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Dive into the research topics where Kenta Shirasawa is active.

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Featured researches published by Kenta Shirasawa.


Nature Genetics | 2016

The genome sequences of Arachis duranensis and Arachis ipaensis , the diploid ancestors of cultivated peanut

David J. Bertioli; Steven B. Cannon; Lutz Froenicke; Guodong Huang; Andrew D. Farmer; Ethalinda K. S. Cannon; Xin Liu; Dongying Gao; Josh Clevenger; Sudhansu Dash; Longhui Ren; Márcio C. Moretzsohn; Kenta Shirasawa; Wei Huang; Bruna Vidigal; Brian Abernathy; Ye Chu; Chad E. Niederhuth; Pooja E. Umale; Ana Claudia Guerra Araujo; Alexander Kozik; Kyung Do Kim; Mark D. Burow; Rajeev K. Varshney; Xingjun Wang; Xinyou Zhang; Noelle A. Barkley; Patricia M. Guimarães; Sachiko Isobe; Baozhu Guo

Cultivated peanut (Arachis hypogaea) is an allotetraploid with closely related subgenomes of a total size of ∼2.7 Gb. This makes the assembly of chromosomal pseudomolecules very challenging. As a foundation to understanding the genome of cultivated peanut, we report the genome sequences of its diploid ancestors (Arachis duranensis and Arachis ipaensis). We show that these genomes are similar to cultivated peanuts A and B subgenomes and use them to identify candidate disease resistance genes, to guide tetraploid transcript assemblies and to detect genetic exchange between cultivated peanuts subgenomes. On the basis of remarkably high DNA identity of the A. ipaensis genome and the B subgenome of cultivated peanut and biogeographic evidence, we conclude that A. ipaensis may be a direct descendant of the same population that contributed the B subgenome to cultivated peanut.


DNA Research | 2014

Dissection of the Octoploid Strawberry Genome by Deep Sequencing of the Genomes of Fragaria Species

Hideki Hirakawa; Kenta Shirasawa; Shunichi Kosugi; Kosuke Tashiro; Shinobu Nakayama; Manabu Yamada; Mistuyo Kohara; Akiko Watanabe; Yoshie Kishida; Tsunakazu Fujishiro; Hisano Tsuruoka; Chiharu Minami; Shigemi Sasamoto; Midori Kato; Keiko Nanri; Akiko Komaki; Tomohiro Yanagi; Qin Guoxin; Fumi Maeda; Masami Ishikawa; Shusei Sato; Satoshi Tabata; Sachiko Isobe

Cultivated strawberry (Fragaria x ananassa) is octoploid and shows allogamous behaviour. The present study aims at dissecting this octoploid genome through comparison with its wild relatives, F. iinumae, F. nipponica, F. nubicola, and F. orientalis by de novo whole-genome sequencing on an Illumina and Roche 454 platforms. The total length of the assembled Illumina genome sequences obtained was 698 Mb for F. x ananassa, and ∼200 Mb each for the four wild species. Subsequently, a virtual reference genome termed FANhybrid_r1.2 was constructed by integrating the sequences of the four homoeologous subgenomes of F. x ananassa, from which heterozygous regions in the Roche 454 and Illumina genome sequences were eliminated. The total length of FANhybrid_r1.2 thus created was 173.2 Mb with the N50 length of 5137 bp. The Illumina-assembled genome sequences of F. x ananassa and the four wild species were then mapped onto the reference genome, along with the previously published F. vesca genome sequence to establish the subgenomic structure of F. x ananassa. The strategy adopted in this study has turned out to be successful in dissecting the genome of octoploid F. x ananassa and appears promising when applied to the analysis of other polyploid plant species.


DNA Research | 2013

Integrated consensus map of cultivated peanut and wild relatives reveals structures of the A and B genomes of Arachis and divergence of the legume genomes.

Kenta Shirasawa; David J. Bertioli; Rajeev K. Varshney; Márcio C. Moretzsohn; Soraya C. M. Leal-Bertioli; Mahendar Thudi; Manish K. Pandey; Jean-François Rami; Daniel Foncéka; M. V. C. Gowda; Hongde Qin; Baozhu Guo; Yanbin Hong; Xuanqiang Liang; Hideki Hirakawa; Satoshi Tabata; Sachiko Isobe

The complex, tetraploid genome structure of peanut (Arachis hypogaea) has obstructed advances in genetics and genomics in the species. The aim of this study is to understand the genome structure of Arachis by developing a high-density integrated consensus map. Three recombinant inbred line populations derived from crosses between the A genome diploid species, Arachis duranensis and Arachis stenosperma; the B genome diploid species, Arachis ipaënsis and Arachis magna; and between the AB genome tetraploids, A. hypogaea and an artificial amphidiploid (A. ipaënsis × A. duranensis)4×, were used to construct genetic linkage maps: 10 linkage groups (LGs) of 544 cM with 597 loci for the A genome; 10 LGs of 461 cM with 798 loci for the B genome; and 20 LGs of 1442 cM with 1469 loci for the AB genome. The resultant maps plus 13 published maps were integrated into a consensus map covering 2651 cM with 3693 marker loci which was anchored to 20 consensus LGs corresponding to the A and B genomes. The comparative genomics with genome sequences of Cajanus cajan, Glycine max, Lotus japonicus, and Medicago truncatula revealed that the Arachis genome has segmented synteny relationship to the other legumes. The comparative maps in legumes, integrated tetraploid consensus maps, and genome-specific diploid maps will increase the genetic and genomic understanding of Arachis and should facilitate molecular breeding.


DNA Research | 2014

Draft Sequences of the Radish (Raphanus sativus L.) Genome

Hiroyasu Kitashiba; Feng Li; Hideki Hirakawa; Takahiro Kawanabe; Zhongwei Zou; Yoichi Hasegawa; Kaoru Tonosaki; Sachiko Shirasawa; Aki Fukushima; Shuji Yokoi; Yoshihito Takahata; Tomohiro Kakizaki; Masahiko Ishida; Shunsuke Okamoto; Koji Sakamoto; Kenta Shirasawa; Satoshi Tabata; Takeshi Nishio

Radish (Raphanus sativus L., n = 9) is one of the major vegetables in Asia. Since the genomes of Brassica and related species including radish underwent genome rearrangement, it is quite difficult to perform functional analysis based on the reported genomic sequence of Brassica rapa. Therefore, we performed genome sequencing of radish. Short reads of genomic sequences of 191.1 Gb were obtained by next-generation sequencing (NGS) for a radish inbred line, and 76,592 scaffolds of ≥300 bp were constructed along with the bacterial artificial chromosome-end sequences. Finally, the whole draft genomic sequence of 402 Mb spanning 75.9% of the estimated genomic size and containing 61,572 predicted genes was obtained. Subsequently, 221 single nucleotide polymorphism markers and 768 PCR-RFLP markers were used together with the 746 markers produced in our previous study for the construction of a linkage map. The map was combined further with another radish linkage map constructed mainly with expressed sequence tag-simple sequence repeat markers into a high-density integrated map of 1,166 cM with 2,553 DNA markers. A total of 1,345 scaffolds were assigned to the linkage map, spanning 116.0 Mb. Bulked PCR products amplified by 2,880 primer pairs were sequenced by NGS, and SNPs in eight inbred lines were identified.


DNA Research | 2010

SNP Discovery and Linkage Map Construction in Cultivated Tomato

Kenta Shirasawa; Sachiko Isobe; Hideki Hirakawa; Erika Asamizu; Hiroyuki Fukuoka; Daniel Just; Shigemi Sasamoto; Tsunakazu Fujishiro; Yoshie Kishida; Mitsuyo Kohara; Hisano Tsuruoka; Tsuyuko Wada; Yasukazu Nakamura; Shusei Sato; Satoshi Tabata

Few intraspecific genetic linkage maps have been reported for cultivated tomato, mainly because genetic diversity within Solanum lycopersicum is much less than that between tomato species. Single nucleotide polymorphisms (SNPs), the most abundant source of genomic variation, are the most promising source of polymorphisms for the construction of linkage maps for closely related intraspecific lines. In this study, we developed SNP markers based on expressed sequence tags for the construction of intraspecific linkage maps in tomato. Out of the 5607 SNP positions detected through in silico analysis, 1536 were selected for high-throughput genotyping of two mapping populations derived from crosses between ‘Micro-Tom’ and either ‘Ailsa Craig’ or ‘M82’. A total of 1137 markers, including 793 out of the 1338 successfully genotyped SNPs, along with 344 simple sequence repeat and intronic polymorphism markers, were mapped onto two linkage maps, which covered 1467.8 and 1422.7 cM, respectively. The SNP markers developed were then screened against cultivated tomato lines in order to estimate the transferability of these SNPs to other breeding materials. The molecular markers and linkage maps represent a milestone in the genomics and genetics, and are the first step toward molecular breeding of cultivated tomato. Information on the DNA markers, linkage maps, and SNP genotypes for these tomato lines is available at http://www.kazusa.or.jp/tomato/.


DNA Research | 2014

Draft genome sequence of eggplant (Solanum melongena L.): the representative solanum species indigenous to the old world.

Hideki Hirakawa; Kenta Shirasawa; Koji Miyatake; Tsukasa Nunome; Satomi Negoro; Akio Ohyama; Hirotaka Yamaguchi; Shusei Sato; Sachiko Isobe; Satoshi Tabata; Hiroyuki Fukuoka

Unlike other important Solanaceae crops such as tomato, potato, chili pepper, and tobacco, all of which originated in South America and are cultivated worldwide, eggplant (Solanum melongena L.) is indigenous to the Old World and in this respect it is phylogenetically unique. To broaden our knowledge of the genomic nature of solanaceous plants further, we dissected the eggplant genome and built a draft genome dataset with 33,873 scaffolds termed SME_r2.5.1 that covers 833.1 Mb, ca. 74% of the eggplant genome. Approximately 90% of the gene space was estimated to be covered by SME_r2.5.1 and 85,446 genes were predicted in the genome. Clustering analysis of the predicted genes of eggplant along with the genes of three other solanaceous plants as well as Arabidopsis thaliana revealed that, of the 35,000 clusters generated, 4,018 were exclusively composed of eggplant genes that would perhaps confer eggplant-specific traits. Between eggplant and tomato, 16,573 pairs of genes were deduced to be orthologous, and 9,489 eggplant scaffolds could be mapped onto the tomato genome. Furthermore, 56 conserved synteny blocks were identified between the two species. The detailed comparative analysis of the eggplant and tomato genomes will facilitate our understanding of the genomic architecture of solanaceous plants, which will contribute to cultivation and further utilization of these crops.


Theoretical and Applied Genetics | 2008

Novel QTLs for photoperiodic flowering revealed by using reciprocal backcross inbred lines from crosses between japonica rice cultivars

Kazuki Matsubara; Izumi Kono; Kiyosumi Hori; Yasunori Nonoue; Nozomi Ono; Ayahiko Shomura; Tatsumi Mizubayashi; S. Yamamoto; Utako Yamanouchi; Kenta Shirasawa; Takeshi Nishio; Masahiro Yano

The rice japonica cultivars Nipponbare and Koshihikari differ in heading date and response of heading to photoperiod (photoperiod sensitivity). Using simple sequence repeat (SSR) and single nucleotide polymorphism (SNP) markers, we conducted quantitative trait locus (QTL) analyses for heading date in a set of reciprocal backcross inbred lines (BILs) from crosses between Nipponbare and Koshihikari. Under natural-day conditions, transgressive segregation in days to heading (DTH) toward both early and late heading was observed in both BIL populations. QTL analyses revealed that two QTLs—on chromosomes 3 and 6—were involved in the difference in heading date between the parental cultivars. The Nipponbare allele at the QTLs on chromosomes 3 and 6 showed, respectively, increasing and decreasing effects on DTH in both BIL populations. The transgressive segregation observed in the BILs could be accounted for mainly by the complementary action of a set of alleles with opposing effects. Both QTLs were finely mapped as single Mendelian factors in secondary mapping populations (BC2F2 plants/BC2F3 lines). The QTL on chromosome 3 was mapped in the 1,140-kb interval between 94O03-4 (SSR) and OJ21G19-4 (SNP) and was designated Hd16. The QTL on chromosome 6 was mapped in the 328-kb interval between P548D347 (SSR) and 0007O20 (SSR) and was designated Hd17. Both Hd16 and Hd17 were involved in photoperiod sensitivity, as revealed by observation of the DTH of nearly isogenic lines of Nipponbare under short- and long-day conditions, suggesting that allelic differences in both Hd16 and Hd17 account for most of the difference in photoperiod sensitivity between the parental cultivars.


Molecular Breeding | 2012

Large-scale development of expressed sequence tag-derived simple sequence repeat markers and diversity analysis in Arachis spp.

Padmalatha Koilkonda; Shusei Sato; Satoshi Tabata; Kenta Shirasawa; Hideki Hirakawa; Hiroe Sakai; Shigemi Sasamoto; Akiko Watanabe; Tsuyuko Wada; Yoshie Kishida; Hisano Tsuruoka; Tsunakazu Fujishiro; Manabu Yamada; Mitsuyo Kohara; Shigeru Suzuki; Makoto Hasegawa; Hiroyuki Kiyoshima; Sachiko Isobe

Large-scale development of expressed sequence tag simple sequence repeat (EST-SSR) markers was performed in peanut (Arachis hypogaea L.) to obtain more informative genetic markers. A total of 10,102 potential non-redundant EST sequences, including 3,445 contigs and 6,657 singletons, were generated from cDNA libraries of the gynophore, roots, leaves and seedlings. A total of 3,187 primer pairs were designed on flanking regions of SSRs, some of which allowed one and two base mismatches. Among the 3,187 markers generated, 2,540 (80%) were trinucleotide repeats, 302 (9%) were dinucleotide repeats, and 345 (11%) were tetranucleotide repeats. Pre-polymorphic analyses of 24 Arachis accessions were performed using 10% polyacrylamide gels. A total of 1,571 EST-SSR markers showing clear polymorphisms were selected for further polymorphic analysis with a Fluoro-fragment Analyzer. The 16 Arachis accessions examined included cultivated peanut varieties as well as diploid species with the A or B genome. Altogether 1,281 (81.5%) of the 1,571 markers were polymorphic among the 16 accessions, and 366 (23.3%) were polymorphic among the 12 cultivated varieties. Diversity analysis was performed and the genotypes of all 16 Arachis accessions showed similarity coefficients ranging from 0.37 to 0.97.


BMC Plant Biology | 2012

In silico polymorphism analysis for the development of simple sequence repeat and transposon markers and construction of linkage map in cultivated peanut

Kenta Shirasawa; Padmalatha Koilkonda; Koh Aoki; Hideki Hirakawa; Satoshi Tabata; Manabu Watanabe; Makoto Hasegawa; Hiroyuki Kiyoshima; Shigeru Suzuki; Chikara Kuwata; Yoshiki Naito; Tsutomu Kuboyama; Akihiro Nakaya; Shigemi Sasamoto; Akiko Watanabe; Midori Kato; Kumiko Kawashima; Yoshie Kishida; Mitsuyo Kohara; Atsushi Kurabayashi; Chika Takahashi; Hisano Tsuruoka; Tsuyuko Wada; Sachiko Isobe

BackgroundPeanut (Arachis hypogaea) is an autogamous allotetraploid legume (2n = 4x = 40) that is widely cultivated as a food and oil crop. More than 6,000 DNA markers have been developed in Arachis spp., but high-density linkage maps useful for genetics, genomics, and breeding have not been constructed due to extremely low genetic diversity. Polymorphic marker loci are useful for the construction of such high-density linkage maps. The present study used in silico analysis to develop simple sequence repeat-based and transposon-based markers.ResultsThe use of in silico analysis increased the efficiency of polymorphic marker development by more than 3-fold. In total, 926 (34.2%) of 2,702 markers showed polymorphisms between parental lines of the mapping population. Linkage analysis of the 926 markers along with 253 polymorphic markers selected from 4,449 published markers generated 21 linkage groups covering 2,166.4 cM with 1,114 loci. Based on the map thus produced, 23 quantitative trait loci (QTLs) for 15 agronomical traits were detected. Another linkage map with 326 loci was also constructed and revealed a relationship between the genotypes of the FAD2 genes and the ratio of oleic/linoleic acid in peanut seed.ConclusionsIn silico analysis of polymorphisms increased the efficiency of polymorphic marker development, and contributed to the construction of high-density linkage maps in cultivated peanut. The resultant maps were applicable to QTL analysis. Marker subsets and linkage maps developed in this study should be useful for genetics, genomics, and breeding in Arachis. The data are available at the Kazusa DNA Marker Database (http://marker.kazusa.or.jp).


DNA Research | 2011

An EST-SSR Linkage Map of Raphanus sativus and Comparative Genomics of the Brassicaceae

Kenta Shirasawa; Maki Oyama; Hideki Hirakawa; Shusei Sato; Satoshi Tabata; Takashi Fujioka; Chiaki Kimizuka-Takagi; Shigemi Sasamoto; Akiko Watanabe; Midori Kato; Yoshie Kishida; Mitsuyo Kohara; Chika Takahashi; Hisano Tsuruoka; Tsuyuko Wada; Takako Sakai; Sachiko Isobe

Raphanus sativus (2n = 2x = 18) is a widely cultivated member of the family Brassicaceae, for which genomic resources are available only to a limited extent in comparison to many other members of the family. To promote more genetic and genomic studies and to enhance breeding programmes of R. sativus, we have prepared genetic resources such as complementary DNA libraries, expressed sequences tags (ESTs), simple sequence repeat (SSR) markers and a genetic linkage map. A total of 26 606 ESTs have been collected from seedlings, roots, leaves, and flowers, and clustered into 10 381 unigenes. Similarities were observed between the expression patterns of transcripts from R. sativus and those from representative members of the genera Arabidopsis and Brassica, indicating their functional relatedness. The EST sequence data were used to design 3800 SSR markers and consequently 630 polymorphic SSR loci and 213 reported marker loci have been mapped onto nine linkage groups, covering 1129.2 cM with an average distance of 1.3 cM between loci. Comparison of the mapped EST-SSR marker positions in R. sativus with the genome sequence of A. thaliana indicated that the Brassicaceae members have evolved from a common ancestor. It appears that genomic fragments corresponding to those of A. thaliana have been doubled and tripled in R. sativus. The genetic map developed here is expected to provide a standard map for the genetics, genomics, and molecular breeding of R. sativus as well as of related species. The resources are available at http://marker.kazusa.or.jp/Daikon.

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Sachiko Isobe

Commonwealth Scientific and Industrial Research Organisation

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Satoshi Tabata

Spanish National Research Council

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Tsunakazu Fujishiro

National Institute of Genetics

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Hiroyuki Fukuoka

National Agriculture and Food Research Organization

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