Search Results - "Suzuki, Hiroshi"

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  1. 1

    MicroRNA Control of TGF-β Signaling by Suzuki, Hiroshi I

    “…Transcriptional and post-transcriptional regulation shapes the transcriptome and proteome changes induced by various cellular signaling cascades. MicroRNAs…”
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    TGF-β Signaling in Cellular Senescence and Aging-Related Pathology by Tominaga, Kana, Suzuki, Hiroshi I

    “…Aging is broadly defined as the functional decline that occurs in all body systems. The accumulation of senescent cells is considered a hallmark of aging and…”
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    Systems and Synthetic microRNA Biology: From Biogenesis to Disease Pathogenesis by Matsuyama, Hironori, Suzuki, Hiroshi I

    “…MicroRNAs (miRNAs) are approximately 22-nucleotide-long, small non-coding RNAs that post-transcriptionally regulate gene expression. The biogenesis of miRNAs…”
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    Biomolecular condensates in cancer biology by Suzuki, Hiroshi I., Onimaru, Koh

    Published in Cancer science (01-02-2022)
    “…Understanding the characteristics of cancer cells is essential for the development of improved diagnosis and therapeutics. From a gene regulation perspective,…”
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    Super-Enhancer-Mediated RNA Processing Revealed by Integrative MicroRNA Network Analysis by Suzuki, Hiroshi I., Young, Richard A., Sharp, Phillip A.

    Published in Cell (09-03-2017)
    “…Super-enhancers are an emerging subclass of regulatory regions controlling cell identity and disease genes. However, their biological function and impact on…”
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    Rotavirus Replication: Gaps of Knowledge on Virus Entry and Morphogenesis by Suzuki, Hiroshi

    “…In 1973, rotaviruses A (RVAs) were discovered as major causative agents of acute gastroenteritis in infants and young children worldwide. The infectious RV…”
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    Modulation of microRNA processing by p53 by Suzuki, Hiroshi I, Iwamoto, Takashi, Miyazono, Kohei, Yamagata, Kaoru, Sugimoto, Koichi, Kato, Shigeaki

    Published in Nature (London) (23-07-2009)
    “…MicroRNAs (miRNAs) have emerged as key post-transcriptional regulators of gene expression, involved in diverse physiological and pathological processes…”
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    Inhibitors of Human ABCG2: From Technical Background to Recent Updates With Clinical Implications by Toyoda, Yu, Takada, Tappei, Suzuki, Hiroshi

    Published in Frontiers in pharmacology (05-03-2019)
    “…The ATP-binding cassette transporter G2 (ABCG2; also known as breast cancer resistance protein, BCRP) has been suggested to be involved in clinical multidrug…”
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    YAP and TAZ modulate cell phenotype in a subset of small cell lung cancer by Horie, Masafumi, Saito, Akira, Ohshima, Mitsuhiro, Suzuki, Hiroshi I., Nagase, Takahide

    Published in Cancer science (01-12-2016)
    “…Small cell lung cancer (SCLC) is a highly aggressive and metastatic malignancy that shows rapid development of chemoresistance and a high rate of recurrence…”
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    Chd4 choreographs self-antigen expression for central immune tolerance by Tomofuji, Yoshihiko, Takaba, Hiroyuki, Suzuki, Hiroshi I., Benlaribi, Rayene, Martinez, Cristian David Peña, Abe, Yoshihiro, Morishita, Yasuyuki, Okamura, Tadashi, Taguchi, Akashi, Kodama, Tatsuhiko, Takayanagi, Hiroshi

    Published in Nature immunology (01-08-2020)
    “…Autoreactive T cells are eliminated in the thymus to prevent autoimmunity by promiscuous expression of tissue-restricted self-antigens in medullary thymic…”
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    Model for the Architecture of Claudin-Based Paracellular Ion Channels through Tight Junctions by Suzuki, Hiroshi, Tani, Kazutoshi, Tamura, Atsushi, Tsukita, Sachiko, Fujiyoshi, Yoshinori

    Published in Journal of molecular biology (30-01-2015)
    “…Claudins are main cell–cell adhesion molecules of tight junctions (TJs) between cells in epithelial sheets that form tight barriers that separate the apical…”
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    Can molecular dynamics facilitate the design of protein–protein-interaction inhibitors? by Honma, Masashi, Suzuki, Hiroshi

    Published in Nature reviews. Rheumatology (01-01-2023)
    “…The design of effective inhibitors of protein–protein interactions is challenging. In a new study, thermal fluctuation of protein structure was simulated to…”
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    MCPIP1 Ribonuclease Antagonizes Dicer and Terminates MicroRNA Biogenesis through Precursor MicroRNA Degradation by Suzuki, Hiroshi I., Arase, Mayu, Matsuyama, Hironori, Choi, Young Lim, Ueno, Toshihide, Mano, Hiroyuki, Sugimoto, Koichi, Miyazono, Kohei

    Published in Molecular cell (04-11-2011)
    “…MicroRNAs (miRNAs) are versatile regulators of gene expression and undergo complex maturation processes. However, the mechanism(s) stabilizing or reducing…”
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    RANKL as a key figure in bridging between the bone and immune system: Its physiological functions and potential as a pharmacological target by Honma, Masashi, Ikebuchi, Yuki, Suzuki, Hiroshi

    Published in Pharmacology & therapeutics (Oxford) (01-02-2021)
    “…RANKL is a key molecule that bridges the bone and immune systems. RANKL stimulation activates a signaling pathway downstream of RANK, thereby determining the…”
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    Nuclear RNA Exosome and Pervasive Transcription: Dual Sculptors of Genome Function by Ogami, Koichi, Suzuki, Hiroshi I

    “…The genome is pervasively transcribed across various species, yielding numerous non-coding RNAs. As a counterbalance for pervasive transcription, various…”
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    ASCL1 regulates super‐enhancer‐associated miRNAs to define molecular subtypes of small cell lung cancer by Miyakawa, Kazuko, Miyashita, Naoya, Horie, Masafumi, Terasaki, Yasuhiro, Tanaka, Hidenori, Urushiyama, Hirokazu, Fukuda, Kensuke, Okabe, Yugo, Ishii, Takashi, Kuwahara, Naomi, Suzuki, Hiroshi I., Nagase, Takahide, Saito, Akira

    Published in Cancer science (01-11-2022)
    “…Small cell lung cancer (SCLC) is a highly aggressive neuroendocrine tumor with dismal prognosis. Recently, molecular subtypes of SCLC have been defined by the…”
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    Network Regulation of microRNA Biogenesis and Target Interaction by Komatsu, Shintaro, Kitai, Hiroki, Suzuki, Hiroshi I

    Published in Cells (Basel, Switzerland) (13-01-2023)
    “…MicroRNAs (miRNAs) are versatile, post-transcriptional regulators of gene expression. Canonical miRNAs are generated through the two-step DROSHA- and…”
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