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AIST-INDIA 機能性資源連携研究室

研究概要

我々は、細胞培養、生化学・分子生物学、バイオインフォマティクスなどを統合した手法を用い、ストレス、加齢、がんなどの生命現象の理解及びそれらに介入する独自技術の開発に取り組んでいます。
既存技術では不可能だった細胞機能の解析を実現し、ヒト正常細胞で厳密に制御される細胞分裂と増殖が、がん化により破綻するメカニズムに注目し研究を進めています。
このプロジェクトのために、インド国内の様々な研究機関との国際連携を行っており、学生や若手研究者育成のための様々なプログラムを推進しています。

AIST-INDIA 機能性資源連携研究室

研究課題

研究課題1:がん標的としてのモータリンとCARFの検証:ストレス及びがん生物学におけるその役割の分子的理解、および介入ツールと技術の開発
研究担当者:ワダワ レヌー、カウル スニル

我々が独自にクローニングした2つのタンパク質、モータリンとCARFは、がん細胞で過剰に発現することから、抗がん剤の新たな標的として注目されています。現在、それらのタンパク質について、以下のような検証を進めています。(i)ストレス、老化及びがん生物学における役割の解明、(ii)ストレス及びがん診断への有用性、(iii)ストレス及びがん介入のための阻害剤としての利用

AIST-INDIA機能性資源連携研究室2

研究課題

研究課題2:圧力駆動型生体模倣システムの開発と産業応用
研究担当者:杉浦 慎治

微細加工技術を利用して生理学性の高い培養環境を創出し、高次の細胞・臓器機能を発現可能な生体模倣システム(Microphysiological systems、MPS)の開発と産業応用を目指します。

AIST-INDIA機能性資源連携研究室3

研究課題

研究課題3:培養細胞を用いた新たな機能性物質評価系の開発とその応用
研究担当者:冨田 辰之介

天然資源等からの新規な機能性物質探索を行うために、バイオアッセイを中心に実験を進めています。培養細胞を用いて、生体リズムなどを評価するリアルタイムレポータアッセイを取り入れた新しい検出方法を開発しています。

AIST-INDIA機能性資源連携研究室4

研究課題

研究課題4:分子バイオメカニクスに基づく生命現象の動的原理の解明
研究担当者:中村史、山岸彩奈

直径200nmのナノニードルなど独自のナノ材料技術を駆使して、生命の精密かつ柔軟な動作原理を分子レベルで理解する研究を推進します。具体的には、細胞に極めてダメージの小さいナノニードル技術を用いた生細胞内での分子計測と分子操作、転移に関与する新規がんマーカーの機械的機能の解析とこれを標的とした診断および治療技術の開発などを目指して、研究を行っています。

AIST-INDIA機能性資源連携研究室5

研究課題

研究課題5:ヒト幹細胞を用いた脳神経機能の解析と評価系の開発
研究担当者:平野 和己

遺伝子発現制御(エピゲノム)やシグナル伝達制御(糖鎖)に関する知見を基盤に、神経・精神疾患の創薬に役立つ疾患モデルの開発と、薬剤や天然成分に関する効能・毒性評価系の構築を行っています。

AIST-INDIA機能性資源連携研究室6

研究課題

研究課題6:生体模倣システムの構築ならびにその応用
研究担当者:吉富 廉

臓器間相互作用などの生体現象が観測可能な生体模倣システムを構築し、機能性食品や医薬に有用な成分のスクリーニングを行います。また、ノンコーディングRNAの観点を含め、得られた成分の作用メカニズムの解明を進めています。

AIST-INDIA機能性資源連携研究室7

グループの構成メンバー

顔写真 所属・役職および名前 専門分野 その他、etc
ワダワ レヌー連携研究室長の写真 連携研究室長 ワダワ レヌー
  • がん発生におけるモータリンの分子機構解析
  • アシュワガンダによるがんの抑制と治療
  • ストレス改善の為のCARFメカニズム解析
杉浦副連携研究室長の写真 副連携研究室長 杉浦 慎治
  • Microphysiological systemsの開発と創薬への応用
  • マイクロプロセを用いた微小培養環境制御
  • 光分解性ゲルを用いた細胞分離
冨田主任研究員の写真 主任研究員 冨田 辰之介
  • 時計遺伝子概日リズム発振機構に関する研究
  • 新たなレポータ発現細胞の開発とその応用研究
  • 新しい細胞培養方法の開発
平野主任研究員の写真 主任研究員 平野 和己
  • ヒト幹細胞を用いた脳神経・血管機能の評価系の開発
  • 神経発生・疾患発症・血管老化における「糖鎖」「エピゲノム」の役割解明
  • ヒト脳オルガノイドを用いた神経疾患治療に資する創薬探索支援技術の開発
山岸主任研究員の写真 主任研究員 山岸 彩奈
  • がん細胞の転移に関わる中間径フィラメントの機能解析
  • がん細胞の弾性率と転移性の関係解析
  • イオン排出能を指標としたがん浸潤性評価方法の開発
吉富研究員の写真 研究員 吉富 廉
  • 新規Microphysiological systemsの開発ならびにその検証
  • 臓器間相互作用の解明
  • 機能性分子の探索ならびにそのメカニズム解明
 
中村連携研究室付の写真 連携研究室付(兼務) 中村 史
  • 中間径フィラメント捕縛による転写制御機構の解明
  • ナノニードルを用いた安全・高効率物質導入技術の開発
  • 悪性がん細胞の機械的特性に着目した浸潤性制御
カウル スニル招聘研究員の写真 招聘研究員 カウル スニル
  • がん発生におけるモータリンの分子機構解析
  • アシュワガンダによるがんの抑制と治療
  • ストレス改善の為のCARFメカニズム解析

業績リスト

  • Kumar, V; Sari, AN; Gupta, D; Ishida, Y; Terao, K; Kaul, SC; Vrati, S; Sundar, D; Wadhwa, R.
    Anti-COVID-19 Potential of Withaferin-A and Caffeic Acid Phenethyl Ester.
    CURR TOP MED CHEM. 2024 Jan 24. doi: 10.2174/0115680266280720231221100004
  • Kumar, V; Meidinna, HN; Kaul, SC; Gupta, D; Ishida, Y; Terao, K; Vrati, S; Sundar, D; Wadhwa, R.
    Molecular insights to the anti-COVID-19 potential of α-, β- and γ-cyclodextrins.
    J BIOMOL STRUCT DYN. 2023 Dec 20:1-11. doi: 10.1080/07391102.2023.2294385
  • Zhang, HY; Zhang, ZY; Kaul, SC; Wadhawa, R.
    Antistress activity of some phytochemicals: screening, identification, validation, and potential applications.
    ANNALS OF NUTRITION AND METABOLISM. 2023;79 (suppl 1) 1087-1087; AUG. doi: 10.1159/000530786
  • Viswan, A; Yoshikawa, C; Yamagishi, A; Furuhata, Y; Kato, Y; Yamazaki, T; Nakamura, C.
    Efficient genome editing by controlled release of Cas9 ribonucleoprotein in plant cytosol using polymer-modified microneedle array.
    BIOCHEM BIOPHYS RES COMMUN. 2023 Oct 29;686:149179. doi: 10.1016/j.bbrc.2023.149179
  • Miyazawa, K; Penedo, M; Furusho, H; Ichikawa, T; Alam, MS; Miyata, K; Nakamura, C; Fukuma, T.
    Nanoendoscopy-AFM for Visualizing Intracellular Nanostructures of Living Cells.
    MICROSC MICROANAL. 2023 Jul 22;29(Supplement_1):782. doi: 10.1093/micmic/ozad067.387
  • Ichikawa, T; Alam, MS; Penedo, M; Matsumoto, K; Fujita, S; Miyazawa, K; Furusho, H; Miyata, K; Nakamura, C; Fukuma, T.
    Protocol for live imaging of intracellular nanoscale structures using atomic force microscopy with nanoneedle probes.
    STAR PROTOC. 2023 Jul 22;4(3):102468. doi: 10.1016/j.xpro.2023.102468
  • Kumar, V; Dhanjal, JK; Sari, AN; Khurana, M; Kaul, SC; Wadhwa, R; Sundar, D.
    Effect of Withaferin-A, Withanone, and Caffeic Acid Phenethyl Ester on DNA Methyltransferases: Potential in Epigenetic Cancer Therapy.
    CURR TOP MED CHEM. 2023 Jul 26. doi: 10.2174/1568026623666230726105017
  • Kalra, RS; Chaudhary, A; Omar, A; Li, X; Khurana, M; Kaul, SC, Wadhwa, R.
    Stress-induced changes in CARF expression serve as a quantitative predictive measure of cell proliferation fate.
    EXP CELL RES. 2023 Jun 3:113669. doi: 10.1016/j.yexcr.2023.113669
  • Huifu, H; Shefrin, S; Yang, S; Zhang, Z; Kaul, SC; Sundar, D; Wadhwa, R.
    Cucurbitacin-B inhibits cancer cell migration by targeting mortalin and HDM2: computational and in vitro experimental evidence.
    J BIOMOL STRUCT DYN. 2023 May 2:1-10. doi: 10.1080/07391102.2023.2206914
  • Zhang, H; Wang, J; Prakash, J; Zhang, Z; Kaul, SC; Wadhwa, R.
    Three-way Cell-based Screening of Antistress Compounds: Identification, Validation, and Relevance to Old-age Related Pathologies.
    J GERONTOL A BIOL SCI MED SCI. 2023 Apr 15:glad103. doi: 10.1093/gerona/glad103
  • Sugiura, S; Yamahira, S; Tamura, M; Shin, K; Shibuta, M; Satoh, T; Matsuzawa, Y; Fujii, G; Yanagawa, F; Mutoh, M; Yanagisawa, M; Kato, R; Matsui, H.
    Automated cell isolation from photodegradable hydrogel based on fluorescence image analysis.
    BIOTECHNOL BIOENG. 2023 Mar 15. doi: 10.1002/bit.28375
  • Kumar, V; Sari, AN; Meidinna, HN; Kaul, A; Basu, B; Ishida, Y; Terao, K; Kaul, SC; Vrati, S; Sundar, D; Wadhwa, R.
    Computational and experimental evidence of the anti-COVID-19 potential of honeybee propolis ingredients, caffeic acid phenethyl ester and artepillin c.
    PHYTOTHER RES. 2023 Feb 9. doi: 10.1002/ptr.7717
  • Huang, T; Sato, Y; Kuramochi, A; Ohba, Y; Sano, M; Miyagishi, M; Tateno, H; Wadhwa, R; Kawasaki, K; Uchida, T; Ekdahl, KN; Nilsson, B; Chung, UI; Teramura, Y.
    Surface modulation of extracellular vesicles with cell-penetrating peptide-conjugated lipids for improvement of intracellular delivery to endothelial cells.
    REGEN THER. 2023 Jan 11;22:90-98. doi: 10.1016/j.reth.2022.12.007
  • Yu, Y; Zhang, GX; Li, ZP; Wang, J; Liu, Y; Bhardwaj, R; Wadhwa, R; Nagao, Y; Shichiri, M; Gao, R.
    Designed fabrication of active tumor targeting covalent organic framework nanotherapeutics via a simple post-synthetic strategy.
    NANO RESEARCH. 03 January 2023. doi: 10.1007/s12274-022-5265-7
  • Limjanthong, N; Tohbaru, Y; Okamoto, T; Okajima, R; Kusama, Y; Kojima, H; Fujimura, A; Miyazaki, T; Kanamori, T; Sugiura, S; Ohnuma, K.
    Gravity-driven microfluidic device placed on a slow-tilting table enables constant unidirectional perfusion culture of human induced pluripotent stem cells.
    J BIOSCI BIOENG. 2022 Dec 29:S1389-1723(22)00346-2. doi: 10.1016/j.jbiosc.2022.11.007
  • Sugiura, S; Shin, K; Kanamori, T.
    Perfusion culture of endothelial cells under shear stress on microporous membrane in a pressure-driven microphysiological system.
    J BIOSCI BIOENG. 2022 Oct 14:S1389-1723(22)00258-4. doi: 10.1016/j.jbiosc.2022.09.005
  • Shefrin, S; Sari, AN; Kumar, V; Zhang, H; Meidinna, HN; Kaul, SC; Wadhwa, R; Sundar, D.
    Comparative computational and experimental analyses of some natural small molecules to restore transcriptional activation function of p53 in cancer cells harbouring wild type and p53(Ser46) mutant.
    CURR RES STRUCT BIOL. 2022 Sep 13;4:320-331. doi: 10.1016/j.crstbi.2022.09.002
  • Meidinna, HN; Shefrin, S; Sari, AN; Zhang, H; Dhanjal, JK; Kaul, SC; Sundar, D; Wadhwa, R.
    Identification of a new member of Mortaparib class of inhibitors that target mortalin and PARP1.
    FRONT CELL DEV BIOL. 2022 Sep 12;10:918970. doi: 10.3389/fcell.2022.918970
  • Sugiura, S; Satoh, T; Shin, K; Onuki-Nagasaki, R; Kanamori, T.
    Perfusion culture of multi-layered HepG2 hepatocellular carcinoma cells in a pressure-driven microphysiological system.
    J BIOSCI BIOENG. 2022 Aug 11:S1389-1723(22)00189-X. doi: 10.1016/j.jbiosc.2022.07.001
  • Tomita, T; Kawano, Y; Kassai, M; Onda, H; Nakajima, Y; Miyazaki, K.
    Hydroxy-β-sanshool isolated from Zanthoxylum piperitum (Japanese pepper) shortens the period of the circadian clock.
    FOOD FUNCT. 2022 Aug 12. doi: 10.1039/d2fo01036d
  • Yamagishi, A; Mizusawa, M; Uchida, K; Iijima, M; Kuroda, S; Fukazawa, K; Ishihara, K; Nakamura, C.
    Mechanical detection of interactions between proteins related to intermediate filament and transcriptional regulation in living cells.
    BIOSENS BIOELECTRON. 2022 Aug 6;216:114603. doi: 10.1016/j.bios.2022.114603
  • Yoon, AR; Wadhwa, R; Kaul, SC; Yun, CO.
    Why is Mortalin a Potential Therapeutic Target for Cancer.
    FRONT CELL DEV BIOL. 2022 Jun 29;10:914540. doi: 10.3389/fcell.2022.914540
  • Viswan, A; Yamagishi, A; Hoshi, M; Furuhata, Y; Kato, Y; Makimoto, N; Takeshita, T; Kobayashi, T; Iwata, F; Kimura, M; Yoshizumi, T; Nakamura, C.
    Microneedle Array-Assisted, Direct Delivery of Genome-Editing Proteins Into Plant Tissue.
    FRONT PLANT SCI. 2022 Jun 24;13:878059. doi: 10.3389/fpls.2022.878059
  • Nagasaki, A; Katoh, K; Hoshi, M; Doi, M; Nakamura, C; Uyeda, TQP.
    Characterization of phalloidin-negative nuclear actin filaments in U2OS cells expressing cytoplasmic actin-EGFP.
    GENES TO CELLS. 2022 Feb 23. doi: 10.1111/gtc.12930
  • Radhakrishnan, N; Kaul, SC; Wadhwa, R; Sundar, D.
    Phosphatidylserine Exposed Lipid Bilayer Models for Understanding Cancer Cell Selectivity of Natural Compounds: A Molecular Dynamics Simulation Study.
    MEMBRANES 12 (1);doi: 10.3390/membranes12010064 JAN
  • Malik, V; Radhakrishnan, N; Kaul, SC; Wadhwa, R; Sundar, D.
    Computational Identification of BCR-ABL Oncogenic Signaling as a Candidate Target of Withaferin A and Withanone.
    BIOMOLECULES 12 (2);doi: 10.3390/biom12020212 FEB
  • Sari, AN; Dhanjal, JK; Elwakeel, A; Kumar, V; Meidinna, HN; Zhang, H; Ishida, Y; Terao, K; Sundar, D; Kaul, SC; Wadhwa, R.
    A Low Dose Combination of Withaferin A and Caffeic Acid Phenethyl Ester Possesses Anti-Metastatic Potential In Vitro: Molecular Targets and Mechanisms.
    CANCERS (Basel). 2022 Feb 3;14(3):787. doi: 10.3390/cancers14030787
  • Penedo, M; Miyazawa, K; Okano, N; Furusho, H; Ichikawa, T; Alam, MS; Miyata, K; Nakamura, C; Fukuma, T.
    Visualizing intracellular nanostructures of living cells by nanoendoscopy-AFM.
    SCI ADV. 2021 Dec 24;7(52):eabj4990. doi: 10.1126/sciadv.abj4990. Epub 2021 Dec 22
  • Malik, V; Kumar, V; Kaul, SC; Wadhwa, R; Sundar, D.
    Potential of Withaferin-A, Withanone and Caffeic Acid Phenethyl ester as ATP-competitive inhibitors of BRAF: A bioinformatics study.
    CURR RES STRUCT BIOL. 2021 Nov 18;3:301-311. doi: 10.1016/j.crstbi.2021.11.004
  • Kaul, A; Kuthethur, R; Ishida, Y; Terao, K; Wadhwa, R; Kaul, SC.
    Molecular Insights into the Antistress Potentials of Brazilian Green Propolis Extract and Its Constituent Artepillin C.
    MOLECULES. 2021 Dec 23;27(1):80. doi: 10.3390/molecules27010080
  • Hori, K; Yoshimoto, S; Yoshino, T; Zako, T; Hirao, G; Fujita, S; Nakamura, C; Yamagishi, A; Kamiya, N.
    Recent advances in research on biointerfaces: From cell surfaces to artificial interfaces.
    J BIOSCI BIOENG. 2022 Jan 5:S1389-1723(21)00331-5. doi: 10.1016/j.jbiosc.2021.12.004
  • Radhakrishnan, N; Dhanjal, JK; Sari, AN; Ishida, Y; Terao, K; Kaul, SC; Sundar, D; Wadhwa, R.
    Caffeic acid phenethyl ester (CAPE) confers wild type p53 function in p53(Y220C) mutant: bioinformatics and experimental evidence.
    DISCOVER ONCOLOGY 12 (1);doi: 10.1007/s12672-021-00461-2 DEC 20
  • Wang, J; Zhang, H; Kaul, A; Li, K; Priyandoko, D; Kaul, SC; Wadhwa, R.
    Effect of Ashwagandha Withanolides on Muscle Cell Differentiation.
    BIOMOLECULES. 2021 Oct 4;11(10):1454. doi: 10.3390/biom11101454
  • Kumar, V; Sari, AN; Meidinna, HN; Dhanjal, JK; Subramani, C; Basu, B; Kaul, SC; Vrati, S; Sundar, D; Wadhwa, R.
    Computational and in vitro experimental analyses of the anti-COVID-19 potential of Mortaparib and MortaparibPlus.
    BIOSCI REP. 2021 Oct 29;41(10):BSR20212156. doi: 10.1042/BSR20212156
  • Bhargava, P; Mahanta, D; Kaul, A; Ishida, Y; Terao, K; Wadhwa, R; Kaul, SC.
    Experimental Evidence for Therapeutic Potentials of Propolis.
    NUTRIENTS. 2021 Jul 24;13(8):2528. doi: 10.3390/nu13082528
  • Kumar, A; Konar, A; Garg, S; Kaul, SC; Wadhwa, R.
    Experimental evidence and mechanism of action of some popular neuro-nutraceutical herbs.
    NEUROCHEMISTRY INTERNATIONAL 149; doi: 10.1016/j.neuint.2021.105124
  • Kaul, Z; Cheung, CTY; Bhargava, P; Sari, AN ; Yu, Y; He, HF; Bid, H; Henson, JD; Groden, J; Reddel, RR; Kaul, SC; Wadhwa, R.
    Functional characterization of miR-708 microRNA in telomerase positive and negative human cancer cells.
    SCI REP. 2021 Aug 23;11(1):17052. doi: 10.1038/s41598-021-96096-y
  • Elwakeel, A; Sari, AN; Dhanjal, JK; Meidinna, HN; Sundar, D; Kaul, SC; Wadhwa, R.
    Mutant p53(L194F) Harboring Luminal-A Breast Cancer Cells Are Refractory to Apoptosis and Cell Cycle Arrest in Response to Mortaparib(Plus), a Multimodal Small Molecule Inhibitor.
    CANCERS (Basel). 2021 Jun 18;13(12):3043. doi: 10.3390/cancers13123043
  • Yamagishi, A; Ito, F; Nakamura, C.
    Study on Cancer Cell Invasiveness via Application of Mechanical Force to Induce Chloride Ion Efflux.
    ANAL CHEM. 2021 Jun 21. doi: 10.1021/acs.analchem.1c01589
  • Tomita, T; Wadhwa, R; Kaul, SC; Kurita, R; Kojima, N; Onishi, Y.
    Withanolide Derivative 2,3-Dihydro-3β-methoxy Withaferin-A Modulates the Circadian Clock via Interaction with RAR-Related Orphan Receptor α (RORa.
    J NAT PROD. 2021 Jun 21. doi: 10.1021/acs.jnatprod.0c01276
  • Dhanjal, JK; Kumar, V; Garg, S; Subramani, C; Agarwal, S; Wang, J; Zhang, H; Kaul, A; Kalra, RS; Kaul, SC; Vrati, S; Sundar, D; Wadhwa, R
    Molecular mechanism of anti-SARS-CoV2 activity of Ashwagandha-derived withanolides
    Int J Biol Macromol. 2021 Jun 9:S0141-8130(21)01215-0. doi: 10.1016/j.ijbiomac.2021.06.015
  • Li, X; Wang, J; Zhang, H; Xiao, L; Lei, Z; Kaul, SC; Wadhwa, R; Zhang, Z.
    Low Dose of Fluoride in the Culture Medium of Cordyceps militaris Promotes Its Growth and Enhances Bioactives with Antioxidant and Anticancer Properties.
    J FUNGI (Basel). 2021 Apr 28;7(5):342. doi: 10.3390/jof7050342
  • Penedo, M; Shirokawa, T; Alam, MS; Miyazawa, K; Ichikawa, T; Okano, N; Furusho, H; Nakamura, C; Fukuma, T.
    Cell penetration efficiency analysis of different atomic force microscopy nanoneedles into living cells.
    SCI REP. 2021 Apr 8;11(1):7756. doi: 10.1038/s41598-021-87319-3
  • Kalra, RS; Kumar, V; Dhanjal, JK; Garg, S; Li, X; Kaul, SC; Sundar, D; Wadhwa, R.
    COVID19-inhibitory activity of withanolides involves targeting of the host cell surface receptor ACE2: insights from computational and biochemical assays.
    J BIOMOL STRUCT DYN. 2021 Apr 2:1-14. doi: 10.1080/07391102.2021.1902858
  • Sari AN, Elwakeel A, Dhanjal JK,Kumar V, Sundar D, Kaul SC, Wadhwa R
    Identification and Characterization of Mortaparib(Plus)-A Novel Triazole Derivative That Targets Mortalin-p53 Interaction and Inhibits Cancer-Cell Proliferation by Wild-Type p53-Dependent and -Independent Mechanisms.
    CANCERS (Basel). 2021 Feb 17;13(4):835. doi: 10.3390/cancers13040835
  • Malik V, Kumar V, Kaul SC, Wadhwa R, Sundar D
    Computational Insights into the Potential of Withaferin-A, Withanone and Caffeic Acid Phenethyl Ester for Treatment of Aberrant-EGFR Driven Lung Cancers.
    BIOMOLECULES. 2021 Jan 26;11(2):160. doi: 10.3390/biom11020160
  • Maejima A, Ishibashi K, Kim H, Kumagai I, Asano R
    Evaluation of intercellular cross-linking abilities correlated with cytotoxicities of bispecific antibodies with domain rearrangements using AFM force-sensing.
    BIOSENS BIOELECTRON. 2021 Jan 27;178:113037. doi: 10.1016/j.bios.2021.113037
  • Wadhwa R, Yadav NS, Katiyar SP, Yaguchi T, Lee C, Ahn H, Yun CO, Kaul SC, Sundar D
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