Chinese Agricultural Science Bulletin ›› 2022, Vol. 38 ›› Issue (30): 91-99.doi: 10.11924/j.issn.1000-6850.casb2021-0941
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LI Zhou1,2(), YANG Yayun2(
), DAI Luyuan2, ZHANG Feifei2, A Xinxiang2, DONG Chao2, WANG Bin2, TANG Cuifeng2
Received:
2021-09-30
Revised:
2022-03-28
Online:
2022-10-25
Published:
2022-10-27
Contact:
YANG Yayun
E-mail:13577063626@163.com;yangyayun2002@163.com
CLC Number:
LI Zhou, YANG Yayun, DAI Luyuan, ZHANG Feifei, A Xinxiang, DONG Chao, WANG Bin, TANG Cuifeng. Rice Bacterial Blight Resistance Genes and Resistance-related Factors: A Review on Research and Utilization[J]. Chinese Agricultural Science Bulletin, 2022, 38(30): 91-99.
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URL: https://www.casb.org.cn/EN/10.11924/j.issn.1000-6850.casb2021-0941
基因位点 | 无毒菌株(小种) | 供体品种 | 染色体 | 连锁标记 | 蛋白类型 | 参考文献 |
---|---|---|---|---|---|---|
Xa1* | 日本菌株X-17 | 黄玉、Java14 | 4 | C600(0 cM)、XNpb235(0 cM)、U08750(1.5 cM) | NLR | [ |
Xa2* | 日本菌株X-17 | Te-tep | 4 | HZR950-5~HZR970-4(190 kb)、 G235~C600(0.2 cM) | NLR | [ |
Xa3/Xa26* | 印尼菌株T7174、 T7174等 | 早生爱国3、 明恢63等 | 11 | XNbp181(2.3 cM)、RM224(0.21 cM)、 Y6855R(1.47 cM) | RLK | [ |
Xa4* | 菲律宾菌株PX025(1) | TKM-6、IR20、IR22 | 11 | XNpb181(1.7 cM)、XNpb78(1.7 cM) | WAK | [ |
xa5* | 菲律宾菌株PX025(1) | DZ192、Ir1545-339 | 5 | RG556(<1 cM)、RG207(<1 cM)、 RM122(0.7 cM)、RM390(0.4 cM) | TFIIA | [ |
Xa7* | 菲律宾菌株PX061(1) | DV85、DV86、DZ78 | 6 | G1091(6.0 cM)、AFLP31-10(3 cM)、GDSSR02~RM20593(0.21 cM) | EXECUTOR | [ |
xa8 | 菲律宾菌株PX061(1) | PI231128 | 7 | RM214(19.9 cM) | [ | |
Xa10* | 菲律宾4个小种 | Cas209 | 11 | O072000(5.3 cM)、M491~M419(0.28 cM) | EXECUTOR | [ |
Xa11 | 印尼菌株T7174 | IR944-102-2-3 | 3 | RM347(2.0 cM)、KUX11(1.0 cM) | [ | |
Xa12 | 印尼菌系Xo-7306(V) | 黄玉、Java14 | 4 | - | [ | |
xa13* | 菲律宾小种6 | BJ1 | 8 | RZ28(5.1 cM)、G136(3.8 cM)、RP7~ST12(9.2 kb) | SWEET | [ |
Xa14* | 菲律宾小种5 | TN1 | 4 | RG620(20.1 cM)、HZR970-8~HZR988-1(0.68 cM) | NLR | [ |
基因位点 | 无毒菌株(小种) | 供体品种 | 染色体 | 连锁标记 | 蛋白类型 | 参考文献 |
xa15 | 日本小种Ⅰ、Ⅱ、Ⅲ、Ⅳ | M41诱变体 | - | - | [ | |
Xa16 | 日本小种Ⅶ | Tetep | - | - | [ | |
Xa17 | 日本小种Ⅱ | 阿苏稔 | - | - | [ | |
Xa18 | 缅甸菌株 | IR24、密阳23、丰锦 | - | - | [ | |
xa19 | 6个菲律宾小种 | IR24的诱变体XM5 | - | - | [ | |
xa20 | 6个菲律宾小种 | IR24的诱变体XM6 | - | - | [ | |
Xa21* | 菲律宾小种1、2、4、6 | 长药野生稻 | 11 | RG103(0 cM) | RLK | [ |
Xa22(t) | 菲律宾菌株PXO61 | 扎昌龙 | 11 | CR543(7.1 cM)、RZ536(10.7 cM)、Y6855RA(0.4 cM)、G2132B(0.7 cM) | [ | |
Xa23* | PXO99 (菲律宾小种6) | 普通野生稻 | 11 | C189(0.8 cM)、CP02662(1.3 cM) | EXECUTOR | [ |
xa24(t)* | 菲律宾小种 1、2、4、6 | DV86 | 2 | RM14222~RM14224(10 kb) | 未知蛋白 | [ |
xa25* | 菲律宾小种9 | 明恢63 | 12 | G1314(7.3 cM)、R887(3.0 cM)、MZ2(0.38 cM)、MZ7(0.06 cM) | SWEET | [ |
Xa25(t) | 菲律宾小种1、3、4 | 明恢63、无性系 突变体HX3 | 4 | RM6748(9.3 cM)、RM1153(3.0 cM) | [ | |
Xa27* | 菲律宾小种2、5 | 小粒野生稻 | 6 | M964~M1197(0.052 cM) | EXECUTOR | [ |
xa28(t) | 菲律宾小种2 | Lotasail | - | - | [ | |
Xa29(t) | 菲律宾小种1 | 药用野生稻 | 1 | C904~R596(1.3 cM) | [ | |
Xa30(t) | PXO99 (菲律宾小种6) | 普通野生稻Y238 | 11 | 03STS(2.0 cM) | [ | |
Xa31(t)* | OS105 | 扎昌龙 | 4 | G235~C600(0.2 cM) | NLR | [ |
Xa32(t) | 菲律宾小种1、4~9 | 澳洲野生稻C4064 | 11 | ZCK24(0.5 cM)~RM6293(1.5 cM) | [ | |
xa32(t) | PXO99 (菲律宾小种6) | 疣粒野生稻 | 12 | RM20A(1.7 cM) | [ | |
xa33(t) | 泰国小种TXO16 | Ba7 | 6 | RM30~RM400 | [ | |
Xa33 | IRI-VIII | 普通野生稻、 IRGC105710 | 7 | RMWR7.1(0.9 cM)~RMWR7.6(1.2 cM) | [ | |
xa34(t) | 中国小种5226 | BG1222 | 1 | RM10929~BGID25(204 kb) | [ | |
Xa35(t) | 菲律宾小种PXO61、PXO112等 | 小粒野生稻 | 11 | RM7654(1.1 cM)~RM6293(0.7 cM) | [ | |
Xa36(t) | P6和C5 | C4059 | 11 | RM224~RM2136(4.5 cM) | [ | |
Xa38 | IRI-VII | 普通野生稻IRGC81825 | 4 | RM317~RM562(35 cM) | [ | |
Xa39 | P6和CV | PSBRC66 | 11 | RM26985~DM13(97.4 kb) | [ | |
Xa40 | 朝鲜菌株K1、K2,K3,K3a | IR65482-7-216-1-2 | 11 | RM27320~ID55.WA18-5(80 kb) | [ | |
xa41(t)* | BAI3 | O.glaber-rima | 11 | RM27320~RM27355(220 kb) | SWEET | [ |
xa42 | 6个菲律宾小种、 6个日本小种 | IR24、 | 3 | RM20572~DT46(34.8 kb) | [ | |
Xa43 | 17个韩国菌株K3a(HP01009)等 | JMAGIC系亲本P8 | 11 | IBb27os11_14~S_BB11.ssr_9(119 kb) | [ | |
基因位点 | 无毒菌株(小种) | 供体品种 | 染色体 | 连锁标记 | 蛋白类型 | 参考文献 |
xa44 | 24个韩国菌株K3a(HP01009)等 | JMAGIC系亲本P6 | 11 | #46.g0689400~5.RM27318(120 kb) | [ | |
Xa45* | AXO1974、T7174 | O.nivara | 4 | 53120-F4b-53120-R4b | NLR | [ |
xa45 | 菌株PbXo7 | IRGC102600B | 8 | C8.26737175~C8.26818765(80 kb) | [ | |
Xa46 | IV族隔离株GD9315 | 突变株H120 | 11 | RM26981~RM26984(65.34 kb) | [ | |
Xa47(t)* | C5、C9、P6、PB等 | G252 | 11 | R13I14~13rbq-71 | [ |
基因位点 | 无毒菌株(小种) | 供体品种 | 染色体 | 连锁标记 | 蛋白类型 | 参考文献 |
---|---|---|---|---|---|---|
Xa1* | 日本菌株X-17 | 黄玉、Java14 | 4 | C600(0 cM)、XNpb235(0 cM)、U08750(1.5 cM) | NLR | [ |
Xa2* | 日本菌株X-17 | Te-tep | 4 | HZR950-5~HZR970-4(190 kb)、 G235~C600(0.2 cM) | NLR | [ |
Xa3/Xa26* | 印尼菌株T7174、 T7174等 | 早生爱国3、 明恢63等 | 11 | XNbp181(2.3 cM)、RM224(0.21 cM)、 Y6855R(1.47 cM) | RLK | [ |
Xa4* | 菲律宾菌株PX025(1) | TKM-6、IR20、IR22 | 11 | XNpb181(1.7 cM)、XNpb78(1.7 cM) | WAK | [ |
xa5* | 菲律宾菌株PX025(1) | DZ192、Ir1545-339 | 5 | RG556(<1 cM)、RG207(<1 cM)、 RM122(0.7 cM)、RM390(0.4 cM) | TFIIA | [ |
Xa7* | 菲律宾菌株PX061(1) | DV85、DV86、DZ78 | 6 | G1091(6.0 cM)、AFLP31-10(3 cM)、GDSSR02~RM20593(0.21 cM) | EXECUTOR | [ |
xa8 | 菲律宾菌株PX061(1) | PI231128 | 7 | RM214(19.9 cM) | [ | |
Xa10* | 菲律宾4个小种 | Cas209 | 11 | O072000(5.3 cM)、M491~M419(0.28 cM) | EXECUTOR | [ |
Xa11 | 印尼菌株T7174 | IR944-102-2-3 | 3 | RM347(2.0 cM)、KUX11(1.0 cM) | [ | |
Xa12 | 印尼菌系Xo-7306(V) | 黄玉、Java14 | 4 | - | [ | |
xa13* | 菲律宾小种6 | BJ1 | 8 | RZ28(5.1 cM)、G136(3.8 cM)、RP7~ST12(9.2 kb) | SWEET | [ |
Xa14* | 菲律宾小种5 | TN1 | 4 | RG620(20.1 cM)、HZR970-8~HZR988-1(0.68 cM) | NLR | [ |
基因位点 | 无毒菌株(小种) | 供体品种 | 染色体 | 连锁标记 | 蛋白类型 | 参考文献 |
xa15 | 日本小种Ⅰ、Ⅱ、Ⅲ、Ⅳ | M41诱变体 | - | - | [ | |
Xa16 | 日本小种Ⅶ | Tetep | - | - | [ | |
Xa17 | 日本小种Ⅱ | 阿苏稔 | - | - | [ | |
Xa18 | 缅甸菌株 | IR24、密阳23、丰锦 | - | - | [ | |
xa19 | 6个菲律宾小种 | IR24的诱变体XM5 | - | - | [ | |
xa20 | 6个菲律宾小种 | IR24的诱变体XM6 | - | - | [ | |
Xa21* | 菲律宾小种1、2、4、6 | 长药野生稻 | 11 | RG103(0 cM) | RLK | [ |
Xa22(t) | 菲律宾菌株PXO61 | 扎昌龙 | 11 | CR543(7.1 cM)、RZ536(10.7 cM)、Y6855RA(0.4 cM)、G2132B(0.7 cM) | [ | |
Xa23* | PXO99 (菲律宾小种6) | 普通野生稻 | 11 | C189(0.8 cM)、CP02662(1.3 cM) | EXECUTOR | [ |
xa24(t)* | 菲律宾小种 1、2、4、6 | DV86 | 2 | RM14222~RM14224(10 kb) | 未知蛋白 | [ |
xa25* | 菲律宾小种9 | 明恢63 | 12 | G1314(7.3 cM)、R887(3.0 cM)、MZ2(0.38 cM)、MZ7(0.06 cM) | SWEET | [ |
Xa25(t) | 菲律宾小种1、3、4 | 明恢63、无性系 突变体HX3 | 4 | RM6748(9.3 cM)、RM1153(3.0 cM) | [ | |
Xa27* | 菲律宾小种2、5 | 小粒野生稻 | 6 | M964~M1197(0.052 cM) | EXECUTOR | [ |
xa28(t) | 菲律宾小种2 | Lotasail | - | - | [ | |
Xa29(t) | 菲律宾小种1 | 药用野生稻 | 1 | C904~R596(1.3 cM) | [ | |
Xa30(t) | PXO99 (菲律宾小种6) | 普通野生稻Y238 | 11 | 03STS(2.0 cM) | [ | |
Xa31(t)* | OS105 | 扎昌龙 | 4 | G235~C600(0.2 cM) | NLR | [ |
Xa32(t) | 菲律宾小种1、4~9 | 澳洲野生稻C4064 | 11 | ZCK24(0.5 cM)~RM6293(1.5 cM) | [ | |
xa32(t) | PXO99 (菲律宾小种6) | 疣粒野生稻 | 12 | RM20A(1.7 cM) | [ | |
xa33(t) | 泰国小种TXO16 | Ba7 | 6 | RM30~RM400 | [ | |
Xa33 | IRI-VIII | 普通野生稻、 IRGC105710 | 7 | RMWR7.1(0.9 cM)~RMWR7.6(1.2 cM) | [ | |
xa34(t) | 中国小种5226 | BG1222 | 1 | RM10929~BGID25(204 kb) | [ | |
Xa35(t) | 菲律宾小种PXO61、PXO112等 | 小粒野生稻 | 11 | RM7654(1.1 cM)~RM6293(0.7 cM) | [ | |
Xa36(t) | P6和C5 | C4059 | 11 | RM224~RM2136(4.5 cM) | [ | |
Xa38 | IRI-VII | 普通野生稻IRGC81825 | 4 | RM317~RM562(35 cM) | [ | |
Xa39 | P6和CV | PSBRC66 | 11 | RM26985~DM13(97.4 kb) | [ | |
Xa40 | 朝鲜菌株K1、K2,K3,K3a | IR65482-7-216-1-2 | 11 | RM27320~ID55.WA18-5(80 kb) | [ | |
xa41(t)* | BAI3 | O.glaber-rima | 11 | RM27320~RM27355(220 kb) | SWEET | [ |
xa42 | 6个菲律宾小种、 6个日本小种 | IR24、 | 3 | RM20572~DT46(34.8 kb) | [ | |
Xa43 | 17个韩国菌株K3a(HP01009)等 | JMAGIC系亲本P8 | 11 | IBb27os11_14~S_BB11.ssr_9(119 kb) | [ | |
基因位点 | 无毒菌株(小种) | 供体品种 | 染色体 | 连锁标记 | 蛋白类型 | 参考文献 |
xa44 | 24个韩国菌株K3a(HP01009)等 | JMAGIC系亲本P6 | 11 | #46.g0689400~5.RM27318(120 kb) | [ | |
Xa45* | AXO1974、T7174 | O.nivara | 4 | 53120-F4b-53120-R4b | NLR | [ |
xa45 | 菌株PbXo7 | IRGC102600B | 8 | C8.26737175~C8.26818765(80 kb) | [ | |
Xa46 | IV族隔离株GD9315 | 突变株H120 | 11 | RM26981~RM26984(65.34 kb) | [ | |
Xa47(t)* | C5、C9、P6、PB等 | G252 | 11 | R13I14~13rbq-71 | [ |
[62] |
KIM S. Identification of novel recessive gene xa44(t) conferring resistance to bacterial blight races in rice by QTL linkage analysis using an SNP chip[J]. Theoretical and applied genetics, 2018, 131:2733-2743.
doi: 10.1007/s00122-018-3187-2 URL |
[63] |
JI C, JI Z, LIU B, et al. Xa1 allelic R genes activate rice blight resistance suppressed by interfering TAL effectors[J]. Plant commun, 2020, 1(4):100087.
doi: 10.1016/j.xplc.2020.100087 URL |
[64] |
NEELAM K, MAHAjAN R, GUPTA V, et al. High-resolution genetic mapping of a novel bacterial blight resistance gene xa-45(t)identified from Oryza glaberrima and transferred to Oryza sativa[J]. Theoretical and applied genetics, 2020, 133(3):689-705.
doi: 10.1007/s00122-019-03501-2 URL |
[65] | SHEN CHEN C W J Y. Identification of the novel bacterial blight resistance gene Xa46(t) by mapping and expression analysis of the rice mutant H120[J]. Scientific reports, 2020. |
[66] | XING J, ZHANG D, YIN F, et al. Identification and fine-mapping of a new bacterial blight resistance gene, Xa47(t), in G252, an introgression line of Yuanjiang common wild rice (Oryza rufipogon)[J]. Plant, 2021: S5210939R. |
[67] | 何翔, 翁佳仁. 水稻抗白叶枯病基因研究进展[J]. 安徽农业科学, 2018, 46(10):28-32. |
[68] |
李定琴, 钟巧芳, 曾民, 等. 水稻抗白叶枯病基因定位、克隆及利用研究进展[J]. 中国稻米, 2017, 23(5):19-27.
doi: 10.3969/j.issn.1006-8082.2017.05.004 |
[69] |
ZHANG B, ZHANG H, LI F, et al. Multiple alleles encoding atypical NLRs with unique central tandem repeats in rice confer resistance to Xanthomonas oryzae pv. oryzae[J]. Plant commun., 2020, 1(4):100088.
doi: 10.1016/j.xplc.2020.100088 URL |
[70] |
鲍思元, 谭明谱, 林兴华. 水稻抗白叶枯病基因Xa14的遗传定位[J]. 作物学报, 2010, 36(3):422-427.
doi: 10.3724/SP.J.1006.2010.00422 |
[71] | 王春台, 刘学群, 张端平. 一个新的水稻白叶枯病抗性基因Xa31(t)的鉴定和精细定位[Z].中国北京: 20091. |
[72] | COHEN S P, LIU H, ARGUESO C T, et al. RNA-Seq analysis reveals insight into enhanced rice Xa7-mediated bacterial blight resistance at high temperature[J]. Plos one. 2017, 12(11):e187625. |
[73] | 梅乐. 水稻抗白叶枯病基因Xa7的克隆研究[D]. 杭州: 浙江师范大学, 2020. |
[74] |
ANTOLIN-LLOVERA M, RIED M K, BINDER A, et al. Receptor kinase signaling pathways in plant-microbe interactions[J]. Annual review of phytopathology, 2012, 50:451-473.
doi: 10.1146/annurev-phyto-081211-173002 URL |
[75] | SUN X, CAO Y, YANG Z, et al. Xa26, a gene conferring resistance to Xanthomonas oryzae pv. oryzae in rice, encodes an LRR receptor kinase-like protein[J]. Plant Jounal., 2004, 37(4): 517-527. |
[76] |
HU K, CAO J, ZHANG J, et al. Improvement of multiple agronomic traits by a disease resistance gene via cell wall reinforcement[J]. Nat plants., 2017, 3: 17009.
doi: 10.1038/nplants.2017.9 pmid: 28211849 |
[77] | ANDERSON C M, WAGNER T A, PERRET M, et al. WAKs: cell wall-associated kinases linking the cytoplasm to the extracellular matrix[J]. Plant molecular biotechnology, 2001, 47(1-2):197-206. |
[78] |
JI Z, YANG S, ZENG Y, et al. Pyramiding blast, bacterial blight and brown planthopper resistance genes in rice restorer lines[J]. Journal of integrative agriculture, 2016, 15(7):1432-1440.
doi: 10.1016/S2095-3119(15)61165-0 URL |
[79] |
EOM J S, CHEN L Q, SOSSO D, et al. SWEETs, transporters for intracellular and intercellular sugar translocation[J]. Curr opin plant biol., 2015, 25:53-62.
doi: 10.1016/j.pbi.2015.04.005 URL |
[80] |
YUAN M, CHU Z, LI X, et al. The bacterial pathogen Xanthomonas oryzae overcomes rice defenses by regulating host copper redistribution[J]. Plant cell, 2010, 22(9):3164-3176.
doi: 10.1105/tpc.110.078022 URL |
[81] |
WANG C, ZHANG X, FAN Y, et al. XA23 is an executor R protein and confers broad-spectrum disease resistance in rice[J]. Mol plant, 2015, 8(2):290-302.
doi: 10.1016/j.molp.2014.10.010 pmid: 25616388 |
[1] | 徐坚, 沈颖, 王华弟, 等. 水稻白叶枯病的发生危害与综合防治技术探讨[J]. 中国稻米, 2016, 22(2):65-67. |
[2] |
OU S H. Exploring tropical rice diseases: a reminiscence[J]. Annual review of phytopathology, 1984, 22:1-11.
doi: 10.1146/annurev.py.22.090184.000245 pmid: 22583048 |
[82] |
JIANG G H, XIA Z H, ZHOU Y L, et al. Xa5) in comparison with its homolog TFIIAgamma1[J]. Molecular genetics and genomics, 2006, 275(4): 354-366.
doi: 10.1007/s00438-005-0091-7 URL |
[83] | YUAN M, KE Y, HUANG R, et al. A host basal transcription factor is a key component for infection of rice by TALE-carrying bacteria[J]. Elife. 2016,5. |
[3] | TAKAHITO N, HISATOSHI K. Growth of Xanthomonas oryzae pv. oryzae in planta and in guttation fluid of rice[J]. Japanese journal of phytopathology. 1999, 65(1). |
[4] |
VOULHOUX R, BALL G, IZE B, et al. Involvement of the twin-arginine translocation system in protein secretion via the type II pathway[J]. The EMBO journal, 2001, 20(23):6735-6741.
doi: 10.1093/emboj/20.23.6735 URL |
[84] | 张海涛, 王石平. 水稻抗病功能基因组研究进展[J]. 生命科学, 2016, 28(10):1189-1199. |
[85] | 窦世娟, 关明俐, 李莉云, 等. 水稻的病程相关基因[J]. 科学通报, 2014, 59(3):245-258. |
[5] | CIANCIOTTO N P, WHITE R C. Expanding role of type II secretion in bacterial pathogenesis and beyond[J]. Infection and immunity, 2017, 85(5). |
[6] |
WHITE F F, POTNIS N, JONES J B, et al. The type III effectors of Xanthomonas[J]. Molecular plant pathology, 2009, 10(6):749-766.
doi: 10.1111/j.1364-3703.2009.00590.x URL |
[86] | DONG W, KAROLINA P, ANGELA H C, et al. Salicylic acid inhibits pathogen growth in plants through repression of the auxin signaling pathway[J]. Current biology, 2007, 17(20). |
[87] |
DING X, CAO Y, HUANG L, et al. Activation of the indole-3-acetic acid-amido synthetase GH3-8 suppresses expansin expression and promotes salicylate- and jasmonate-independent basal immunity in rice[J]. Plant cell, 2008, 20(1):228-240.
doi: 10.1105/tpc.107.055657 pmid: 18192436 |
[7] |
SCHOLZE H, BOCH J. TAL effectors are remote controls for gene activation[J]. Curr opin microbiol., 2011, 14(1):47-53.
doi: 10.1016/j.mib.2010.12.001 pmid: 21215685 |
[8] |
KARATAN E, WATNICK P. Signals, regulatory networks, and materials that build and break bacterial biofilms[J]. Microbiology and molecular biology reviews, 2009, 73(2):310-347.
doi: 10.1128/MMBR.00041-08 pmid: 19487730 |
[88] |
FU J, LIU H, LI Y, et al. Manipulating broad-spectrum disease resistance by suppressing pathogen-induced auxin accumulation in rice[J]. Plant physiol., 2011, 155(1):589-602.
doi: 10.1104/pp.110.163774 pmid: 21071600 |
[89] | CHERN M, FITZGERALD H A, CANLAS P E, et al. Overexpression of a rice NPR1 homolog leads to constitutive activation of defense response and hypersensitivity to light[J]. Molecular plant-microbe interactions, 2005, 18(6). |
[90] | BARI R, JONES J D G. Role of plant hormones in plant defence responses[J]. Plant molecular biology, 2009, 69(4). |
[91] | KE Y, LIU H, LI X, et al. Rice OsPAD4 functions differently from Arabidopsis AtPAD4 in host-pathogen interactions[J]. Plant Jounal, 2014, 78(4):619-631. |
[92] | RAMAMOORTHY R, JIANG S, KUMAR N, et al. A comprehensive transcriptional profiling of the WRKY gene family in rice under various abiotic and phytohormone treatments.[J]. Plant & cell physiology, 2008, 49(6). |
[93] | 卜华虎, 王晓清, 任志强, 等. 植物WRKY转录因子家族基因研究进展[J]. 山西农业科学, 2020, 48(7):1158-1163. |
[94] | DEYUN Q, JUN X, WEIBO X, et al. Rice gene network inferred from expression profiling of plants overexpressing OsWRKY13, a positive regulator of disease resistance[J]. Molecular plant, 2008, 1(3). |
[95] |
PENG X, HU Y, TANG X, et al. Constitutive expression of rice WRKY30gene increases the endogenous jasmonic acid accumulation, PR gene expression and resistance to fungal pathogens in rice[J]. Planta, 2012, 236(5):1485-1498.
doi: 10.1007/s00425-012-1698-7 URL |
[96] | TAO Z, LIU H, QIU D, et al. A pair of allelic WRKY genes play opposite roles in rice-bacteria interactions1[J]. Plant physiology, 2009, 151(2). |
[97] | CHOI C, HWANG S, FANG I R, et al. Molecular characterization of Oryza sativa WRKY6, which binds to W-box-like element 1 of the Oryza sativa pathogenesis-related (PR) 10a promoter and confers reduced susceptibility to pathogens[J]. The new phytologist, 2015, 208(3). |
[9] | JA L, DL C. Exopolysaccharides in plant-bacterial interactions[J]. Annual review of microbiology, 1992, 46(1). |
[10] |
JONES J D, DANG J L. The plant immune system[J]. Nature, 2006, 444(7117):323-329.
doi: 10.1038/nature05286 URL |
[98] | YING, PENG, LAURA, et al. OsWRKY62 is a negative regulator of basal and Xa21-mediated defense against Xanthomonas orvzae pv. orvzae in rice[J]. 分子植物:英文版, 2008, 1(3). |
[99] | 翁佳仁. OsmiR1858a靶向OsHIN1正调控水稻白叶枯病抗性[D]. 杭州: 浙江师范大学, 2019. |
[100] | ZHOU X, LIAO H, CHERN M, et al. Loss of function of a rice TPR-domain RNA-binding protein confers broad-spectrum disease resistance.[J]. Proceedings of the national academy of sciences of the United States of America, 2018, 115(12). |
[101] | CHANG-JIN P, YING P, XUEWEI C, et al. Rice XB15, a protein phosphatase 2C, negatively regulates cell death and XA21-mediated innate immunity[J]. Plos biology, 2008, 6(9). |
[102] | PARK C, WEI T, SHARMA R, et al. Overexpression of rice Auxilin-Like protein, XB21, induces necrotic lesions, up-regulates endocytosis-related genes, and confers enhanced resistance to Xanthomonas oryzae pv. oryzae.[J]. Rice, 2017, 10(1). |
[11] |
MONAGHAN J, ZIPFEL C. Plant pattern recognition receptor complexes at the plasma membrane[J]. Current opinion in plant biology, 2012, 15(4):349-357.
doi: 10.1016/j.pbi.2012.05.006 pmid: 22705024 |
[12] | ALBERTO P M, CYRIL Z. Plant PRRs and the activation of innate immune signaling[J]. Molecular cell, 2014, 54(2). |
[13] |
ZHANG H, WANG S. Rice versus Xanthomonas oryzae pv. oryzae: a unique pathosystem[J]. Current opinion in plant biology, 2013, 16(2):188-195.
doi: 10.1016/j.pbi.2013.02.008 URL |
[14] | MAYANK A G, JELLI V, CJANDRAMA P U, et al. Plant disease resistance genes: current status and future directions[J]. Physiological and molecular plant Pathology, 2012,78. |
[15] | BIMOLATA W, KUMAR A, M S K, et al. Nucleotide diversity analysis of three major bacterial blight resistance genes in rice[J]. Plos one, 2015, 10(3):e120186. |
[16] | YOSHIMURA S, YAMANOUCHI U, KATAYOSE Y, et al. Expression of Xa1, a bacterial blight-resistance gene in rice, is induced by bacterial inoculation.[J]. Proceedings of the national academy of sciences of the United States of America, 1998, 95(4). |
[17] |
QI HE D L Y Z. Fine mapping of Xa2, a bacterial blight resistance gene in rice[J]. Molecular breeding, 2006, 17:1-6.
doi: 10.1007/s11032-005-8698-2 URL |
[18] |
XIANG Y, CAO Y, XU C, et al. Xa3, conferring resistance for rice bacterial blight and encoding a receptor kinase-like protein, is the same as Xa26[J]. Theoretical and applied genetics, 2006, 113(7): 1347-1355.
pmid: 16932879 |
[19] | SUN X, YANG Z, WANG S, et al. Identification of a 47-kb DNA fragment containing Xa4, a locus for bacterial blight resistance in rice[J]. TAG. Theoretical and applied genetics, 2003, 106(4). |
[20] |
IYER A S, MCCOUCH S R. The rice bacterial blight resistance gene xa5 encodes a novel form of disease resistance[J]. Molecular plant-microbe interactions, 2004, 17(12):1348-1354.
doi: 10.1094/MPMI.2004.17.12.1348 URL |
[21] | JIANG G, XIA Z, ZHOU Y, et al. Testifying the rice bacterial blight resistance gene xa5 by genetic complementation and further analyzing xa5 (Xa5) in comparison with its homolog TFIIAgamma1.[J]. Molecular genetics and genomics, 2006, 275(4). |
[22] | SINGH S, SIDHU J S, HUANG N, et al. Pyramiding three bacterial blight resistance genes (xa5, xa13 and Xa21) using marker-assisted selection into indica rice cultivar PR106[J]. Theoretical and applied genetics, 2001, 102(6-7). |
[23] | 梅乐. 水稻抗白叶枯病基因Xa7的克隆研究[D]. 杭州: 浙江师范大学, 2020. |
[24] | YOGESH V, HARLEEN C, RAjIV S, et al. Mapping of bacterial blight resistance gene xa8in rice (Oryza sativa L.)[J]. Indian journal of genetics and plant breeding, 2014, 74(Supplement). |
[25] |
ZENG X, TIAN D, GU K, et al. Genetic engineering of the Xa10 promoter for broad-spectrum and durable resistance to Xanthomonas oryzae pv. oryzae[J]. Plant biotechnol J., 2015, 13(7):993-1001.
doi: 10.1111/pbi.12342 URL |
[26] |
TIAN D, WANG J, ZENG X, et al. The rice TAL effector-dependent resistance protein XA10 triggers cell death and calcium depletion in the endoplasmic reticulum[J]. Plant cell, 2014, 26(1):497-515.
doi: 10.1105/tpc.113.119255 URL |
[27] | TAKAHIRO G, TADAYUKI M, Naruto F, et al. Mapping of bacterial blight resistance gene Xa11 on rice chromosome 3[J]. Japan agricultural research quarterly, 2009, 43(3). |
[28] | 鲍思元, 谭明谱, 林兴华. 水稻抗白叶枯病基因Xa12区间连锁图的构建[J]. 亚热带植物科学, 2006(3):1-4. |
[29] |
CHU Z, FU B, YANG H, et al. Targeting xa13, a recessive gene for bacterial blight resistance in rice[J]. Theoretical and applied genetics, 2006, 112(3):455-461.
pmid: 16328230 |
[30] |
鲍思元, 谭明谱, 林兴华. 水稻抗白叶枯病基因Xa14的遗传定位[J]. 作物学报, 2010, 36(3):422-427.
doi: 10.3724/SP.J.1006.2010.00422 |
[31] | 章琦. 水稻白叶枯病抗性基因鉴定进展及其利用[J]. 中国水稻科学, 2005(5):453-459. |
[32] | TAKAHITO N, AKIRA O. A new pathogenic race of Xanthomonas campestris pv. oryzae and inheritance of resistance of differential rice variety, te-tep to it[J]. Japanese journal of phytopathology, 1989, 55(2). |
[33] | 宁茜, 张维林, 黄佳男, 等. 来源于疣粒野生稻的白叶枯病新抗源的鉴定[J]. 植物遗传资源学报, 2014, 15(3):620-624. |
[34] | YAMAMOTO T O T. Inheritance of resistance in rice cultivars, T oyonishiki, Milyang 23 and IR 24 to myanmar isolates of bacterial leaf blight pathogen[J]. Japan agricultural research quarterly, 1990, 24(1):74-77. |
[35] | S TAURA T O A Y. Identification of a recessive resistance gene in induced mutant line XM5 of rice to rice bacterial blight[J]. Japanese journal of breeding, 2008, 41(3):427-432. |
[36] | S TAURA T O A Y. ldentification of a recessive resistance gene to rice bacterial blight of mu-tant line XM6, Oryza sativa L.[J]. Japanese journal of breeding, 1992, 42(1):7-13. |
[37] |
SONG W Y, WANG G L, CHEN L L, et al. A receptor kinase-like protein encoded by the rice disease resistance gene, Xa21[J]. Science, 1995, 270(5243):1804-1806.
doi: 10.1126/science.270.5243.1804 URL |
[38] | 汤翠凤, 樊传章, 徐福荣, 等. 采用SSR标记辅助选育具有Xa22(t)的云南高原粳稻新种质[J]. 分子植物育种, 2005(2):173-178. |
[39] |
WANG C, FAN Y, ZHENG C, et al. High-resolution genetic mapping of rice bacterial blight resistance gene Xa23[J]. Molecular genetics and genomics, 2014, 289(5):745-753.
doi: 10.1007/s00438-014-0848-y URL |
[40] | WU X, LI X, XU C, et al. Fine genetic mapping of xa24, a recessive gene for resistance against Xanthomonas oryzae pv. oryzae in rice[J]. Theoretische und angewandte genetik, 2008, 118(1). |
[41] |
CHEN H, WANG S, ZHANG Q. New gene for bacterial blight resistance in rice located on chromosome 12 identified from minghui 63, an elite restorer line[J]. Phytopathology, 2002, 92(7): 750-754.
doi: 10.1094/PHYTO.2002.92.7.750 pmid: 18943271 |
[42] | GAO D Y, LIU A M, ZHOU Y H, et al. Molecular mapping of a bacterial blight resistance gene Xa-25 in rice[J]. Yi chuan xue bao, 2005, 32(2):183-188. |
[43] | GU K, TIAN D, YANG F, et al. High-resolution genetic mapping of Xa27(t), a new bacterial blight resistance gene in rice, Oryza sativa L.[J]. Theoretische und angewandte Genetik, 2004, 108(5). |
[44] |
GU K, YANG B, TIAN D, et al. R gene expression induced by a type-III effector triggers disease resistance in rice[J]. Nature, 2005, 435(7045):1122-1125.
doi: 10.1038/nature03630 URL |
[45] | LEE K S, RASABANDITH S, ANGELES E R, et al. Inheritance of resistance to bacterial blight in 21 cultivars of rice[J]. Phytopathology, 2003, 3(2):147-152. |
[46] | 谭光轩, 任翔翁, 清妹时, 等. 药用野生稻转育后代一个抗白叶枯病新基因的定位[J]. 遗传学报, 2004(7):724-729. |
[47] | 金旭炜, 王春连, 杨清, 等. 水稻抗白叶枯病近等基因系CBB30的培育及Xa30(t)的初步定位[J]. 中国农业科学, 2007(6):1094-1100. |
[48] |
CHUNTAI WANG, G W X L. Identification and fine mapping of the new bacterial blight resistance gene, Xa31(t), in rice[J]. European journal of plant pathology, 2009, 123(2):235-240.
doi: 10.1007/s10658-008-9356-4 URL |
[49] | 郑崇珂, 王春连, 于元杰, 等. 水稻抗白叶枯病新基因Xa32(t)的鉴定和初步定位[J]. 作物学报, 2009, 35(7):1173-1180. |
[50] | 阮辉辉, 严成其, 安德荣, 等. 疣粒野生稻抗白叶枯病新基因xa32(t)的鉴定及其分子标记定位(英文)[J]. 西北农业学报, 2008(6):170-174. |
[51] | S KORINSAK S S P S. Identification of microsatellite markers (SSR) linked to a new bacterial blight resistance gene xa33(t) in rice cultivar 'Ba7'[J]. Maejo international journal of science and technology, 2009, 3(2):235-247. |
[52] |
KUMAR P N, SUjATHA K, LAHA G S, et al. Identification and fine-mapping of Xa33, a novel gene for resistance to Xanthomonas oryzae pv. oryzae[J]. Phytopathology, 2012, 102(2):222-228.
doi: 10.1094/PHYTO-03-11-0075 URL |
[53] | CHEN S, LIU X, ZENG L, et al. Genetic analysis and molecular mapping of a novel recessive gene xa34(t) for resistance against Xanthomonas oryzae pv. oryzae.[J]. Theoretische und angewandte Genetik, 2011, 122(7). |
[54] | 郭嗣斌, 张端品, 林兴华. 小粒野生稻抗白叶枯病新基因的鉴定与初步定位[J]. 中国农业科学, 2010, 43(13):2611-2618. |
[55] | 苗丽丽, 王春连, 郑崇珂, 等. 水稻抗白叶枯病新基因的初步定位[J]. 中国农业科学, 2010, 43(15):3051-3058. |
[56] | H BHASIN D B S R. New PCR-based sequence-tagged site marker for bacterial blight resistance gene (t) of rice[J]. Molecular breeding volume, 2012, 30: 607-611. |
[57] |
ZHANG F, ZHUO D L, ZHANG F, et al. Xa39, a novel dominant gene conferring broad-spectrum resistance to Xanthomonas oryzae pv.oryzae in rice[J]. Plant pathology, 2015, 64(3):568-575.
doi: 10.1111/ppa.12283 URL |
[58] |
KIM S M, SUH J P, QIN Y, et al. Identification and fine-mapping of a new resistance gene, Xa40, conferring resistance to bacterial blight races in rice (Oryza sativa L.)[J]. Theoretical and applied genetics, 2015, 128(10):1933-1943.
doi: 10.1007/s00122-015-2557-2 URL |
[59] |
HUTIN M, SABOT F, GHESQUIERE A, et al. A knowledge-based molecular screen uncovers a broad-spectrum OsSWEET14 resistance allele to bacterial blight from wild rice[J]. Plant journal, 2015, 84(4):694-703.
doi: 10.1111/tpj.13042 URL |
[60] |
BUSUNGU C, TAURA S, SAKAGAMI J I, et al. High-resolution mapping and characterization of xa42, a resistance gene against multiple Xanthomonas oryzae pv. oryzae races in rice (Oryza sativa L.)[J]. Breed science, 2018, 68(2):188-199.
doi: 10.1270/jsbbs.17094 URL |
[61] | KIM S, REINKE R F. A novel resistance gene for bacterial blight in rice, Xa43(t) identified by GWAS, confirmed by QTL mapping using a bi-parental population[J]. Plos one, 2019, 14(2). |
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