Acta Agronomica Sinica ›› 2023, Vol. 49 ›› Issue (5): 1170-1183.doi: 10.3724/SP.J.1006.2023.22024
• CROP GENETICS & BREEDING·GERMPLASM RESOURCES·MOLECULAR GENETICS • Previous Articles Next Articles
ZHOU Hai-Ping1(), ZHANG Fan2, CHEN Kai3, SHEN Cong-Cong3, ZHU Shuang-Bing3, QIU Xian-Jin4,*(), XU Jian-Long2,3,5,*()
[1] | 杨义强, 朱林峰, 李晓芳, 付杰, 黄道强, 邱先进, 周少川, 王重荣. 抗稻瘟病基因Pi2的基因特异性KASP标记开发与应用. 植物遗传资源学报, 2021, 22: 1314-1321. |
Yang Y Q, Zhu L F, Li X F, Fu J, Huang D Q, Qiu X J, Zhou S C, Wang C R. Development and application of KASP marker specific for rice blast resistance Pi2 gene. J Plant Genet Resour, 2021, 22: 1314-1321. (in Chinese with English abstract) | |
[2] | 杨小林, 施仕胜, 张舒, 吕亮, 喻大召. 湖北省稻瘟病重发区病菌群体致病性分化的研究. 湖北农业科学, 2016, 55: 4169-4171. |
Yang X L, Shi S S, Zhang S, Lyu L, Yu D Z. Population pathotype of Magnaporthe aryzae in rice blast epidemic areas of Hubei province. Hubei Agric Sci, 2016, 55: 4169-4171. (in Chinese with English abstract) | |
[3] | 钟宝玉, 黄德超, 朱小源, 陈玉托, 邹寿发, 杨伟新, 赖新红. 近十年广东稻瘟病菌生理小种变化分析. 仲恺农业工程学院学报, 2018, 31: 24-29. |
Zhong B Y, Huang D C, Zhu X Y, Chen Y T, Zou S F, Yang W X, Lai X H. Analysis of physiological races of Magnaporthe oryzae in Fuangdong during recent decade. J Zhongkai Univ Agric Eng, 2018, 31: 24-29. (in Chinese with English abstract) | |
[4] |
Khan M A I, Latif M A, Khalequzaman M, Tomita A, Ali M A, Fukuta Y. Genetic variation in resistance to blast (Pyricularia oryzae Cavara) in rice (Oryza sativa L.) germplasms of Bangladesh. Breed Sci, 2017, 67: 493-499.
doi: 10.1270/jsbbs.17039 |
[5] |
Ashikani S, Rafii M Y, Rahim H A, Latif M A. Genetic dissection of rice blast resistance by QTL mapping approach using an F3 population. Mol Biol Rep, 2013, 40: 2503-2515.
doi: 10.1007/s11033-012-2331-3 |
[6] |
Zenbayashi K, Ashizawa T, Tani T, Koizumi S. Mapping of the QTL (quantitative trait locus) conferring prtial resistance to leaf blast in rice cultivar Chubu 32. Theor Appl Genet, 2002, 104: 547-552.
pmid: 12582657 |
[7] |
杨德卫, 王莫, 韩立波, 唐定中, 李生平. 水稻稻瘟病抗性基因的克隆、育种利用及稻瘟菌无毒基因研究进展, 植物学报, 2019, 54: 265-276.
doi: 10.11983/CBB18194 |
Yang D W, Wang M, Han L B, Tang D Z, Li S P. Progress of cloning and breeding application of blast resistance genes in rice and avirulence genes in blast fungi. Chin Bull Bot, 2019, 54: 265-276. (in Chinese with English abstract) | |
[8] |
Mgonja E M, Blimponya E G, Kang H X, Bellizzi M, Park C H, Li Y, Mabagala R, Sneller C, Correll J, Opiyo S, Talbot N J, Mitchell T, Wang G L. Genome-wide association mapping of rice resistance genes against Magnaporthe oryzae isolates from four African countries. Phytopathology, 2016, 106: 1359-1365
doi: 10.1094/PHYTO-01-16-0028-R |
[9] |
Agrama H A, Eizenga G C, Yan W. Association mapping of yield and its components in rice cultivars. Mol Breed, 2007, 19: 341-356.
doi: 10.1007/s11032-006-9066-6 |
[10] |
Huang X H, Wei Z H, Sang T, Zhao Q, Feng Q, Zhao Y, Li C Y, Zhu C R, Lu T T, Zhang Z W, Li M, Fan D L, Guo Y L, Wang A H, Wang L, Deng L W, Li W J, L u Y Q, Weng Q J, Liu K Y, Huang T, Zhou T Y, Jing Y F, Li W, Lin Z, Buckler E, Qian Q, Zhang Q F, Li J Y, Han B. Genome-wide association studies of 14 agronomic traits in rice landraces. Nat Genet, 2010, 42: 961-967.
doi: 10.1038/ng.695 pmid: 20972439 |
[11] |
Qiu X J, Yang J, Zhang F, Niu Y N, Zhao X Q, Shen C C, Chen K, Teng S, Xu J L. Genetic dissection of rice appearance quality and cooked rice elongation by genome-wide association study. Crop J, 2021, 9: 1470-1480.
doi: 10.1016/j.cj.2020.12.010 |
[12] |
Wang C H, Yang Y L, Yuan X P, Xu Q, Feng Y, Yu H Y, Wang Y P, Wei X H. Genome-wide association study of blast resistance in indica rice. BMC Plant Biol, 2014, 14: 311.
doi: 10.1186/s12870-014-0311-6 |
[13] |
Kang H X, Wang Y, Peng S S, Zhang Y L, Xiao Y H, Wang D, Qu S H, Li Z Q, Yan S Y, Wang Z L, Liu W D, Ning Y S, Korniliev P, Leung H, Mezey J, McCouch S R, Wang G L. Dissection of genetic architecture of rice resistance to blast fungus Magnaorthe oryzae. Mol Plant Pathol, 2016, 17: 959-972.
doi: 10.1111/mpp.12340 |
[14] |
Raboin L M, Ballini E, Tharreau D, Ramanantsoanirina A, Frouin J, Courtois B, Ahmadi N. Association mapping of resistance to rice blast in upland field conditions. Rice, 2016, 9: 59.
doi: 10.1186/s12284-016-0131-4 |
[15] |
Mgonja E M, Park C H, Kang H X, Blimponya E G, Opiyo S, Bellizzi M, Mutiga S K, Ganeshan V D, Mabagala R, Sneller C, Correll J, Zhou B, Talbot N J, Mitchell T K, Wang G L. Genotyping-by-sequencing-based genetic analysis of African rice cultivars and association mapping of blast resistance genes against Magnaporthe oryzae populations in Africa. Phytopathology, 2017, 107: 1039-1046.
doi: 10.1094/PHYTO-12-16-0421-R |
[16] |
Park C H, Chen S B, Shirsekar G, Zhou B, Khang C H, Songkumarn P, Afzal S J, Ning Y S, Wang R Y, Bellizzi M, Valent B, Wang G L. The Magnaporthe oryzae effector AirPiz-t targets the RING E3 Ubiquitin ligase APIP6 to suppress pathogen-associated molecular pattern-triggered immunity in rice. Plant Cell, 2012, 24: 4748-4762
doi: 10.1105/tpc.112.105429 |
[17] | 李旭升, 向小娇, 申聪聪, 杨隆维, 陈凯, 王小文, 邱先进, 朱小源, 邢丹英, 徐建龙. 水稻重测序核心种质资源的稻瘟病抗性鉴定与评价. 作物学报, 2017, 43: 795-810. |
Li X S, Xiang X J, Shen C C, Yang L W, Chen K, Wang X W, Qiu X J, Zhu X Y, Xing D Y, Xu J L. Identification and evaluation of blast resistance for resequenced rice core collections. Acta Agron Sin, 2017, 43: 795-810. (in Chinese with English abstract)
doi: 10.3724/SP.J.1006.2017.00795 |
|
[18] |
Qiu X J, Chen K, Lyu W K, Ou X X, Zhu Y J, Xing D Y, Yang L W, Fan F J, Yang J, Xu J L, Zheng T Q, Li Z K. Examining two sets of introgression line reveals background-independent and stably expressed QTL that improve grain appearance quality in rice (Oryza sativa L.). Theor Appl Genet, 2017, 130: 951-967.
doi: 10.1007/s00122-017-2862-z |
[19] | Qiu X J, Pang Y L, Yuan Z Y, Xing D Y, Xu J L, Dingkuhn M, Li Z K, Ye G Y. Genome-wide association study of grain appearance and milling quality in a worldwide collection of indica rice germplasm. PLoS One, 2015, 10: e0145577. |
[20] |
McCouch S R, Wright M H, Tung C W, Maron L G, McNally K L, Fitzgerald M, Singh N, DeClerck G, Agosto-Perez F, Korniliev P, Greenberg A J, Naredo M B N, Mercado A M Q, Harrington S E, Shi Y, Branchini D A, Kuser-Falcao P R, Leung H, Ebana K, Yano M, Eizenga G, McClung A, Mezey J. Open access resources for genome-wide association mapping in rice. Nat Commun, 2016, 7: 10532.
doi: 10.1038/ncomms10532 pmid: 26842267 |
[21] |
Purcell S, Neale B, Todd-Brown K, Thomas L, Ferreira M A, Bender D, Maller J, Sklar P, de Bakker P I, Daly M J, Sham P C. PLINK: a tool set for whole-genome association and population-based linkage analyses. Am J Hum Genet, 2007, 81: 559-575.
doi: 10.1086/519795 pmid: 17701901 |
[22] | 杨楠, 陈恺茜, 杨勤忠, 唐文强, 张文龙, 何平, 杨暮英, 李勇成, 韩光煜. 云南地方籼粳稻稻瘟病抗性和农艺性状差异分析及优异稻种筛选. 南方农业学报, 2021, 52: 2680-2689. |
Yang N, Chen K X, Yang Q Z, Tang W Q, Zhang W L, He P, Yang M Y, Li Y C, Han G Y. Blast resistance and agronomic traits of local Indica rice and Japonica rice in Yunnan and screening of elite rice varieties. J South Agric, 2021, 52: 2680-2689. (in Chinese with English abstract) | |
[23] |
Deng Y W, Zhai K R, Xie Z, Yang D Y, Zhu X D, Liu J Z, Wang X, Qin P, Yang Y Z, Zhang G M, Li Q, Zhang J F, Wu S Q, Milazzo J, Mao B Z, Wang E T, Xie H A, Thareau D, He Z H. Epigenetic regulation of antagonistic receptors confers rice blast resistance with yield balance. Science, 2017, 355: 962-965.
doi: 10.1126/science.aai8898 pmid: 28154240 |
[24] |
Jiang J F, Mou T M, Yu H H, Zhou F S. Molecular breeding of thermos-sensitive genic male sterile (TGMS) lines of rice for blast resistance using Pi2 gene. Rice, 2015, 8: 11.
doi: 10.1186/s12284-015-0048-3 |
[25] |
Hayashi K, Yoshida H. Refunctionalization of the ancient rice blast disease resistance gene Pit by the recruitment of a retrotransposon as a promoter. Plant J, 2009, 57: 413-425.
doi: 10.1111/tpj.2009.57.issue-3 |
[26] |
Barman S R, Gowda M, Venu R C, Chattoo B B. Identification of a major resistance gene in the rice cultivar “Tetep”. Plant Breed, 2004, 123: 300-302.
doi: 10.1111/pbr.2004.123.issue-3 |
[27] |
Takahashi A, Hayashi N, Miyao A, Hirochika H. Unique features of the rice blast resistance Pish locus revealed by large scale retrotransposon-tagging. BMC Plant Biol, 2010, 10: 175.
doi: 10.1186/1471-2229-10-175 pmid: 20707904 |
[28] |
Lin F, Chen S, Que Z Q, Wang L, Liu X Q, Pan Q H. The blast resistance gene Pi37 encodes a nucleotide biding site-leucine-rich repeat protein and is a member of a resistance gene cluster on chromosome 1. Genetics, 2007, 177: 1871-1880.
doi: 10.1534/genetics.107.080648 |
[29] |
Wang Z X, Yano M, Yamanoouchi U, Iwamoto M, Monna L, Hayasaka H, Katayose Y, Sasaki T. The Pib gene for rice blast resistance belongs to the nucleotide binding and leucine-rich repeat class of plant disease resistance genes. Plant J, 1999, 19: 55-64.
doi: 10.1046/j.1365-313x.1999.00498.x pmid: 10417726 |
[30] |
Sallaud C, Lorieux M, Roumen E, Tharreau D, Berruyer R, Svestasrani P, Garsmeur O, Ghesquiere A, Notteghem J L. Identification of five new blast resistance genes in the highly blast-resistant rice variety IR64 using a QTL mapping strategy. Theor App Genet, 2003, 106: 794-803.
doi: 10.1007/s00122-002-1088-9 |
[31] |
Guo L Y, Zhao H W, Wang J G, Liu H L, Zheng H L, Sun J, Yang L M, Sha H J, Zou D T. Dissection of QTLs alleles for blast resistance based on linkage and linkage disequilibrium mapping in japonica rice seedlings. Australasian Plant Pathol, 2016, 45: 209-218.
doi: 10.1007/s13313-016-0405-8 |
[32] |
Cesari S, Thilliez G, Ribot C, Chalvon V, Michel C, Jauneau A, Rivas S, Alaux L, Kanzaki H, Okuyama Y, Morel J B, Fournier E, Tharreau D, Terauchi R, Kroj T. The rice resistance protein pair RGA4/RGA5 recognizes the Magnaporthe oryzae effectors AVR-Pia and AVR1-CO39 by direct binding. Plant Cell, 2013, 25: 1463-1481.
doi: 10.1105/tpc.112.107201 |
[33] |
Okuyama Y, Kanzaki H, Abe A, Yoshida K, Tamiru M, Saitoh H, Fujibe T, Matsura H, Shenton M, Galam D C, Undan J, Ito A, Sone T, Terauchi R. A multifaceted genomics approach allows the isolation of the rice Pia-blast resistance gene consisting of two adjacent NBS-LRR protein genes. Plant J, 2011, 66: 467-479.
doi: 10.1111/j.1365-313X.2011.04502.x |
[34] | Hua L X, Wu J Z, Chen C X, Wu W H, He X Y, Lin F, Wang L, Ashikawa I, Matsumoto T, Wang L, Pan Q H. The isolation of Pi1, an allele at the Pik locus which confers broad spectrum resistance to rice blast. Theor Appl Genet, 2012, 25: 1047-1055. |
[35] |
Zhang D D, Liu M X, Tang M Z, Dong B, Wu D X, Zhang Z G. Repression of microRNA by silencing of OsDCL1activities the basal resistance to Magnaporthe oryzae in rice. Plant Sci, 2015, 237: 24-32.
doi: 10.1016/j.plantsci.2015.05.002 |
[36] | Fujiwara T, Maisonneuve S, Isshiki M, Mizutani M, Chen L T, Wong H L, Kawasaki T, Shimamoto K. Sekiguchi lesion gene encodes a cytochrome P450 monooxygenase that catalyzes conversion of tryptamine to serotonin in rice. J Biol Chem, 2010, 85: 11308-11313. |
[37] |
Lee J R, Park S C, Kim M H, Jung J H, Shin M R, Lee D H, Cheon M G, Park Y, Hahm K S, Lee S Y. Antifungal activity of rice Rex5p, a receptor for peroxisomal matrix proteins. Biochem Biophy Res Commun, 2007, 359: 941-946.
doi: 10.1016/j.bbrc.2007.05.210 |
[38] |
You X M, Zhu S S, Zhang W W, Zhang J, Wang C M, Jing R N, Chen W W, Wu H M, Cai Y, Feng Z M, Hu J L, Yan H G, Kong F, Zhang H, Zheng M, Ren Y L, Lin Q B, Cheng Z J, Zhang X, Lei C L, Jiang L, Wang H Y, Wan J M. OsPEX5 regulates rice spikelet development through modulating jasmonic acid biosynthesis. New Phytol, 2019, 224: 712-724.
doi: 10.1111/nph.v224.2 |
[39] |
Lu T, Diao Z J, Yang D W, Wang X, Zheng X X, Xiang X Q, Xiao Y P, Chen Z W, Wang W, Wu Y K, Tang D Z, Li S P. The 14-3-3 protein GF41c positively regulates immunity by modulating the protein homoeostasis of the GRAS protein OsSCL7 in rice. Plant Cell Environ, 2022, 45: 1065-1081.
doi: 10.1111/pce.v45.4 |
[40] | Mei C S, Qi M, Sheng G Y, Yang Y N. Inducible overexpression of a rice allene oxide synthase gene increases the endogenous jasmonic acid level, PR gene expression, and host resistance to fungal infection. Mol Plant Microbe Interat, 2006, 19: 1127-1137. |
[41] | Ke Y G, Yuan M, Liu H B, Hui S G, Qin X F, Chen J, Zhang Q L, Li X H, Xiao J H, Zhang Q F, Wang S P. The versatile functions of OsALDH2B1 provide a genic basis for growth-defense trade-offs in rice. Proc Natl Acad Sci USA, 2020, 11: 3867-3873. |
[42] |
Jiang C J, Shimono M, Maeda S, Inoue H, Mori M, Hasegawa M, Sunano S, Takatsuji H. Suppression of the rice fatty-acid desaturase gene OsSSI2 enhances resistance to blast and leaf blight diseases in rice. Mol Plant-Microbe Interact, 2009, 22: 820-829.
doi: 10.1094/MPMI-22-7-0820 |
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