Details of the Researcher

PHOTO

Hiroaki Tabara
Section
Graduate School of Life Sciences
Job title
Specially Appointed Senior Assistant Professor(Research)
Profile

 生命科学者であり、これまでの専門分野は分子遺伝学
 多細胞生物における遺伝子発現の制御現象の中で、RNA の発現や細胞内分布に特徴のある現象や RNA を介した生理反応について、それらの分子機構そして細胞および個体発生における役割を研究してきている。研究の過程で、生殖細胞に関連する生命現象にめぐり合ってきた経験が多い。具体的には、主に線虫 C. elegans をモデル生物として用いて、以下の研究を行なってきた。

1) 初期胚発生において生殖細胞の運命決定に関わる遺伝子の同定。

2) 研究に必要な組織化学的手法の開発。

3) 外来性の 2 本鎖 RNA によって誘導される遺伝子発現抑制現象である RNA interference (RNAi) の機構の解析。

4) 近年では、生殖細胞の減数分裂の過程で、相同染色体ペアの対合そして非対合染色体のサイレンシングが内在性 RNAi によって制御されていることに新たに気付き、その制御機構の解明に取り組んできた (最近の研究)。[学術機関リポジトリの著者版原稿はここ]
 減数分裂は卵子と精子を形成するための重要な細胞分裂様式であり、現在も減数分裂期染色体の動態制御についての研究を進めている。

< Blog 記事 >

双眼実体顕微鏡の設定:疲れにくい観察のための調整法について

コンパクトデジタルカメラによる電気泳動ゲルや顕微鏡画像のコリメート撮影用のアダプターの自作

線虫 C. elegans の大量培養用の混合飼料について

線虫 C. elegans の凍結保存について

除菌や同調培養のための線虫のブリーチ処理

半自作のマイクロインジェクション (微小注入) 装置について

免疫組織染色(他生物の手法との比較)

蛋白の SDS 電気泳動、迅速 CBB 染色や western blot

多検体 DNA からの PCR 増幅の実験法、電気泳動槽の修理

研究用ソフトの自作 I:PCR 用 プライマー DNA の Tm 計算 direct link

研究用ソフトの自作 II:文字列の出現頻度の 2 集団間における相違と共通性の解析

 文字列の出現頻度の演算と 2 集団間における頻度の相違の比較解析 direct link
 文字列の出現頻度の演算と 2 集団間における全要素と共通要素の同定 direct link
 和文や英文の単語単位への簡易分割と頻度計算 direct link

減数分裂と体細胞分裂について

生殖細胞の減数分裂についての小さな和文総説を書きました

作製してきた生物資料 (生物遺伝資源) について

多細胞動物のモデルとしての線虫 C. elegans

Education 3

  • The Graduate University for Advanced Studies

    1993/04 - 1996/03

  • University of Tsukuba

    1991/04 - 1993/03

  • University of Tsukuba

    1987/04 - 1991/03

Research Interests 26

  • ゲノム生物学

  • 反復配列

  • 分子遺伝学

  • 凍結保存

  • コヒーシン

  • 性染色体

  • 免疫染色

  • 線虫

  • 顕微操作

  • In situ ハイブリダイゼーション

  • Argonauteタンパク

  • 長鎖非コードRNA

  • 小分子RNA

  • 長鎖2本鎖RNA

  • mRNA

  • C. elegans

  • 転移因子サイレンシング

  • ヘテロクロマチン

  • 非対合サイレンシング

  • 発生学

  • 遺伝学

  • Germ cells

  • RNAi

  • Homologous pairing

  • Chromosomes

  • Meiosis

Research Areas 4

  • Life sciences / Functional biochemistry /

  • Life sciences / Developmental biology /

  • Life sciences / Molecular biology /

  • Life sciences / Genetics /

Papers 12

  1. A small RNA system ensures accurate homologous pairing and unpaired silencing of meiotic chromosomes. International-journal Peer-reviewed

    Tabara H, Mitani S, Mochizuki M, Kohara Y, Nagata K

    EMBO J. 42 (11) e105002 2023/06/01

    DOI: 10.15252/embj.2020105002  

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    During meiosis, chromosomes with homologous partners undergo synaptonemal complex (SC)-mediated pairing, while the remaining unpaired chromosomes are heterochromatinized through unpaired silencing. Mechanisms underlying homolog recognition during SC formation are still unclear. Here, we show that the Caenorhabditis elegans Argonaute proteins, CSR-1 and its paralog CSR-2, interacting with 22G-RNAs, are required for synaptonemal complex formation with accurate homology. CSR-1 in nuclei and meiotic cohesin, constituting the SC lateral elements, were associated with nonsimple DNA repeats, including minisatellites and transposons, and weakly associated with coding genes. CSR-1-associated CeRep55 minisatellites were expressing 22G-RNAs and long noncoding (lnc) RNAs that colocalized with synaptonemal complexes on paired chromosomes and with cohesin regions of unpaired chromosomes. CeRep55 multilocus deletions reduced the efficiencies of homologous pairing and unpaired silencing, which were supported by the csr-1 activity. Moreover, CSR-1 and CSR-2 were required for proper heterochromatinization of unpaired chromosomes. These findings suggest that CSR-1 and CSR-2 play crucial roles in homology recognition, achieving accurate SC formation between chromosome pairs and condensing unpaired chromosomes by targeting repeat-derived lncRNAs.

  2. In vitro analyses of the production and activity of secondary small interfering RNAs in C. elegans. International-journal Peer-reviewed

    Aoki K, Moriguchi H, Yoshioka T, Okawa K, Tabara H

    EMBO J. 26 (24) 5007-19 2007/12/12

    eISSN: 1460-2075

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    In the RNA interference (RNAi) pathway, small interfering RNAs (siRNAs) play important roles as intermediates. Primary siRNAs are produced from trigger dsRNAs by an RNaseIII-related enzyme called Dicer; in some organisms, secondary siRNAs are also produced by processes involving RNA-dependent RNA polymerases (RdRPs), which act on target mRNAs. Using a cell-free assay system prepared from Caenorhabditis elegans, we analyzed the production and activity of secondary siRNAs. In this cell-free system, RdRP activity acts on mRNA-derived templates to produce small RNAs. The RRF-1 complex is predominantly responsible for the RdRP activity, and synthesizes secondary-type siRNA molecules in a Dicer-independent manner. Notably, secondary-type siRNAs induce a prominent Slicer activity to cleave target mRNAs far more effectively than primary-type siRNAs. An Argonaute protein, CSR-1, is responsible for the Slicer activity induced by secondary-type siRNAs. Secondary rather than primary siRNAs may play a major role in the destabilization of target transcripts during RNAi in C. elegans.

  3. Protocols for large scale in situ hybridization on C. elegans larvae International-journal Peer-reviewed

    Motohashi T, Tabara H, Kohara Y

    WormBook : the online review of C. elegans biology 1-8 2006/07/24

    eISSN: 1551-8507

  4. A member of the polymerase beta nucleotidyltransferase superfamily is required for RNA interference in C. elegans. International-journal Peer-reviewed

    Chen CC, Simard MJ, Tabara H, Brownell DR, McCollough JA, Mello CC

    Curr Biol. 15 (4) 378-83 2005/02/22

    ISSN: 0960-9822

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    RNA interference (RNAi) is an ancient, highly conserved mechanism in which small RNA molecules (siRNAs) guide the sequence-specific silencing of gene expression . Several silencing machinery protein components have been identified, including helicases, RNase-related proteins, double- and single-stranded RNA binding proteins, and RNA-dependent RNA polymerase-related proteins . Work on these factors has led to the revelation that RNAi mechanisms intersect with cellular pathways required for development and fertility . Despite rapid progress in understanding key steps in the RNAi pathway, it is clear that many factors required for both RNAi and related developmental mechanisms have not yet been identified. Here, we report the characterization of the C. elegans gene rde-3. Genetic analysis of presumptive null alleles indicates that rde-3 is required for siRNA accumulation and for efficient RNAi in all tissues, and it is essential for fertility and viability at high temperatures. RDE-3 contains conserved domains found in the polymerase beta nucleotidyltransferase superfamily, which includes conventional poly(A) polymerases, 2'-5' oligoadenylate synthetase (OAS), and yeast Trf4p . These findings implicate a new enzymatic modality in RNAi and suggest possible models for the role of RDE-3 in the RNAi mechanism.

  5. RDE-2 interacts with MUT-7 to mediate RNA interference in Caenorhabditis elegans. International-journal Peer-reviewed

    Tops BB, Tabara H, Sijen T, Simmer F, Mello CC, Plasterk RH, Ketting RF

    Nucleic Acids Res. 33 (1) 347-55 2005

    eISSN: 1362-4962

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    In Caenorhabditis elegans, the activity of transposable elements is repressed in the germline. One of the mechanisms involved in this repression is RNA interference (RNAi), a process in which dsRNA targets cleavage of mRNAs in a sequence-specific manner. The first gene found to be involved in RNAi and transposon silencing in C.elegans is mut-7, a gene encoding a putative exoribonuclease. Here, we show that the MUT-7 protein resides in complexes of approximately 250 kDa in the nucleus and in the cytosol. In addition, we find that upon triggering of RNAi the cytosolic MUT-7 complex increases in size. This increase is independent of the presence of target RNA, but does depend on the presence of RDE-1 and RDE-4, two proteins involved in small interfering RNA (siRNA) production. Finally, using a yeast two-hybrid screen, we identified RDE-2/MUT-8 as one of the other components of this complex. This protein is encoded by the rde-2/mut-8 locus, previously implicated in RNAi and transposon silencing. Using genetic complementation analysis, we show that the interaction between these two proteins is required for efficient RNAi in vivo. Together these data support a role for the MUT-7/RDE-2 complex downstream of siRNA formation, but upstream of siRNA mediated target RNA recognition, possibly indicating a role in the siRNA amplification step.

  6. Inducible systemic RNA silencing in Caenorhabditis elegans. International-journal Peer-reviewed

    Timmons L, Tabara H, Mello CC, Fire AZ

    Mol Biol Cell. 14 (7) 2972-83 2003/07

    ISSN: 1059-1524

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    Introduction of double-stranded RNA (dsRNA) can elicit a gene-specific RNA interference response in a variety of organisms and cell types. In many cases, this response has a systemic character in that silencing of gene expression is observed in cells distal from the site of dsRNA delivery. The molecular mechanisms underlying the mobile nature of RNA silencing are unknown. For example, although cellular entry of dsRNA is possible, cellular exit of dsRNA from normal animal cells has not been directly observed. We provide evidence that transgenic strains of Caenorhabditis elegans transcribing dsRNA from a tissue-specific promoter do not exhibit comprehensive systemic RNA interference phenotypes. In these same animals, modifications of environmental conditions can result in more robust systemic RNA silencing. Additionally, we find that genetic mutations can influence the systemic character of RNA silencing in C. elegans and can separate mechanisms underlying systemic RNA silencing into tissue-specific components. These data suggest that trafficking of RNA silencing signals in C. elegans is regulated by specific physiological and genetic factors.

  7. The dsRNA binding protein RDE-4 interacts with RDE-1, DCR-1, and a DExH-box helicase to direct RNAi in C. elegans. International-journal Peer-reviewed

    Tabara H, Yigit E, Siomi H, Mello CC

    Cell 109 (7) 861-71 2002/06/28

    ISSN: 0092-8674

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    Double-stranded (ds) RNA induces potent gene silencing, termed RNA interference (RNAi). At an early step in RNAi, an RNaseIII-related enzyme, Dicer (DCR-1), processes long-trigger dsRNA into small interfering RNAs (siRNAs). DCR-1 is also required for processing endogenous regulatory RNAs called miRNAs, but how DCR-1 recognizes its endogenous and foreign substrates is not yet understood. Here we show that the C. elegans RNAi pathway gene, rde-4, encodes a dsRNA binding protein that interacts during RNAi with RNA identical to the trigger dsRNA. RDE-4 protein also interacts in vivo with DCR-1, RDE-1, and a conserved DExH-box helicase. Our findings suggest a model in which RDE-4 and RDE-1 function together to detect and retain foreign dsRNA and to present this dsRNA to DCR-1 for processing.

  8. Genetic requirements for inheritance of RNAi in C. elegans Peer-reviewed

    Grishok A, Tabara H, Mello CC

    Science 287 (5462) 2494-2497 2000

    ISSN: 0036-8075

    eISSN: 1095-9203

  9. The rde-1 gene, RNA interference, and transposon silencing in C. elegans Peer-reviewed

    Tabara H, Sarkissian M, Kelly WG, Fleenor J, Grishok A, Timmons L, Fire AZ, Mello CC

    Cell 99 (2) 123-132 1999

    ISSN: 0092-8674

    eISSN: 1097-4172

  10. pos-1 encodes a cytoplasmic zinc-finger protein essential for germline specification in C. elegans International-coauthorship Peer-reviewed

    Tabara H, Hill RJ, Mello CC, Priess JR, Kohara Y

    Development 126 (1) 1-11 1999

    ISSN: 0950-1991

  11. RNAi in C. elegans : soaking in the genome sequence

    Tabara H, Grishok A, Mello CC

    Science 282 430-431 1998

  12. A multi-well version of in situ hybridization on whole mount embryos of Caenorhabditis elegans Peer-reviewed

    Tabara H, Motohashi T, Kohara Y

    Nucleic Acids Res. 24 (11) 2119-2124 1996

    ISSN: 0305-1048

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Misc. 6

  1. 減数分裂期染色体の相同対合と非対合サイレンシング Invited

    田原浩昭

    BIO Clinica 41 (4) 52-56 2026/03

  2. 線虫では初期型と二次型の siRNA の産生機序および活性が大きく異なる

    田原浩昭, 浅沼高寛, 小川宣仁

    実験医学 26 (8) 1249-1252 2008/05

  3. RNA による遺伝子の発現抑制:RNAi

    田原浩昭

    線虫〜究極のモデル生物(学術図書) 143-154 2003/10

  4. Physiological and technological aspects of RNAi

    TABARA H

    Protein, nucleic acid and enzyme 48 (4) 469-479 2003/03

    Publisher: 共立出版

    ISSN: 0039-9450

  5. 線虫の RNAi プロトコル(feeding 法)

    田原浩昭

    細胞工学 22 (2) 188-196 2003/01

  6. RNAi and PTGS in eukaryotes

    Protein, nucleic acid, enzyme

    46 (14) 2017-2024 2001/11

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Presentations 5

  1. Homologous pairing and unpaired silencing of chromosomes are regulated by RNAi during meiosis in C. elegans

  2. Biochemical analysis of RNA interference in C. elegans Invited

    Tabara H

    文部科学省ナショナルバイオリソースプロジェクト・シンポジウム 2008/11/05

  3. 線虫をモデル生物とした RNAi 現象の分子遺伝学的解析 Invited

    田原浩昭

    第 13 回農芸化学 Frontiers 公開シンポジウム 2005/03/30

  4. Biochemical genetic analysis of RNA interference in C. elegans Invited

    2011/11/10

  5. Biochemical genetic analyses of RdRP and Slicer activities related to RNAi in C. elegans

    2007/06/27

Academic Activities 2

  1. RNAi の技術応用(II)、千里ライフサイエンス技術講習会

    2005/02/10 - 2005/02/10

    Activity type: Other

  2. RNAi の技術応用、千里ライフサイエンス技術講習会

    2004/02/20 - 2004/02/20

    Activity type: Other