Updated on 2026/06/02

写真a

 
TANAKA HIROYUKI
 
Organization
School of Life Science and Technology Assistant Professor
Title
Assistant Professor
External link

News & Topics
  • ワサビの染色体レベルでのゲノム解読に成功

    2023/07/20

    Languages: Japanese

      More details

    要点-日本を代表する香辛料であるワサビのゲノム配列を染色体レベルにまで繋ぐことに成功し、ハプロタイプレベルで高精度に解読しました-本ゲノム情報はワサビの辛味成分の進化機構の解明、栽培化の起源、品種改良など、遺伝資源としての基盤情報の構築に役立つことが期待されます

  • ミドリイガイのゲノム解析からわかった足糸の耐久性の秘密

    2021/03/18

    Languages: Japanese

      More details

    要点-熱帯・亜熱帯性のムール貝の一種ミドリイガイにおいて、高い完成度で全ゲノム情報を再構築することに成功した。-得られた情報は、今後マイクロプラスチック粒子や汚染物質に対する貝の応答をはじめ、生理学、生態学、水産食品学等様々な研究への活用が期待される。-得られた配列情報から、ムール貝類が水中基盤に付

Research Areas

  • Life Science / Genome biology

  • Environmental Science/Agriculture Science / Science in plant genetics and breeding

  • Life Science / Plant molecular biology and physiology

Professional Memberships

Papers

  • An evolutionary landscape of sesame: chromosomal variation, allopolyploid speciation and metabolic specialization.

    Hiroyuki Tanaka, Eiichiro Ono, Tenta Segawa, Jun Murata, Hiroki Takagi, Yuto Uegaki, Hiromi Toyonaga, Akira Shiraishi, Motoshige Takagi, Atsushi Toyoda, Kyoko Sato, Tatsuya Wakasugi, Manabu Horikawa, Makoto Kawase, Takehiko Itoh, Masayuki P Yamamoto

    bioRxiv   2026.3

     More details

    Publisher:openRxiv  

    Sesame (Sesamum indicum) is one of the earliest domesticated oilseed crops and is valued for antioxidant lignans that stabilize oil quality. However, the genomic and evolutionary history of the genus Sesamum, including the origin of its allotetraploid relative S. radiatum and the diversification of lignan metabolism, remains poorly understood owing to limited chromosome-scale genomic resources. Here we present chromosome-level genome assemblies for three wild Sesamum species, two Ceratotheca species and a Japanese sesame cultivar to reconstruct genome and karyotype evolution across the Sesamum-Ceratotheca complex. Comparative analyses show that the derived x=16 lineage originated from an ancestral x=13 karyotype through chromosome fission, fusion and translocation, whereas another x=13 lineage underwent extensive restructuring associated with retrotransposon expansion. Phylogenomics places Ceratotheca within the x=16 Sesamum clade and reveals that S. radiatum originated through hybridization involving a C. sesamoides-like ancestor. The antioxidative lignan gene CYP92B14 was reintroduced via the BB progenitor, linking hybridization with restoration of oil-stabilizing metabolism during sesame evolution.

    DOI: 10.64898/2026.03.27.714335

    researchmap

  • Genome assembly and annotation of the naked mole rat Heterocephalus glaber reared in Japan Reviewed

    Kouhei Toga, Kaori Oka, Hiroyuki Tanaka, Takehiko Itoh, Atsushi Toyoda, Hidemasa Bono, Kyoko Miura

    Scientific Data   2026.3

     More details

    Publishing type:Research paper (scientific journal)   Publisher:Springer Science and Business Media LLC  

    Abstract

    The naked mole rat (NMR, Heterocephalus glaber ) is a eusocial rodent that is native to northeastern Africa. NMRs exhibit extraordinary traits such as longevity, resistance to age-related decline, and remarkable hypoxia tolerance. Although the reference genome of this species has been determined because of its unique characteristics, the significance or role of intraspecific genomic variations remains unknown. In this study, we used PacBio long-read sequencing to generate a genome assembly of NMR reared in Japan. The assembled genome is 2.56 Gb. Benchmarking Universal Single–Copy Orthologs (BUSCO) revealed high completeness (95.2%). BRAKER3 estimated 26,714 protein-coding genes, and we successfully added functional annotations for 26,232 protein-coding genes using the functional annotation workflow. We identified 417 gene models that were previously undetectable in the reference genome of this species. We also identified structural and amino acid sequence variations between our assembly and the reference genome, suggesting the presence of intraspecific genomic variations. This new genomic resource could help uncover the molecular mechanisms underlying the behavioral and physiological traits of NMR.

    DOI: 10.1038/s41597-026-06996-9

    researchmap

  • Host-mediated endophyte–pathogen competition in roots enables asymptomatic fungal colonization in Arabidopsis thaliana Reviewed

    Kei Hiruma, Kuldanai Pathompitaknukul, Hiroyuki Tanaka, Yuki Iwaguchi, Shunsuke Miyashima, Nanami Kawamura, Atsushi Toyoda, Takehiko Itoh, Yusuke Saijo

    Plant and Cell Physiology   2025.10

     More details

    Publishing type:Research paper (scientific journal)   Publisher:Oxford University Press (OUP)  

    Abstract

    Seed plants frequently accommodate pathogenic microbes without showing disease symptoms. However, the mechanisms preventing disease progression within the host remain poorly understood. Here, we reveal a root-colonizing endophytic fungus, Colletotrichum fructicola (designated CfE), and a closely related pathogen, Colletotrichum gloeosporioides (CgP), from asymptomatic field-grown Brassicaceae plants. In Arabidopsis thaliana, CgP grows hyphae into the central cylinder of the root and causes necrosis, an outcome that is effectively suppressed in the presence of CfE co-colonization. Transcriptome analyses of roots inoculated individually and simultaneously with CfE and CgP revealed over 700 CfE genes specifically induced during co-inoculation, and the extent of reprogramming in the host transcriptome was much less pronounced. These induced genes were enriched in secondary metabolism pathways, suggesting that CfE suppresses pathogenic fungal growth through the production of antifungal metabolites. Moreover, the endophytic colonization and host-protective function of CfE depend on host-derived tryptophan-based antimicrobial metabolites. Our findings highlight a critical role for fungus–fungus competition, mediated by antimicrobial metabolites and potentially orchestrated by the host, in enabling asymptomatic colonization and maintaining plant health.

    DOI: 10.1093/pcp/pcaf126

    researchmap

  • When and how do 17-year periodical cicada nymphs decide to emerge? A field test of the 4-year-gate hypothesis Reviewed

    Namiho Saito, Satoshi Yamamoto, Satoshi Kakishima, Yutaka Okuzaki, Andrew Rasmussen, Diler Haji, Shota Nomura, Hiroyuki Tanaka, Takehiko Itoh, Jin Yoshimura, Chris Simon, John R. Cooley, Gene Kritsky, Teiji Sota

    Proceedings of the Royal Society B: Biological Sciences   292 ( 2053 )   2025.8

     More details

    Publishing type:Research paper (scientific journal)   Publisher:The Royal Society  

    The 17-year cicadas ( Magicicada spp.) are renowned for the longest, strictly regulated juvenile period in insects, yet how they control their life cycle is unknown. Here, we test our hypothesis of adult emergence decision points at developmental gates of 4 n years based on critical body weight (CBW). We studied growth and gene expression in 11–16-year-old last instar nymphs of two Magicicada species at multiple locations in autumn. The decision to emerge was reliably indicated by eye-colour change from white to red. We found that almost all 16-year-old nymphs were red-eyed (thus decided to emerge) with large body weights probably exceeding critical body weight, and a small but appreciable proportion of autumn 12-year-old nymphs having larger body weights than white-eyed nymphs similarly made the decision to emerge. However, nymphs of other ages were not red-eyed even if they had large body weights, except for very few cases. Red-eyed nymphs showed elevated expression for genes involved in response to external stimuli, especially light, and for genes facilitating adult morphological development, but genes for adult metamorphosis and moulting were expressed only after overwintering, at 17 years old. Thus, 17-year cicadas likely make the decision to emerge principally at 4-year gates, if they have achieved critical body weight as hypothesized.

    DOI: 10.1098/rspb.2025.1306

    researchmap

    Other Link: https://royalsocietypublishing.org/doi/full-xml/10.1098/rspb.2025.1306

  • Dynamic patterns of repeats and retrotransposons in the centromeres of Humulus lupulus L. Reviewed

    Lucie Horáková, Pavel Jedlička, Radim Čegan, Pavla Navrátilová, Hiroyuki Tanaka, Atsushi Toyoda, Takehiko Itoh, Takashi Akagi, Eiichiro Ono, Vojtěch Hudzieczek, Josef Patzak, Jan Šafář, Roman Hobza, Václav Bačovský

    New Phytologist   247 ( 6 )   2766 - 2780   2025.7

     More details

    Publishing type:Research paper (scientific journal)   Publisher:Wiley  

    Summary

    The centromere has a conserved function across eukaryotes; however, the associated DNA sequences exhibit remarkable diversity in both size and structure. In plants, some species possess well‐defined centromeres dominated by tandem satellite repeats and centromeric retrotransposons, while others have centromeric regions composed almost entirely of retrotransposons.

    Using a combination of bioinformatic, molecular, and cytogenetic approaches, we analyzed the centromeric landscape of Humulus lupulus. We identified novel centromeric repeats and characterized two types of centromeric organization. Cytogenetic localization on metaphase chromosomes confirmed the genomic distribution of the major repeats and revealed unique centromeric organization specifically on chromosomes 2, 8, and Y.

    Two centromeric types are composed of the major repeats SaazCEN and SaazCRM1 (Ty3/Gypsy) which are further accompanied by chromosome‐specific centromeric satellites, Saaz40, Saaz293, Saaz85, and HuluTR120. Chromosome 2 displays unbalanced segregation during mitosis and meiosis, implicating an important role for its centromere structure in segregation patterns. Moreover, chromosome 2‐specific centromeric repeat Saaz293 is a new marker for studying aneuploidy in hops.

    Our findings provide new insights into chromosome segregation in hops and highlight the diversity and complexity of the centromere organization in H. lupulus.

    DOI: 10.1111/nph.70380

    researchmap

  • Evolution and functioning of an X–A balance sex-determining system in hops Reviewed

    Takashi Akagi, Tenta Segawa, Rika Uchida, Hiroyuki Tanaka, Kenta Shirasawa, Noriko Yamagishi, Hajime Yaegashi, Satoshi Natsume, Hiroki Takagi, Akira Abe, Miki Okuno, Atsushi Toyoda, Kyoko Sato, Yuka Honniden, Cheng Zhang, Koichiro Ushijima, Josef Patzak, Lucie Horáková, Václav Bačovský, Roman Hobza, Deborah Charlesworth, Takehiko Itoh, Eiichiro Ono

    Nature Plants   11 ( 7 )   1339 - 1352   2025.6

     More details

    Publishing type:Research paper (scientific journal)   Publisher:Springer Science and Business Media LLC  

    DOI: 10.1038/s41477-025-02017-6

    researchmap

    Other Link: https://www.nature.com/articles/s41477-025-02017-6

  • Genome assembly and annotation of the naked mole rat Heterocephalus glaber reared in Japan

    Kouhei Toga, Kaori Oka, Hiroyuki Tanaka, Takehiko Itoh, Atsushi Toyoda, Hidemasa Bono, Kyoko Miura

    bioRxiv   2025.5

     More details

    Publisher:Cold Spring Harbor Laboratory  

    Abstract

    The naked mole rat (NMR,Heterocephalus glaber) is a eusocial rodent that is native to northeastern Africa. NMRs exhibit extraordinary traits such as longevity, resistance to age-related decline, and remarkable hypoxia tolerance. Although the reference genome of this species has been determined because of its unique characteristics, the significance or role of intraspecific genomic variations remains unknown. In this study, we used PacBio long-read sequencing to generate a genome assembly of NMR reared in Japan. The assembled genome is 2.56 Gb. Benchmarking Universal Single–Copy Orthologs (BUSCO) revealed high completeness (95.2%). BRAKER3 estimated 26,714 protein-coding genes, and we successfully added functional annotations for 26,232 protein-coding genes using the functional annotation workflow. We identified 417 gene models that were previously undetectable in the reference genome of this species. We also identified structural and amino acid sequence variations between our assembly and the reference genome, suggesting the presence of intraspecific genomic variations. This new genomic resource could help uncover the molecular mechanisms underlying the behavioral and physiological traits of NMR.

    DOI: 10.1101/2025.05.20.654782

    researchmap

  • Rapid and dynamic evolution of a giant Y chromosome in Silene latifolia Reviewed

    Takashi Akagi, Naoko Fujita, Kenta Shirasawa, Hiroyuki Tanaka, Kiyotaka Nagaki, Kanae Masuda, Ayano Horiuchi, Eriko Kuwada, Kanta Kawai, Riko Kunou, Koki Nakamura, Yoko Ikeda, Atsushi Toyoda, Takehiko Itoh, Koichiro Ushijima, Deborah Charlesworth

    Science   387 ( 6734 )   637 - 643   2025.2

     More details

    Publishing type:Research paper (scientific journal)   Publisher:American Association for the Advancement of Science (AAAS)  

    Some plants have massive sex-linked regions. To test hypotheses about their evolution, we sequenced the genome of Silene latifolia , in which giant heteromorphic sex chromosomes were first discovered in 1923. It has long been known that the Y chromosome consists mainly of a male-specific region that does not recombine with the X chromosome and carries the sex-determining genes and genes with other male functions. However, only with a whole Y chromosome assembly can candidate genes be validated experimentally and their locations determined and related to the suppression of recombination. We describe the genomic changes as the ancestral chromosome evolved into the current XY pair, testing ideas about the evolution of large nonrecombining regions and the mechanisms that created the present recombination pattern.

    DOI: 10.1126/science.adk9074

    researchmap

  • Evolution and functioning of an X-A balance sex determination system in hops

    Takashi Akagi, Tenta Segawa, Rika Uchida, Hiroyuki Tanaka, Kenta Shirasawa, Noriko Yamagishi, Hajime Yaegashi, Satoshi Natsume, Hiroki Takagi, Akira Abe, Miki Okuno, Atsushi Toyoda, Kyoko Sato, Yuka Honniden, Cheng Zhang, Koichiro Ushijima, Josef Patzak, Lucie Horáková, Václav Bačovský, Roman Hobza, Deborah Charlesworth, Takehiko Itoh, Eiichiro Ono

    bioRxiv   2024.11

     More details

    Publisher:Cold Spring Harbor Laboratory  

    Abstract

    Chromosomal sex determining systems with male heterogamety include actively male-determining-Y and X-A balance systems, both of which are found in animals and plants. The sex-determining genes have been identified in several active-Y plant systems, but the evolution and functioning of X-A balance systems remains mysterious. To study this, we sequenced and compared the genomes of two hop species. The evolution of the hop X-A balance system involved an ancient recombination suppression event across a large X chromosome region shared by both species. In one species, an autosome fused to this ancestral sex chromosome, and recombination was subsequently suppressed again. The two evolutionary strata created in this neo-X have degenerated to different degrees, and evolved correspondingly different dosage compensation levels that correlate with histone modification patterns. Finally, we identified an X-specific ETR1-like ethylene receptor in the ancestral X region. Its dosage may affect sex determination, as part of the counting mechanism of this X-A balance system.

    One sentence summary

    Based on whole genome sequences of the cultivated hop,Humulus lupulus, and its wild relativeH. japonicus, we describe the evolution of sex chromosomal regions, three of which that evolved region-specific dosage compensation, and identify a candidate gene involved in their X-A balance sex determining system.

    DOI: 10.1101/2024.11.04.621975

    researchmap

  • Centromeric repeat diversity underlies non-Mendelian segregation pattern in hop (Humulus lupulus)

    Lucie Horáková, Radim Čegan, Pavel Jedlička, Pavla Navrátilová, Hiroyuki Tanaka, Atsushi Toyoda, Takehiko Itoh, Takashi Akagi, Eiichiro Ono, Vojtěch Hudzieczek, Josef Patzak, Jan Šafář, Roman Hobza, Václav Bačovský

    bioRxiv   2024.11

     More details

    Publisher:Cold Spring Harbor Laboratory  

    Summary

    Aberrant meiosis in plants often leads to aneuploidy, genetic instability, and sterility. This can occur due to several factors, including chromosome misalignment, defective synapsis or environmental factors that may result in unusual genetic combinations in the offsprings. Unusual chromosome behavior during male meiosis inHumulus lupulusis linked to irregular chromosome segregation and genome instability. However, the origin of meiotic instability remains unclear.

    We analyzed the centromeric landscape ofH.lupulus to determine its role in aberrant chromosomal segregation during cell division. Using a combination of bioinformatic, molecular and cytogenetic approaches, we identified new centromeric repeats and revealed two types of centromeric organizations. Cytogenetic localization on metaphase chromosomes confirmed the genomic distribution of major repeat arrays and revealed unique features that contribute to aberrant segregation.

    Two centromeric types are composed of the major repeats SaazCEN and SaazCRM1 which are further accompanied by chromosome-specific centromeric satellites, Saaz40, Saaz293, Saaz85, and HuluTR120. Chromosome 2 displays unbalanced segregation during the cell division, implicating an important role for its centromere structure in segregation patterns. Moreover, Saaz293 is a new marker for studying aneuploidy in hop.

    Our findings provide new insights on chromosome segregation in hop and highlight the diversity and complexity of the centromere organization inH.lupulus.

    DOI: 10.1101/2024.11.03.621702

    researchmap

  • Genome sequence and cell biological toolbox of the highly regenerative, coenocytic green feather alga Bryopsis Reviewed

    Kanta K. Ochiai, Daiki Hanawa, Harumi A. Ogawa, Hiroyuki Tanaka, Kazuma Uesaka, Tomoya Edzuka, Maki Shirae‐Kurabayashi, Atsushi Toyoda, Takehiko Itoh, Gohta Goshima

    The Plant Journal   119 ( 2 )   1091 - 1111   2024.4

     More details

    Publishing type:Research paper (scientific journal)   Publisher:Wiley  

    SUMMARY

    Green feather algae (Bryopsidales) undergo a unique life cycle in which a single cell repeatedly executes nuclear division without cytokinesis, resulting in the development of a thallus (>100 mm) with characteristic morphology called coenocyte. Bryopsis is a representative coenocytic alga that has exceptionally high regeneration ability: extruded cytoplasm aggregates rapidly in seawater, leading to the formation of protoplasts. However, the genetic basis of the unique cell biology of Bryopsis remains poorly understood. Here, we present a high‐quality assembly and annotation of the nuclear genome of Bryopsis sp. (90.7 Mbp, 27 contigs, N50 = 6.7 Mbp, 14 034 protein‐coding genes). Comparative genomic analyses indicate that the genes encoding BPL‐1/Bryohealin, the aggregation‐promoting lectin, are heavily duplicated in Bryopsis, whereas homologous genes are absent in other ulvophyceans, suggesting the basis of regeneration capability of Bryopsis. Bryopsis sp. possesses >30 kinesins but only a single myosin, which differs from other green algae that have multiple types of myosin genes. Consistent with this biased motor toolkit, we observed that the bidirectional motility of chloroplasts in the cytoplasm was dependent on microtubules but not actin in Bryopsis sp. Most genes required for cytokinesis in plants are present in Bryopsis, including those in the SNARE or kinesin superfamily. Nevertheless, a kinesin crucial for cytokinesis initiation in plants (NACK/Kinesin‐7II) is hardly expressed in the coenocytic part of the thallus, possibly underlying the lack of cytokinesis in this portion. The present genome sequence lays the foundation for experimental biology in coenocytic macroalgae.

    DOI: 10.1111/tpj.16764

    researchmap

  • Genome sequence and cell biological toolbox of the highly regenerative, coenocytic green feather alga Bryopsis

    Kanta K. Ochiai, Daiki Hanawa, Harumi A. Ogawa, Hiroyuki Tanaka, Kazuma Uesaka, Tomoya Edzuka, Maki Shirae-Kurabayashi, Atsushi Toyoda, Takehiko Itoh, Gohta Goshima

    bioRxiv   2023.11

     More details

    Publisher:Cold Spring Harbor Laboratory  

    Abstract

    Green feather algae (Bryopsidales) undergo a unique life cycle in which a single cell repeatedly executes nuclear division without cytokinesis, resulting in the development of a thallus (> 100 mm) with characteristic morphology called coenocyte.Bryopsisis a representative coenocytic alga that has exceptionally high regeneration ability: extruded cytoplasm aggregates rapidly in seawater, leading to the formation of protoplasts. However, the genetic basis of the unique cell biology ofBryopsisremains poorly understood. Here, we present a high-quality assembly and annotation of the nuclear genome ofBryopsissp. (90.7 Mbp, 27 contigs, N50 = 6.7 Mbp, 14,034 protein-coding genes). Comparative genomic analyses indicate that the genes encoding BPL-1/Bryohealin, the aggregation-promoting lectin, are heavily duplicated inBryopsis, whereas homologous genes are absent in other Ulvophycean algae, suggesting the basis of regeneration capability ofBryopsis.Bryopsissp. possesses >30 kinesins but only a single myosin, which differs from other green algae that have multiple types of myosin genes. Consistent with this biased motor toolkit, we observed that the bidirectional motility of chloroplasts in the cytoplasm was dependent on microtubules but not actin inBryopsissp. Unexpectedly, most genes required for cytokinesis in plants are present inBryopsis, including those in the SNARE or kinesin superfamily. Nevertheless, a kinesin crucial for cytokinesis initiation in plants (NACK/Kinesin-7II) is hardly expressed in the coenocytic part of the thallus, possibly underlying the lack of cytokinesis in this portion. The present genome sequence lays the foundation for experimental biology in coenocytic macroalgae.

    Significance statement

    The exceptionally coenocytic body and remarkable regeneration ability ofBryopsishave attracted biologists for years. However, molecular biological tools remain underdeveloped, partly due to the lack of genome information. Here, we report high-quality assembly and annotation of the genome, providing a crucial resource for experimental biology and genomics studies ofBryopsis. Furthermore, comparative genomic analysis reveals a unique gene repertoire that possibly underlies the highly regenerative coenocytic body.

    DOI: 10.1101/2023.11.22.568388

    researchmap

  • GINGER: an integrated method for high-accuracy prediction of gene structure in higher eukaryotes at the gene and exon level. Reviewed International journal

    Takeaki Taniguchi, Miki Okuno, Takahiro Shinoda, Fumiya Kobayashi, Kazuki Takahashi, Hideaki Yuasa, Yuta Nakamura, Hiroyuki Tanaka, Rei Kajitani, Takehiko Itoh

    DNA research : an international journal for rapid publication of reports on genes and genomes   30 ( 4 )   2023.8

     More details

    Language:English   Publishing type:Research paper (scientific journal)  

    The prediction of gene structure within the genome sequence is the starting point of genome analysis, and its accuracy has a significant impact on the quality of subsequent analyses. Gene structure prediction is roughly divided into RNA-Seq-based methods, ab initio-based methods, homology-based methods, and the integration of individual prediction methods. Integrated methods are mainstream in recent genome projects because they improve prediction accuracy by combining or taking the best individual prediction findings; however, adequate prediction accuracy for eukaryotic species has not yet been achieved. Therefore, we developed an integrated tool, GINGER, that solves various issues related to gene structure prediction in higher eukaryotes. By handling artefacts in alignments of RNA and protein sequences, reconstructing gene structures via dynamic programming with appropriately weighted and scored exon/intron/intergenic regions, and applying different prediction processes and filtering criteria to multi-exon and single-exon genes, we achieved a significant improvement in accuracy compared to the existing integration methods. The feature of GINGER is its high prediction accuracy at the gene and exon levels, which is pronounced for species with more complex gene architectures. GINGER is implemented using Nextflow, which allows for the efficient and effective use of computing resources.

    DOI: 10.1093/dnares/dsad017

    PubMed

    researchmap

  • Haplotype-resolved chromosomal-level assembly of wasabi (Eutrema japonicum) genome. Reviewed International journal

    Hiroyuki Tanaka, Tatsuki Hori, Shohei Yamamoto, Atsushi Toyoda, Kentaro Yano, Kyoko Yamane, Takehiko Itoh

    Scientific data   10 ( 1 )   441 - 441   2023.7

     More details

    Language:English   Publishing type:Research paper (scientific journal)  

    In Japan, wasabi (Eutrema japonicum) is an important traditional condiment, and is recognized as an endemic species. In the present study, we generated a chromosome-level and haplotype-resolved reference genome for E. japonicum using PacBio CLR (continuous long reads), Illumina, and Hi-C sequencing data. The genome consists of 28 chromosomes that contain 1,512.1 Mb of sequence data, with a scaffold N50 length of 55.67 Mb. We also reported the subgenome and haplotype assignment of the 28 chromosomes by read-mapping and phylogenic analysis. Three validation methods (Benchmarking Universal Single-Copy Orthologs, Merqury, and Inspector) indicated that our obtained genome sequences were a high-quality and high-completeness genome assembly. Comparison of genome assemblies from previously published genomes showed that our obtained genome was of higher quality. Therefore, our genome will serve as a valuable genetic resource for both chemical ecology and evolution research of the genera Eutrema and Brassicaceae, as well as for wasabi breeding.

    DOI: 10.1038/s41597-023-02356-z

    PubMed

    researchmap

  • Gene Recruitments and Dismissals in the Argonaut Genome Provide Insights into Pelagic Lifestyle Adaptation and Shell-like Eggcase Reacquisition. Reviewed International journal

    Masa-Aki Yoshida, Kazuki Hirota, Junichi Imoto, Miki Okuno, Hiroyuki Tanaka, Rei Kajitani, Atsushi Toyoda, Takehiko Itoh, Kazuho Ikeo, Takenori Sasaki, Davin H E Setiamarga

    Genome biology and evolution   14 ( 11 )   2022.11

     More details

    Language:English   Publishing type:Research paper (scientific journal)  

    The paper nautilus or greater argonaut, Argonauta argo, is a species of octopods which is characterized by its pelagic lifestyle and by the presence of a protective spiral-shaped shell-like eggcase in females. To reveal the genomic background of how the species adapted to the pelagic lifestyle and acquired its shell-like eggcase, we sequenced the draft genome of the species. The genome size was 1.1 Gb, which is the smallest among the cephalopods known to date, with the top 215 scaffolds (average length 5,064,479 bp) covering 81% (1.09 Gb) of the total assembly. A total of 26,433 protein-coding genes were predicted from 16,802 assembled scaffolds. From these, we identified nearly intact HOX, Parahox, Wnt clusters, and some gene clusters that could probably be related to the pelagic lifestyle, such as reflectin, tyrosinase, and opsin. The gene models also revealed several homologous genes related to calcified shell formation in Conchiferan mollusks, such as Pif-like, SOD, and TRX. Interestingly, comparative genomics analysis revealed that the homologous genes for such genes were also found in the genome of the shell-less octopus, as well as Nautilus, which has a true outer shell. Therefore, the draft genome sequence of Arg. argo presented here has helped us to gain further insights into the genetic background of the dynamic recruitment and dismissal of genes to form an important, converging extended phenotypic structure such as the shell and the shell-like eggcase. Additionally, it allows us to explore the evolution of from benthic to pelagic lifestyles in cephalopods and octopods.

    DOI: 10.1093/gbe/evac140

    PubMed

    researchmap

  • Whole-genome sequencing analysis and protocol for RNA interference of the endoparasitoid wasp Asobara japonica. Reviewed International journal

    Takumi Kamiyama, Yuko Shimada-Niwa, Hiroyuki Tanaka, Minami Katayama, Takayoshi Kuwabara, Hitoha Mori, Akari Kunihisa, Takehiko Itoh, Atsushi Toyoda, Ryusuke Niwa

    DNA research : an international journal for rapid publication of reports on genes and genomes   29 ( 4 )   2022.6

     More details

    Language:English   Publishing type:Research paper (scientific journal)  

    Asobara japonica is an endoparasitic wasp that parasitizes Drosophila flies. It synthesizes various toxic components in the venom gland and injects them into host larvae during oviposition. To identify and characterize these toxic components for enabling parasitism, we performed the whole-genome sequencing (WGS) and devised a protocol for RNA interference (RNAi) with A. japonica. Because it has a parthenogenetic lineage due to Wolbachia infection, we generated a clonal strain from a single wasp to obtain highly homogenous genomic DNA. The WGS analysis revealed that the estimated genome size was 322 Mb with a heterozygosity of 0.132%. We also performed RNA-seq analyses for gene annotation. Based on the qualified WGS platform, we cloned ebony-Aj, which encodes the enzyme N-β-alanyl dopamine synthetase, which is involved in melanin production. The microinjection of double-stranded RNA (dsRNA) targeting ebony-Aj led to body colour changes in adult wasps, phenocopying ebony-Dm mutants. Furthermore, we identified putative venom genes as a target of RNAi, confirming that dsRNA injection-based RNAi specifically suppressed the expression of the target gene in wasp adults. Taken together, our results provide a powerful genetic toolkit for studying the molecular mechanisms of parasitism.

    DOI: 10.1093/dnares/dsac019

    PubMed

    researchmap

  • Gene recruitments and dismissals in argonaut octopus genome provide insights to pelagic lifestyle adaptation and shell-like eggcase reacquisition

    Masa-aki Yoshida, Kazuki Hirota, Junichi Imoto, Miki Okuno, Hiroyuki Tanaka, Rei Kajitani, Atsushi Toyoda, Takehiko Itoh, Kazuho Ikeo, Takenori Sasaki, Davin H. E. Setiamarga

    bioRxiv   2021.11

     More details

    Publisher:Cold Spring Harbor Laboratory  

    Abstract

    The paper nautilus,Argonauta argo, also known as the greater argonaut, is a species of octopods distinctly characterized by its pelagic lifestyle and by the presence of a spiral-shaped shell-like eggcase in females. The eggcase functions by protecting the eggs laid inside it, and by building and keeping air intakes for buoyancy. To reveal the genomic background of the species’ adaptation to pelagic lifestyle and the acquisition of its shell-like eggcase, we sequenced the draft genome sequence of the species. The genome size was 1.1 Gb, which is the smallest among the cephalopods known to date, with the top 215 scaffolds (average length 5,064,479 bp) covering 81% (1.09 Gb) of the total assembly. A total of 26,433 protein-coding genes were predicted from 16,802 assembled scaffolds. From these, we identified nearly intact HOX, Parahox, Wnt clusters and some gene clusters probably related to the pelagic lifestyle, such asreflectin, tyrosinase, andopsin. For example,opsinmight have undergone an extensive duplication in order to adapt to the pelagic lifestyle, as opposed to other octopuses, which are mostly the benthic. Our gene models also discovered several genes homologous to those related to calcified shell formation in Conchiferan Mollusks, such as Pif-like, SOD, and TRX. Interestingly, comparative genomics analysis revealed that the homologous genes for such genes were also found in the genome of the octopus, which does not have a shell, as well as the basal cephalopodsNautilus. Therefore, the draft genome sequence ofA. argowe presented here had not only helped us to gain further insights into the genetic background of the dynamic recruitment and dismissal of genes for the formation of an important, converging extended phenotypic structure such as the shell and the shell-like eggcase, but also the evolution of lifestyles in Cephalopods and the octopods, from benthic to pelagic.

    DOI: 10.1101/2021.11.08.467834

    researchmap

  • Genomics and Transcriptomics of the green mussel explain the durability of its byssus. Reviewed International journal

    Koji Inoue, Yuki Yoshioka, Hiroyuki Tanaka, Azusa Kinjo, Mieko Sassa, Ikuo Ueda, Chuya Shinzato, Atsushi Toyoda, Takehiko Itoh

    Scientific reports   11 ( 1 )   5992 - 5992   2021.3

     More details

    Language:English   Publishing type:Research paper (scientific journal)  

    Mussels, which occupy important positions in marine ecosystems, attach tightly to underwater substrates using a proteinaceous holdfast known as the byssus, which is tough, durable, and resistant to enzymatic degradation. Although various byssal proteins have been identified, the mechanisms by which it achieves such durability are unknown. Here we report comprehensive identification of genes involved in byssus formation through whole-genome and foot-specific transcriptomic analyses of the green mussel, Perna viridis. Interestingly, proteins encoded by highly expressed genes include proteinase inhibitors and defense proteins, including lysozyme and lectins, in addition to structural proteins and protein modification enzymes that probably catalyze polymerization and insolubilization. This assemblage of structural and protective molecules constitutes a multi-pronged strategy to render the byssus highly resistant to environmental insults.

    DOI: 10.1038/s41598-021-84948-6

    PubMed

    researchmap

  • Host-dependent fungus-fungus competition suppresses fungal pathogenesis inArabidopsis thaliana

    Kuldanai Pathompitaknukul, Kei Hiruma, Hiroyuki Tanaka, Nanami Kawamura, Atsushi Toyoda, Takehiko Itoh, Yusuke Saijo

    bioRxiv   2020.5

     More details

    Publisher:Cold Spring Harbor Laboratory  

    Abstract

    Like animals, plants accommodate a rich diversity of microbes, typically without discernible disease symptoms. How their pathogenesis is prevented in the host remains obscure. Here, we show that the root-infecting fungusColletotrichum fructicolaof theC.gloeosporioidesclade (CgE), isolated from field-grown healthy Brassicaceae plants, inhibits growth of pathogenic fungi inArabidopsis thaliana, in a phosphate status-dependent manner. Loss of host ethylene signaling or phytoalexins, camalexin or indole glucosinolates, however, allows CgE to display pathogenesis, suggesting host contributions to endophytic CgE colonization and benefit. Compared to a closely-relatedC. gloeosporioidespathogen (CgP), CgE is characterized by genome expansion and >700 fungal genes (4.34%) specifically induced in the host roots when co-inoculated with CgP, including genes related to fungal secondary metabolism. This may underlie antimicrobial tolerance of CgE and its dominance over pathogenic fungi within the host, pointing to a role for fungus-fungus competition in asymptomatic fungal colonization in plants.

    DOI: 10.1101/2020.05.27.117978

    researchmap

  • Salinity stress-responsive transcription factors in the liverwort Marchantia polymorpha Reviewed

    Tanaka H, Suzuki R, Okabe N, Suzuki T, Kodama Y

    Plant Biotechnology   2018.7

▼display all

Research Projects

  • 非モデル植物を用いた異質倍数化による種子散布様式多様化機構の解明

    Grant number:25K09155  2025.4 - 2028.3

    日本学術振興会  科学研究費助成事業  基盤研究(C)

    田中 裕之

      More details

    Grant amount:\4680000 ( Direct Cost: \3600000 、 Indirect Cost:\1080000 )

    researchmap

  • 非モデル生物を用いたゲノム倍数化を介した植物の種分化機構解明の基盤構築

    Grant number:21K20580  2021.8 - 2023.3

    日本学術振興会  科学研究費助成事業  研究活動スタート支援

    田中 裕之

      More details

    Grant amount:\3120000 ( Direct Cost: \2400000 、 Indirect Cost:\720000 )

    DNA抽出法の検討とDNAシーケンス
    植物からのDNA抽出法としてはC-TAB法が一般的に知られているが、スミレ属植物は多糖類やポリフェノール類などを多く含んでいることが原因で、他の植物と比較して抽出効率が悪かった。そこで、スミレ属植物に適したDNA抽出法を検討した。その結果、塩化ベンジル法をベースとした抽出法によって高分子DNAを高効率で抽出可能であることがわかった。本方法によって、異質倍数体スミレの葉から約35 μgのDNAを抽出できたため、Pacbio Sequel IIのCCS (Circular Consensus Sequencing) modeによってゲノムシークエンスを実施した。
    <BR>
    2) RNAシーケンス
    異質倍数体スミレの組織(葉、根、茎、花、蕾、匍匐枝)からRNAを抽出し、Illumina NovaSeq6000 によってRNA-seqデータを取得した。取得したRNA-seqリードをドラフトゲノムにテストマッピングしたところ約90%のリードがマッピングされていることを確認した。また、Trinityによるde novoアセンブルによって遺伝子セットを作成し、BUSCOを用いて完成度を評価した結果、双子葉植物に共通するSingle copy orthologs(eudicots_odb10)の検出率は96.6%であった。以上の結果から、今回取得したRNA-seqデータは遺伝子アノテーションに使用するうえで十分なクオリティであると考えられる。

    researchmap

  • Spatio-temporal imaging of redox state in plant cell.

    Grant number:16H06666  2016.8 - 2018.3

    Japan Society for the Promotion of Science  Grants-in-Aid for Scientific Research  Grant-in-Aid for Research Activity Start-up

    Tanaka Hiroyuki

      More details

    Grant amount:\2990000 ( Direct Cost: \2300000 、 Indirect Cost:\690000 )

    In order to analyze the spatio-temporal patterns of cellar redox state in plant cell, I developed imaging technique using reactive oxygen species (ROS)- responsive fluorescence probes in planta. I founded useful ROS-responsive fluorescence probes and observation condition for ROS detection in plant cells.

    researchmap