Detail
Article
Online article
FT
Medvik - BMC
  • Something wrong with this record ?

An advanced reference genome of Trifolium subterraneum L. reveals genes related to agronomic performance

P. Kaur, PE. Bayer, Z. Milec, J. Vrána, Y. Yuan, R. Appels, D. Edwards, J. Batley, P. Nichols, W. Erskine, J. Doležel,

. 2017 ; 15 (8) : 1034-1046. [pub] 20170323

Language English Country Great Britain

Document type Journal Article

Subterranean clover is an important annual forage legume, whose diploidy and inbreeding nature make it an ideal model for genomic analysis in Trifolium. We reported a draft genome assembly of the subterranean clover TSUd_r1.1. Here we evaluate genome mapping on nanochannel arrays and generation of a transcriptome atlas across tissues to advance the assembly and gene annotation. Using a BioNano-based assembly spanning 512 Mb (93% genome coverage), we validated the draft assembly, anchored unplaced contigs and resolved misassemblies. Multiple contigs (264) from the draft assembly coalesced into 97 super-scaffolds (43% of genome). Sequences longer than >1 Mb increased from 40 to 189 Mb giving 1.4-fold increase in N50 with total genome in pseudomolecules improved from 73 to 80%. The advanced assembly was re-annotated using transcriptome atlas data to contain 31 272 protein-coding genes capturing >96% of the gene content. Functional characterization and GO enrichment confirmed gene expression for response to water deprivation, flavonoid biosynthesis and embryo development ending in seed dormancy, reflecting adaptation to the harsh Mediterranean environment. Comparative analyses across Papilionoideae identified 24 893 Trifolium-specific and 6325 subterranean-clover-specific genes that could be mined further for traits such as geocarpy and grazing tolerance. Eight key traits, including persistence, improved livestock health by isoflavonoid production in addition to important agro-morphological traits, were fine-mapped on the high-density SNP linkage map anchored to the assembly. This new genomic information is crucial to identify loci governing traits allowing marker-assisted breeding, comparative mapping and identification of tissue-specific gene promoters for biotechnological improvement of forage legumes.

References provided by Crossref.org

000      
00000naa a2200000 a 4500
001      
bmc18016795
003      
CZ-PrNML
005      
20180517092213.0
007      
ta
008      
180515s2017 xxk f 000 0|eng||
009      
AR
024    7_
$a 10.1111/pbi.12697 $2 doi
035    __
$a (PubMed)28111887
040    __
$a ABA008 $b cze $d ABA008 $e AACR2
041    0_
$a eng
044    __
$a xxk
100    1_
$a Kaur, Parwinder $u Centre for Plant Genetics and Breeding and Institute of Agriculture, The University of Western Australia, Crawley, WA, Australia.
245    13
$a An advanced reference genome of Trifolium subterraneum L. reveals genes related to agronomic performance / $c P. Kaur, PE. Bayer, Z. Milec, J. Vrána, Y. Yuan, R. Appels, D. Edwards, J. Batley, P. Nichols, W. Erskine, J. Doležel,
520    9_
$a Subterranean clover is an important annual forage legume, whose diploidy and inbreeding nature make it an ideal model for genomic analysis in Trifolium. We reported a draft genome assembly of the subterranean clover TSUd_r1.1. Here we evaluate genome mapping on nanochannel arrays and generation of a transcriptome atlas across tissues to advance the assembly and gene annotation. Using a BioNano-based assembly spanning 512 Mb (93% genome coverage), we validated the draft assembly, anchored unplaced contigs and resolved misassemblies. Multiple contigs (264) from the draft assembly coalesced into 97 super-scaffolds (43% of genome). Sequences longer than >1 Mb increased from 40 to 189 Mb giving 1.4-fold increase in N50 with total genome in pseudomolecules improved from 73 to 80%. The advanced assembly was re-annotated using transcriptome atlas data to contain 31 272 protein-coding genes capturing >96% of the gene content. Functional characterization and GO enrichment confirmed gene expression for response to water deprivation, flavonoid biosynthesis and embryo development ending in seed dormancy, reflecting adaptation to the harsh Mediterranean environment. Comparative analyses across Papilionoideae identified 24 893 Trifolium-specific and 6325 subterranean-clover-specific genes that could be mined further for traits such as geocarpy and grazing tolerance. Eight key traits, including persistence, improved livestock health by isoflavonoid production in addition to important agro-morphological traits, were fine-mapped on the high-density SNP linkage map anchored to the assembly. This new genomic information is crucial to identify loci governing traits allowing marker-assisted breeding, comparative mapping and identification of tissue-specific gene promoters for biotechnological improvement of forage legumes.
650    _2
$a genom rostlinný $x genetika $7 D018745
650    _2
$a genomika $x metody $7 D023281
650    _2
$a sekvenční analýza DNA $x metody $7 D017422
650    _2
$a Trifolium $x genetika $7 D029921
655    _2
$a časopisecké články $7 D016428
700    1_
$a Bayer, Philipp E $u School of Plant Biology and Institute of Agriculture, The University of Western Australia, Crawley, WA, Australia.
700    1_
$a Milec, Zbyněk $u Institute of Experimental Botany, Centre of the Region Haná for Biotechnological and Agricultural Research, Olomouc, Czech Republic.
700    1_
$a Vrána, Jan $u Institute of Experimental Botany, Centre of the Region Haná for Biotechnological and Agricultural Research, Olomouc, Czech Republic.
700    1_
$a Yuan, Yuxuan $u School of Plant Biology and Institute of Agriculture, The University of Western Australia, Crawley, WA, Australia.
700    1_
$a Appels, Rudi $u Murdoch University, Murdoch, WA, Australia.
700    1_
$a Edwards, David $u School of Plant Biology and Institute of Agriculture, The University of Western Australia, Crawley, WA, Australia.
700    1_
$a Batley, Jacqueline $u School of Plant Biology and Institute of Agriculture, The University of Western Australia, Crawley, WA, Australia.
700    1_
$a Nichols, Phillip $u School of Plant Biology and Institute of Agriculture, The University of Western Australia, Crawley, WA, Australia. Department of Agriculture and Food Western Australia, South Perth, WA, Australia.
700    1_
$a Erskine, William $u Centre for Plant Genetics and Breeding and Institute of Agriculture, The University of Western Australia, Crawley, WA, Australia.
700    1_
$a Doležel, Jaroslav $u Institute of Experimental Botany, Centre of the Region Haná for Biotechnological and Agricultural Research, Olomouc, Czech Republic.
773    0_
$w MED00007694 $t Plant biotechnology journal $x 1467-7652 $g Roč. 15, č. 8 (2017), s. 1034-1046
856    41
$u https://pubmed.ncbi.nlm.nih.gov/28111887 $y Pubmed
910    __
$a ABA008 $b sig $c sign $y a $z 0
990    __
$a 20180515 $b ABA008
991    __
$a 20180517092350 $b ABA008
999    __
$a ok $b bmc $g 1300419 $s 1013635
BAS    __
$a 3
BAS    __
$a PreBMC
BMC    __
$a 2017 $b 15 $c 8 $d 1034-1046 $e 20170323 $i 1467-7652 $m Plant biotechnology journal $n Plant Biotechnol J $x MED00007694
LZP    __
$a Pubmed-20180515

Find record

Citation metrics

Loading data ...

Archiving options

Loading data ...