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Sequencing of a Wild Apple (Malus baccata) Genome Unravels the Differences Between Cultivated and Wild Apple Species Regarding Disease Resistance and Cold Tolerance

Malus baccata is one of four wild apple species that can hybridize with the cultivated apple species (Malus domestica). It is widely used in high-latitude apple-producing areas as a rootstock and breeding resource because of its disease resistance, and cold tolerance. A lack of a reference genome ha...

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Autores principales: Chen, Xilong, Li, Shiming, Zhang, Dong, Han, Mingyu, Jin, Xin, Zhao, Caipin, Wang, Songbo, Xing, Libo, Ma, Juanjuan, Ji, Jingjing, An, Na
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Genetics Society of America 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6643876/
https://www.ncbi.nlm.nih.gov/pubmed/31126974
http://dx.doi.org/10.1534/g3.119.400245
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author Chen, Xilong
Li, Shiming
Zhang, Dong
Han, Mingyu
Jin, Xin
Zhao, Caipin
Wang, Songbo
Xing, Libo
Ma, Juanjuan
Ji, Jingjing
An, Na
author_facet Chen, Xilong
Li, Shiming
Zhang, Dong
Han, Mingyu
Jin, Xin
Zhao, Caipin
Wang, Songbo
Xing, Libo
Ma, Juanjuan
Ji, Jingjing
An, Na
author_sort Chen, Xilong
collection PubMed
description Malus baccata is one of four wild apple species that can hybridize with the cultivated apple species (Malus domestica). It is widely used in high-latitude apple-producing areas as a rootstock and breeding resource because of its disease resistance, and cold tolerance. A lack of a reference genome has limited the application of M. baccata for apple breeding. We present a draft reference genome for M. baccata. The assembled sequence consisting of 665 Mb, with a scaffold N50 value of 452 kb, included transposable elements (413 Mb) and 46,114 high-quality protein-coding genes. According to a genetic map derived from 390 sibling lines, 72% of the assembly and 85% of the putative genes were anchored to 17 linkage groups. Many of the M. baccata genes under positive selection pressure were associated with plant–pathogen interaction pathways. We identified 2,345 Transcription factor-encoding genes in 58 families in the M. baccata genome. Genes related to disease defense and cold tolerance were also identified. A total of 462 putative nucleotide-binding site (NBS)-leucine-rich-repeat (LRR) genes, 177 Receptor-like kinase (RLK) and 51 receptor-like proteins (RLP) genes were identified in this genome assembly. The M. baccata genome contained 3978 cold-regulated genes, and 50% of these gene promoter containing DREB motif which can be induced by CBF gene. We herein present the first M. baccata genome assembly, which may be useful for exploring genetic variations in diverse apple germplasm, and for facilitating marker-assisted breeding of new apple cultivars exhibiting resistance to disease and cold stress.
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spelling pubmed-66438762019-07-25 Sequencing of a Wild Apple (Malus baccata) Genome Unravels the Differences Between Cultivated and Wild Apple Species Regarding Disease Resistance and Cold Tolerance Chen, Xilong Li, Shiming Zhang, Dong Han, Mingyu Jin, Xin Zhao, Caipin Wang, Songbo Xing, Libo Ma, Juanjuan Ji, Jingjing An, Na G3 (Bethesda) Genome Report Malus baccata is one of four wild apple species that can hybridize with the cultivated apple species (Malus domestica). It is widely used in high-latitude apple-producing areas as a rootstock and breeding resource because of its disease resistance, and cold tolerance. A lack of a reference genome has limited the application of M. baccata for apple breeding. We present a draft reference genome for M. baccata. The assembled sequence consisting of 665 Mb, with a scaffold N50 value of 452 kb, included transposable elements (413 Mb) and 46,114 high-quality protein-coding genes. According to a genetic map derived from 390 sibling lines, 72% of the assembly and 85% of the putative genes were anchored to 17 linkage groups. Many of the M. baccata genes under positive selection pressure were associated with plant–pathogen interaction pathways. We identified 2,345 Transcription factor-encoding genes in 58 families in the M. baccata genome. Genes related to disease defense and cold tolerance were also identified. A total of 462 putative nucleotide-binding site (NBS)-leucine-rich-repeat (LRR) genes, 177 Receptor-like kinase (RLK) and 51 receptor-like proteins (RLP) genes were identified in this genome assembly. The M. baccata genome contained 3978 cold-regulated genes, and 50% of these gene promoter containing DREB motif which can be induced by CBF gene. We herein present the first M. baccata genome assembly, which may be useful for exploring genetic variations in diverse apple germplasm, and for facilitating marker-assisted breeding of new apple cultivars exhibiting resistance to disease and cold stress. Genetics Society of America 2019-05-24 /pmc/articles/PMC6643876/ /pubmed/31126974 http://dx.doi.org/10.1534/g3.119.400245 Text en Copyright © 2019 Chen et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Genome Report
Chen, Xilong
Li, Shiming
Zhang, Dong
Han, Mingyu
Jin, Xin
Zhao, Caipin
Wang, Songbo
Xing, Libo
Ma, Juanjuan
Ji, Jingjing
An, Na
Sequencing of a Wild Apple (Malus baccata) Genome Unravels the Differences Between Cultivated and Wild Apple Species Regarding Disease Resistance and Cold Tolerance
title Sequencing of a Wild Apple (Malus baccata) Genome Unravels the Differences Between Cultivated and Wild Apple Species Regarding Disease Resistance and Cold Tolerance
title_full Sequencing of a Wild Apple (Malus baccata) Genome Unravels the Differences Between Cultivated and Wild Apple Species Regarding Disease Resistance and Cold Tolerance
title_fullStr Sequencing of a Wild Apple (Malus baccata) Genome Unravels the Differences Between Cultivated and Wild Apple Species Regarding Disease Resistance and Cold Tolerance
title_full_unstemmed Sequencing of a Wild Apple (Malus baccata) Genome Unravels the Differences Between Cultivated and Wild Apple Species Regarding Disease Resistance and Cold Tolerance
title_short Sequencing of a Wild Apple (Malus baccata) Genome Unravels the Differences Between Cultivated and Wild Apple Species Regarding Disease Resistance and Cold Tolerance
title_sort sequencing of a wild apple (malus baccata) genome unravels the differences between cultivated and wild apple species regarding disease resistance and cold tolerance
topic Genome Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6643876/
https://www.ncbi.nlm.nih.gov/pubmed/31126974
http://dx.doi.org/10.1534/g3.119.400245
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