|Table of Contents|

Advances and Prospect in Gene Mining and Molecular Breeding on Mosaic Virus Disease Resistance of Soybean(PDF)

《大豆科学》[ISSN:1000-9841/CN:23-1227/S]

Issue:
2022年03期
Page:
363-370
Research Field:
Publishing date:

Info

Title:
Advances and Prospect in Gene Mining and Molecular Breeding on Mosaic Virus Disease Resistance of Soybean
Author(s):
ZHANG Xue12 LUO Jun-jie12 OU Qiao-ming12 HE Rui2 LI Lan-lan12 QI Xu-sheng3
(1.College of Resources and Environment, Gansu Agricultural University, Lanzhou 730070, China; 2.Institute of Biotechnology, Gansu Academy of Agricultural Sciences, Lanzhou 730070, China; 3.Crop Research Institute, Gansu Academy of Agricultural Sciences, Lanzhou 730070, China)
Keywords:
soybean soybean mosaic virus resistance gene molecular breeding
PACS:
-
DOI:
10.11861/j.issn.1000-9841.2022.03.0363
Abstract:
As a global disease, soybean mosaic virus (SMV) seriously restricts the high and stable yield and quality of soybean. It is an effective way to control the harm of SMV by exploring and utilizing the excellent germplasm (genes) resources of SMV resistance and improving the selection efficiency of resistant varieties. However, at present, the characteristics, strain classification, resistance identification, genetic characteristics and resistance gene discovery of SMV are widely reported in research reports in China and abroad, and there is a lack of systematic discussion, analysis and combing on the related research status, hot issues and progress. In view of the above problems, combined with the latest research progress of soybean SMV at home and abroad, this paper reviewed and analyzed the research status, the latest research progress and trends, and the existing problems from the aspects of the characteristics of soybean mosaic virus, strain division and harm, the location of resistance genes, germplasm (gene) resource identification, and molecular marker-assisted breeding. In addition, this paper expounded on the hot issues such as the construction of germplasm resource genotype information data platform supporting soybean molecular marker-assisted breeding, in order to provide information support and reference for promoting the process of soybean molecular breeding and the construction of its innovation system.

References:

[1]李凯, 任锐, 王涛, 等. 大豆对大豆花叶病毒SC18株系的抗性遗传和基因定位[J]. 大豆科学, 2017, 36(2): 187-192. (LI K, REN R, WANG T, et al. Inheritance and gene mapping of soybean resistance to soybean mosaic virus SC18[J]. Soybean Science, 2017, 36(2): 187-192.)[2]KYUNGJUNG M, SOON-CHUN J, KYUJUNG V, et al. Marker-assisted identification of resistance genes to soybean mosaic virus in soybean lines[J].Euphytica, 2009, 169(11): 375-385.[3]DANIEL 〖KG(1mm〗C I, ALEXANDER E L, NAMHEE J, et al. Identifi-cation of haplotypes at the Rsv4 genomic region in soybean associated with durable resistance to soybean mosaic virus[J]. Theoretical and Applied Genetics, 2016, 129(9): 453-468.[4]任毅, 颜安, 夏先春, 等. 小麦种质资源萌发期抗旱性鉴定及评价[C]//中国作物学会2018学术年会论文摘要集. 江苏: 中国作物学会, 2018: 1. (REN Y, YAN A, XIA X C, et al. Identification and evaluation of drought resistance of wheat germplasm resources at germination stage[C]//Abstracts of papers of 2018 academic annual meeting of Chinese Crop Society. Jiangsu: Chinese Crop Society, 2018: 1.)[5]ANTWI-BOASIAKO A, ZHENG L Y, BEGUM N, et al. Progress towards germplasm evaluation and genetic improvement for resistance to Sclerotinia white mold in soybean [J].Euphytica, 2021, 217(12): 178-186.[6]JEONG S C, ILUT D, ALEXANDER L, et al. Identification of haplotypes at the Rsv4 region associated with resistance to Soybean mosaic virus in soybean[C]//第七届国际作物科学大会摘要集. 北京: 中国农业科学院, 中国作物学会, 2016: 1.(JEONG S C, LLUT D, ALEXANDER L, et al. Identification of haplotypes at the Rsv4 region associated with resistance to Soybean mosaic virus in soybean[C]//Abstracts of papers of 7th International Crop Science Congress. Beijing: Chinese Academy of Agricultural Sciences, Chinese Crop Society, 2016: 1.)[7]HAJIMORAD M R, DOMIER L L, TOLIN S A, et al. Soybean mosaic virus: a successful potyvirus with a wide distribution but restricted natural host range[J]. Molecular Plant Pathology, 2018, 19(7): 1563-1579.[8]马娜, 栾鹤翔, 沈颖超, 等. 大豆花叶病毒侵染大豆抗感近等基因系后叶片超微结构变化的比较[J]. 大豆科学, 2016, 35(2): 280-284. (MA N, LUAN H X, SHEN Y C, et al. Comparison of ultrastructural changes in leaves of soybean near isogenic lines infected by soybean mosaic virus[J]. Soybean Science, 2016, 35(2): 280-284.) [9]WIDYASARI K, ALAZEM M, KIM K H. Soybean resistance to soybean mosaic virus[J]. Plants, 2020, 9(2): 219.[10]CHO E K, GOODMAN R M. Strains of soybean mosaic virus classification based on virulence in resistant soybean cultivars[J]. Phytopathology, 1979, 69(5): 467-470.[11]TAKAHASHI K, IIZUKA N. The distinction of the soybean viral disease[J]. Plant Protection, 1965, 19(8): 339-342.[12]李凯.中国南方大豆花叶病毒株系的鉴定、抗性遗传和抗性基因的定位[D]. 南京: 南京农业大学, 2009. (LI K. Identification, inheritance and mapping of resistance genes of soybean mosaic virus in southern China[D]. Nanjing: Nanjing Agricultural University, 2009.)[13]战勇.黄淮地区大豆花叶病毒的生物学检测、株系鉴定及大豆抗性的遗传与基因定位[D]. 南京:南京农业大学, 2003. (ZHAN Y. Biological detection and line identification of soybean mosaic virus in Huanghuai area and genetic and gene mapping of soybean resistance[D]. Nanjing: Nanjing Agricultural University, 2003.)[14]郑翠明, 常汝镇, 邱丽娟. 大豆对 SMV3 号株系的抗性遗传分析及抗性基因的RAPD标记研究[J]. 中国农业科学, 2001, 34(1): 14-18. (ZHENG C M, CHANG R Z, QIU L J. Genetic analysis of soybean resistance to SMV3 strain and RAPD markers of resistance genes[J]. Scientia Agricultura Sinica, 2001, 34(1): 14-18.)[15]栾晓燕, 李宗飞, 满为群, 等. 与大豆SMV3号株系抗性相关的分子标记的鉴定[J]. 分子植物育种, 2006, 4(6): 841-845. (LUAN X Y, LI Z F, MAN W Q, et al. Identification of molecular markers related to resistance of soybean SMV3[J]. Molecular Plant Breeding, 2006, 4(6) :841-845.) [16]HOSSAIN M, AKAMATSU H, MORISHITA M, et al. Molecular mapping of Asian soybean rust resistance in soybean landraces PI594767A, PI587905 and PI416764[J]. Plant Pathology, 2015, 3(64): 147-156.[17]吴思思, 李文龙, 肖东强, 等. 大豆不同花叶病毒抗性品种胼胝质荧光标记初探[J]. 植物遗传资源学报, 2013, 14(1): 132-140. (WU S S, LI W L, XIAO D Q. Preliminary study on fluorescent labeling of callose in different soybean mosaic virus resistant varieties[J]. Journal of Plant Genetic Resources, 2013, 14(1): 132-140.)[18]廖林, 刘玉芝, 孙大敏, 等. 大豆花叶病的抗性遗传I. 几个引用抗原对东北大豆花叶病毒二号株的抗性遗传[J]. 遗传学报, 1994, 21(5): 403-408. (LIAO L, LIU Y Z, SUN D M, et al. Inheritance of resistance to soybean mosaic virus I. Inheritance of resistance of several reference antigens to northeast soybean mosaic virus strain II[J]. Genetics, 1994, 21(5): 403-408.)[19]YU Y G, SAGHAI MAROOF M A, BUSS G R, et al. RFLP and microsatellite mapping of a gene for soybean mosaic virus resistance[J]. Phytopathology, 1994, 84(1): 60-64.[20]白丽, 李海朝, 王大刚, 等. 大豆对大豆花叶病毒SC-11株系抗性的遗传及基因定位[J]. 大豆科学, 2009, 28(1): 1-6. (BAI L, LI H C, WANG D G, et al. Inheritance and gene mapping of soybean resistance to soybean mosaic virus SC-11[J]. Soybean Science, 2009, 28(1): 1-6.)[21]滕卫丽, 李文滨, 邱丽娟, 等. 大豆SMV3号株系抗性基因的SSR标记[J]. 大豆科学, 2006, 24(3): 244-249. (TENG W L, LI W B, QIU L J, et al. SSR markers of resistance genes in soybean SMV3 line[J]. Soybean Science, 2006, 24(3): 244-249.)[22]CHEN P Y,BUSS G R , ROANE C W, et al. Allelism among genes for resistance to soybean mosaic virus in strain-differential soybean cultivars[J]. Crop Science, 1991, 31(2): 305-309.[23]JEONG S C, KRISTIPATI S, HAYES A J, et al. Genetic and sequence analysis of markers tightly linked to the soybean mosaic virus resistance gene, Rsv3[J]. Crop Science, 2002, 42(1): 654-678.[24]KARTHIKEYAN A, LI K, JIANG H, et al. Inheritance fine-mapping and candidate gene analyses of resistance to soybean mosaic virus strain SC5 in soybean[J]. Molecular Genetics & Genomics, 2017, 292(4): 811-822.[25]李春燕, 智海剑. 大豆对大豆花叶病毒SC10株系抗性的遗传和抗性基因的定位及标记辅助选择[C]//中国作物学会大豆专业委员会第23届全国大豆科研生产研讨会论文摘要集,大庆: 中国作物学会, 2012: 1. (LI C Y, ZHI H J. Inheritance of soybean resistance to soybean mosaic virus SC10 strains and mapping of resistant genes and marker assistant selection[C]//Summary of papers from the 23rd national soybean scientific research and production symposium of the Chinese crop association, daqing City、 Daqing: Chinese Crop Association, 2012: 1.)[26]LI K, REN R, ADHIMOOLAM K, et al. Genetic analysis and identification of two soybean mosaic virus resistance genes in soybean [Glycine max (L.)][J]. Plant Breeding, 2015, 134(6): 684-695.[27]FU S X, ZHAN Y, ZHI H J, et al. Mapping of SMV resistance gene Rsc-7 by SSR markers in soybean[J]. Genetic, 2006, 128(1): 63-69. [28]ZHAO L, WANG D G, ZHANG H Y, et al. Fine mapping of the Rsc8 locus and expression analysis of candidate SMV resistance genes in soybean[J]. Plant Breeding, 2016, 135(6): 701-706.[29]郭东全, 王延伟, 智海剑, 等.大豆对SMV SC13株系群的抗性遗传及基因定位的研究[J]. 大豆科学, 2007, 26(1): 21-24.(GUO D Q, WANG Y W, ZHI H J, et al. Inheritance and gene mapping of soybean resistance to SMV SC13 strain group[J]. Soybean Science, 2007, 26(1): 21-24.)[30]MA Y, WANG D G, LI H C, et al. Fine mapping of the Rsc 14Q locus for resistance to soybean mosaic virus in soybean[J]. Euphytica, 2011, 181(1): 127-135.[31]MA Y, LI H C, WANG D G, et al. Molecular mapping and marker assisted selection of soybean mosaic virus resistance gene RSC12 in soybean[J]. Legume Genomics & Genetics, 2010, 1(8): 41-46.[32]KARTHIKEYAN A, LI K, LI C, et al. Fine-mapping andidentifying candidate genes conferring resistance to soybean mosaic virus strain SC20 in soybean[J]. Theoretical & Applied Genetics, 2018, 131(2): 461-476.[33]YANG Y Q, ZHENG G J. Genetic analysis and mapping of gene for resistance to multiple strains of soybean mosaic virus in a single resistant soybean accession PI96983[J]. Theoretical & Applied Genetics, 2013, 126(7): 1783-1791. [34]HAYES A J, MA G R, BUSS G R, et al. Molecular marker mapping of Rsv4 a gene conferring resistance to all known strains of soybean mosaic virus[J]. Crop Science, 2000, 40(5): 1434-1437.[35]东方阳. 大豆对SMV抗病遗传分析和RAPD标记研究[D] . 南京: 南京农业大学, 1999. (DONGFANG Y. Genetic analysis and RAPD markers of soybean resistance to SMV[D]. Nanjing: Nanjing Agricultural University, 1999.)[36]王永军, 东方阳, 王修强, 等. 大豆5个花叶病毒株系抗性基因的定位[J]. 遗传学报, 2004, 31(1): 87-90. (WANG Y J, DONGFANG Y, WANG X Q, et al. Mapping of resistance genes in five soybean mosaic virus strains[J]. Journal of Genetics, 2004, 31(1): 87-90.)[37]卢双勇, 韩英鹏, 滕卫丽, 等. 大豆抗花叶病毒及耐疫霉根腐病的SSR标记分析[J]. 大豆科学, 2008, 27(5): 746-750. (LU S Y, HAN Y P, TENG W L, et al. Analysis of soybean resistance to mosaic virus and phytophthora root rot by SSR markers[J]. Soybean Science, 2008, 27(5): 746-750.)[38]LI H C, ZHI H J, GAI J Y, et al. Inheritance and gene mapping of resistance to soybean mosaic virus strain SC14 in soybean[J]. Journal of Integrative Plant Biology, 2006, 48(12): 1466-1472.[39]MA Y, WANG D G, LI H C, et al. Fine mapping of the RSC 14Q locus for resistance to soybean mosaic virus in soybean[J]. Euphytica, 2011, 181(1): 127-135.[40]REN R, LIU S C, ADHIMOOL A M K, et al. Fine-mapping and identification of a novel locus Rsc 15 underlying soybean resistance to soybean mosaic virus[J].Theoretical & Applied Genetics, 2017, 130(11): 2395-2410.[41]MA F F, WU X Y, CHEN Y X, et al. Fine mapping of the Rsv1-h gene in the soybean cultivar Suweon 97 that confers resistance to two Chinese strains of the soybean mosaic virus[J]. Theoretical and Applied Genetics, 2016, 129(11): 2227-2236.[42]张明厚, 魏培文, 张春泉. 我国东北部五省市SMV对大豆主栽品种的毒力测定[J]. 植物病理学报, 1998(3): 46-51. (ZHANG H M, WEI P W, ZHANG C Q. Toxicity of SMV to main soybean cultivars in five provinces of northeast China[J]. Plant Pathology Report, 1998(3): 46-51.)[43]刘佳, 衣志刚, 董志敏, 等. 2016-2019年北方春大豆参试品种(系)花叶病和灰斑病抗性鉴定及分析[J]. 大豆科学, 2021, 40(1): 130-141. (LIU J, YI Z G, DONG Z M, et al. Resistance identification and analysis of spring soybean varieties (lines) to mosaic and grey spot disease in northern China from 2016 to 2019[J]. Soybean Science, 2021, 40(1): 130-141.)[44]王传之, 李智, 王敏, 等. 利用MAS进行大豆花叶病毒SC7抗性鉴定及分子育种初探[J]. 大豆科技, 2019(5): 10-14. (WANG C Z, LI Z, WANG M, et al. Resistance identification and molecular breeding of soybean mosaic virus SC7 by MAS[J]. Soybean Science & Technology, 2019(5): 10-14.)[45]谭千军,吴雨珊,刘卫国,等.西南夏大豆种质资源的筛选与鉴定[J]. 大豆科学, 2015, 34(6): 921-926. (TAN Q J, WU Y S, LIU W G, et al. Screening and identification of germplasm resources of southwest summer soybean[J]. Soybean Science, 2015, 34(6): 921-926.) [46]陈云霞. 中国野生大豆中大豆花叶病毒的鉴定及演化分析[D]. 南京:南京农业大学, 2017. (CHEN Y X. Identification and evolution of soybean mosaic virus in Chinese wild soybean[D]. Nanjing: Nanjing Agricultural University, 2017.)[47]陈爱国, 王岩, 孟未来, 等. 不同原生境来源野生大豆抗花叶病毒(SMV)综合评价及聚类分析[J]. 辽宁农业科学, 2020 (1): 7-13. (CHEN A G, WANG Y, MENG W L, et al. Comprehensive evaluation and cluster analysis of resistance to mosaic virus (SMV) of wild soybean from different habitats[J]. Liaoning Agricultural Sciences, 2020(1): 7-13.) [48]王大刚. 大豆对大豆花叶病毒抗性遗传、抗性基因精细定位及表达分析[D]. 南京: 南京农业大学, 2010. (WANG D G. Inheritance of soybean resistance to soybean mosaic virus, fine mapping of resistance genes and expression analysis[D]. Nanjing: Nanjing Agricultural University, 2010.)[49]王彩洁, 孙石, 韩天富, 等.中国大豆主产区不同年代大面积种植品种的遗传多样性分析[J]. 作物学报, 2013, 39(11): 1917-1926. (WANG C J, SUN S, HAN T F, et al. Genetic diversity analysis of large area soybean varieties planted in main soybean producing areas of China in different ages[J]. Journal of Crops, 2013, 39(11): 1917-1926.)[50]王欢, 孙霞, 岳岩磊, 等. 东北春大豆花荚脱落性状与SSR标记的关联分析[J]. 土壤与作物, 2014, 3(1): 32-40. (WANG H, SUN X, YUE Y L, et al. The correlation analysis between flower and pod abscission traits and SSR markers of spring soybean in northeast China[J]. Soil and Crops, 2014, 3(1): 32-40.)[51]韩英鹏, 赵雪, 高赛男,等. 大豆花叶病毒病N1株系抗性基因定位分析[J]. 大豆科学, 2016, 35(3): 407-410. (HAN Y P, ZHAO X, GAO S N, et al. Location analysis of resistance gene of soybean mosaic virus N1 strain[J]. Soybean Science, 2016, 35(3): 407-410.)[52]韩扬眉. 大豆高产背后的微观世界[J]. 粮食科技与经济, 2020(9): 2. (HAN Y M. The micro world behind the high yield of soybean[J]. Grain Science Technology and Economy, 2020(9):2.)[53]左建儒, 漆小泉, 林荣呈, 等. 2019年中国植物科学若干领域重要研究进展[J].植物学报, 2020, 55(3): 257-269. (ZUO J R, QI X Q, LIN R C, et al. Achievements and advance in Chinese plant sciences in 2019[J]. Chinese Bulletin of Botany, 2020, 55(3): 257-269.)[54]顾红雅, 左建儒, 漆小泉, 等. 2020年中国植物科学若干领域重要研究进展[J]. 植物学报, 2020, 56(2): 119-133. (GU H Y, ZUO J R, QI X Q, et al. Achievements and advances in the plant sciences field in China in 2020[J]. Chinese Bulletin of Botany, 2021, 56(2): 119-133.)[55]SHAN Q, WANG Y, LI J, et al. Targeted genome modification of crop plants using a CRISPR-Cas system[J]. Nature Biotechnology, 2013, 31: 686-688.[56]FENG Z, ZHANG B, DING W, et al. Efficient genome editing in plants using a CRISPR/Cas system[J]. Cell Research, 2013, 23: 1229-1232.[57]田志喜, 刘宝辉, 杨艳萍, 等. 我国大豆分子设计育种成果与展望[J]. 中国科学院院刊, 2018, 33(9): 915-922. (TIAN Z X, LIU B H, YANG Y P, et al. Achievements and prospects of soybean molecular design breeding in China[J]. Bulletin of the Chinese Academy of Sciences, 2018, 33(9): 915-922.)[58]李凤双, 管建涛. 国产大豆种业如何“脱困”[J]. 食品界, 2021(9): 23-25. (LI F S, GUAN J T. How to ‘get out of difficulties’ in domestic soybean seed industry[J]. Food Industry, 2021(9): 23-25.)

Memo

Memo:
-
Last Update: 2022-06-30