase (EGCrP2, also known as Sgl1) in Cn significantly attenuates its virulence in a mouse infection model. However, the mechanisms underlying this virulence attenuation remain unclear. In this study, we observed a significant increase in dead cells after 3 days of culture of SGL1-deficient Cn (sgl1Δ, KO) at 37°C, compared with wild-type (WT) and SGL1-reconstituted Cn (sgl1Δ::SGL1, RE). qPCR analysis of WT, KO, and RE strains indicated that autophagy-related genes (ATGs) were significantly downregulated in KO strain. Atg8-dependent GFP translocation to the vacuole was significantly delayed in KO strain under starvation conditions. This autophagy dysfunction was identified as the primary cause of the increased cell death observed in KO strain under nitrogen starvation conditions at 37°C. EGCrP2/Sgl1 is predominantly localized in the vacuoles of Cn, and its deletion results in the accumulation of not only ergosterol β-glucoside (EG), as previously reported, but also acylated EGs (AEGs). AEGs were much more potent than EG in activating the C-type lectin receptor Mincle in mice, rats, and humans. AEGs were released from KO strain via extracellular vesicles (EVs). Chemically synthesized 18:1-EG and EVs derived from KO strain, but not WT or RE strains, enhanced cytokine production in murine and human dendritic cells. AEG-dependent cytokine production was markedly reduced in dendritic cells from Mincle-deficient mice, and the number of KO strain in lung tissue from Mincle-deficient mice was substantially higher than wild-type mice on day 3 after infection. Intranasal administration of acylated sitosterol β-glucoside increased Mincle expression and cytokine production and reduced the Cn burden in lung tissue of Cn-infected mice. These findings suggest that autophagy dysfunction in KO strain and the host innate immune response via the AEG-dependent Mincle activation are critical in reducing Cn virulence in mice.

    DOI: 10.1371/journal.ppat.1013089

    Scopus

  • The immunoreactive signature of monocyte-derived dendritic cells from patients with Down syndrome Reviewed

    Nakashima K., Imai T., Shiraishi A., Unose R., Goto H., Nagatomo Y., Kojima-Ishii K., Mushimoto Y., Nishiyama K., Yamamura K., Nagata H., Ishimura M., Kusuhara K., Koga Y., Sakai Y., Ohga S.

    Clinical and Experimental Immunology   217 ( 3 )   291 - 299   2024.9   ISSN:00099104

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    Language:English   Publisher:Clinical and Experimental Immunology  

    The clinical spectrum of Down syndrome (DS) ranges from congenital malformations to premature aging and early-onset senescence. Excessive immunoreactivity and oxidative stress are thought to accelerate the pace of aging in DS patients; however, the immunological profile remains elusive. We investigated whether peripheral blood monocyte-derived dendritic cells (MoDCs) in DS patients respond to lipopolysaccharide (LPS) distinctly from non-DS control MoDCs. Eighteen DS patients (age 2–47 years, 12 males) and 22 controls (age 4–40 years, 15 males) were enrolled. CD14-positive monocytes were immunopurified and cultured for 7 days in the presence of granulocyte-macrophage colony-stimulating factor and IL-4, yielding MoDCs in vitro. After the LPS-stimulation for 48 hours from days 7 to 9, culture supernatant cytokines were measured by multiplex cytokine bead assays, and bulk-prepared RNA from the cells was used for transcriptomic analyses. MoDCs from DS patients produced cytokines/chemokines (IL-6, IL-8, TNF-α, MCP-1, and IP-10) at significantly higher levels than those from controls in response to LPS. RNA sequencing revealed that DS-derived MoDCs differentially expressed 137 genes (74 upregulated and 63 downregulated) compared with controls. A gene enrichment analysis identified 5 genes associated with Toll-like receptor signaling (KEGG: hsa04620, P = 0.00731) and oxidative phosphorylation (hsa00190, P = 0.0173) pathways. MoDCs obtained from DS patients showed higher cytokine or chemokine responses to LPS than did control MoDCs. Gene expression profiles suggest that hyperactive Toll-like receptor and mitochondrial oxidative phosphorylation pathways configure the immunoreactive signature of MoDCs in DS patients.

    DOI: 10.1093/cei/uxae048

    Scopus

Presentations

  • The RIPK1 death domain restrains ZBP1- and TRIF-mediated cell death and inflammation International coauthorship International conference

    Takashi Imai

    7th Toll Conference  2024.4 

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    Event date: 2024.4

    Language:English   Presentation type:Poster presentation  

    Venue:Rotterdam, the Netherlands   Country:Netherlands  

Professional Memberships

  • 日本小児科学会

    2009

Committee Memberships

  • 日本小児感染症学会   代議員   Domestic

    2025.4   

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    Committee type:Academic society

Research Projects

  • 紫斑病性腎炎における細胞傷害性T細胞とナチュラルキラー細胞の関与の解明

    2020.4 - 2026.3

    科学研究費助成事業若手研究 

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    Authorship:Principal investigator  Grant type:Scientific research funding

Travel Abroad

  • 2020.10 - 2024.9

    Staying countory name 1:Germany   Staying institution name 1:ケルン大学

Specialized clinical area

  • Biology / Medicine, Dentistry and Pharmacy / Internal Medicine / Pediatrics

Clinician qualification

  • Specialist

    Japan Pediatric Society

Year of medical license acquisition

  • 2009