作物学报 ›› 2014, Vol. 40 ›› Issue (01): 54-62.doi: 10.3724/SP.J.1006.2014.00054
李彬1,邓元宝1,颜学海1,杨阳1,刘彭强1,杜勇1,谢培1,王德正2,邓其明1,*,李平1,*
LI Bin1,DENG Yuan-Bao1,YAN Xue-Hai1,YANG Yang1,LIU Peng-Qiang1,DU Yong1,XIE Pei1,WANG De-Zheng2,DENG Qi-Ming1,*,LI Ping1,*
摘要:
| [1]Moffat A S. Plant genetics. Mapping the sequence of disease resistance. Science, 1994, 265: 1804–1805[2]Skamnioti P, Gurr S J. Against the grain: safeguarding rice from rice blast disease. Trends Biotechnol, 2009, 27: 141–150[3]赵国珍, 贾育林, 严宗卜, Christopher WDEREN, Melissa H JIA, 戴陆园. 一种高效便捷的水稻DNA提取法及其应用. 中国水稻科学. 2012, 26: 495–499Zhao G-Z, Jia Y L, Yan Z B, Christopher WDEREN, Melissa H JIA, Dai L G. An efficient, economic, and rapid rice DNA extracton method and its application. Chin J Rice Sci, 2012, 26: 495–499 (in Chinese with English abstract)[4]雷财林, 凌忠专, 王久林. 水稻抗病育种研究进展. 生物学通报, 2004, 39(11): 4–7Lei C L, Ling Z Z, Wang J L. Research advanccs in rice breeding for disease resistance. Bull Biol, 2004, 39(11): 4–7 (in Chinese)[5]Ashikawa I, Hayashi N, Yamane H, Kanamori H, Wu J Z, Matsumoto T, Ono K, Yano M. Two adjacent nucleotide-binding site-leucine-rich repeat class genes are required to confer Pikm-specific rice blast resistance. Genetics, 2008, 180: 2267–2276[6]Bryan G T, Wu K S, Farrall L, Jia Y L, Hershey H P, McAdams S A, Faulk K N, Donaldson G K, Tarchini R, Valent B. A single amino acid difference distinguishes resistant and susceptible alleles of the rice blast resistance gene Pi-ta. Plant Cell, 2000, 12: 2033–2046[7]Hua L, Wu J, Chen C, 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, 125: 1047–1055[8]Kanzaki H, Yoshida K, Saitoh H, Fujisaki K, Hirabuchi A, Alaux L, Fournier E, Tharreau D, Terauchi R. Arms race co-evolution of Magnaporthe oryzae AVR-Pik and rice Pik genes driven by their physical interactions. Plant J, 2012, 72: 894–907[9]Lee S W, Han S W, Sririyanum M, Park CH J, Seo Y S, Ronald P C. A type I-secreted, sulfated peptide triggers XA21-mediated innate immunity. Science, 2009, 326: 850–853[10]Lin F, Chen S, Que Z, Wang L, Liu X Q, Pan Q H. The blast resistance gene Pi37 encodes a nucleotide binding site leucine-rich repeat protein and is a member of a resistance gene cluster on rice chromosome 1. Genetics, 2007, 177: 1871–1880[11]Liu J, Liu X, Dai L, Wang G L. Recent progress in elucidating the structure, function and evolution of disease resistance genes in plants. J Genet Genomics, 2007, 34: 765–776[12]Qu S D, Liu G F, Zhou B, Bellizzi M, Zeng L R, Dai L Y, Wang G L. The broad-spectrum blast resistance gene Pi9 encodes a nucleotide-binding site-leucine-rich repeat protein and is a member of a multigene family in rice. Genetics, 2006, 172: 1901–1914[13]Wang W, Wen Y, Berkey R, Xiao S Y. Specific targeting of the Arabidopsis resistance protein RPW8.2 to the interfacial membrane encasing the fungal Haustorium renders broad-spectrum resistance to powdery mildew. Plant Cell, 2009, 21: 2898–2913[14]Xu Y B. Molecular Plant Breeding. USA: International Institute for Applied Biological Science Center, 2012. pp 213–219[15]Zhou B, Qu S, Liu G, Dolan M, Sakai H, Lu G D, Bellizzi M, Wang G. The eight amino-acid differences within three leucine-rich repeats between Pi2 and Piz-t resistance proteins determine the resistance specificity to Magnaporthe grisea. Mol Plant Microbe Interact, 2006, 19: 1216–1228[16]Zhu X, Chen S, Yang J, Zhou S C, Zeng L X, Han J L, Su J, Wang L, Pan Q H. The identification of Pi50(t), a new member of the rice blast resistance Pi2/Pi9 multigene family. Theor Appl Genet, 2012, 124: 1295–1304[17]Fukuoka S, Saka N, Koga H, Ono K, Shimizu T, Ebana K, Hayashi N, Takahashi A, Hirochika H, Okuno K, Yano M. Loss of function of a proline-containing protein confers durable disease resistance in rice. Science, 2009, 325: 998–1001[18]Hayashi N, Inoue H, Kato T, Funao T, Shirota M, Shimizu T, Kanamori H, Yamane H, Saito Y H, Matsumoto T, Yano M, Takatsuji H. Durable panicle blast-resistance gene Pb1 encodes an atypical CC-NBS-LRR protein and was generated by acquiring a promoter through local genome duplication. Plant J, 2010, 64: 498–510[19]Chen X, Shang J, Chen D, Lei C L, Xu J C, Ling Z Z, Cao G, Ma B T, Wang Y P, Zhao X F, Li S G, Zhu L H. A B-lectin receptor kinase gene conferring rice blast resistance. Plant J, 2006, 46: 794–804[20]刘华招, 陈温福, 刘延. 水稻基因分子标记的物理图谱锚定. 华北农学报, 2009, 24(增刊): 5–8Liu H-Z, Chen W-F, Liu Y. Rice Pi genes molecular markers anchored to the physics map of rice genome. Acta Agric Boreali-Sin, 2009, 24(suppl): 5–8 (in Chinese with English abstract) [21]Zhai C, Lin F, Dong Z, He X Y, Yuan B, Zeng X S, Wang L, Pan Q H. The isolation and characterization of Pik, a rice blast resistance gene which emerged after rice domestication. New Phytol, 2011, 189: 321–334[22]Yuan B, Zhai C, Wang W, Zeng X S, Xu X K, Hu H Q, Lin F, Wang L, Pan Q H. The Pik-p resistance to Magnaporthe oryzae in rice is mediated by a pair of closely linked CC-NBS-LRR genes. Theor Appl Genet, 2011, 122: 1017–1028[23]Okuyama Y, Kanzaki H, Abe A, Yoshida K, Tamiru M, Saitoh H, Fujibe T, Matsumura 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[24]Bamshad M, Wooding S P. Signature of natural selection in the human genome. Nat Rev Genet, 2003, 4: 99–111[25]Tian D, Araki H, Stahl E, Bergelson J, Kreitman M. Signature of balancing selection in the Arabidopsis. Proc Natl Acad Sci USA, 2002, 99: 11525–11530[26]Brunner S, Hurni S, Streckeisen P, Mayr G, Albrecht M, Yahiaoui N, Keller B. Intragenic allele pyramiding combines different specificities of wheat Pm3 resistance alleles. Plant J, 2010, 64: 433–445[27]Ravensdale M, Nemri A, Thrall P H, Ellis J G, Dodds P N. Co-evolutionary interactions between host resistance and pathogen effector genes in flax rust disease. Mol Plant Pathol, 2011, 12: 93–102[28]Rai A K, Kumar S P, Gupta S K, Gautam N, Singh N K, Sharma T R. Functional complementation of rice blast resistance gene Pi-K(H)(Pi54) conferring resistance to diverse strains of Magnaporthe oryzae. Plant Biochem Biotechnol, 2011, 20: 55–65[29]李成云, 陈宗麒, 陈琼珠,稻瘟病菌的研究进展. 西南农业学报, 1995, 8(3): 107–112Li C Y, Chen Z Q, Chen Q Z. Research progress of rice blast fungus. Southwest China J Agric Sci, 1995, 8(3): 107–112 (in Chinese)[30]Takahashi A, Hayashi N, Miyao A, Hirochika H. Unique features of the rice blast resistance Pi-sh locus revealed by large scale retrotransposon-tagging. BMC Plant Biol, 2010, 10(175): 1–14[31]刘海, 肖应辉, 唐文邦, 邓化冰, 陈立云. 水稻两用核不育系繁殖基地计算机选择系统研制与应用. 作物学报, 2011, 37: 755–763Liu , Xiao Y H, Tang W B, Deng H B, Chen L Y. Development and application of a computer-aided selection system for thermo-sensitive genic male sterile rice multiplying site. Acta Agron Sin, 2011, 37: 755–763 (in Chinese with English abstract)[32]杨仕华, 程本义, 沈伟峰, 夏俊辉. 中国两系杂交水稻选育与应用进展. 杂交水稻, 2009, 24(1): 5–9Yang S H, Cheng B Y, Shen W F, Xia J H. Progress of application and breeding on two-line hybrid rice in China. Hybrid Rice, 2009, 24(1): 5–9 (in Chinese with English abstract) |
| [1] | 翟胜男, 曹新有, 李豪圣, 李吉虎, 李法计, 刘金栋, 夏先春, 吕莹莹, 马瑞峰, 王颖, 耿洪伟, 刘建军. 小麦Pod-A1、Pod-D1和Pod-2D位点等位变异对籽粒过氧化物酶活性的遗传效应分析[J]. 作物学报, 2026, 52(6): 1593-1603. |
| [2] | 彭佳泺, 李颖, 李丹丹, 杨军宁, 郭学峰, 张文姣, 俞晓雪, 周亚荣, 王振玉, 王彩香, 马雄风, 宿俊吉. 陆地棉I类LBD家族成员鉴定及GhLBD6调控开花期的功能和单倍型分析[J]. 作物学报, 2026, 52(6): 1682-1697. |
| [3] | 张献丰, 郭利建, 李康春, 孔斌雪, 刘玉芳, 车卓, 杨德龙. 小麦ABHD6基因家族鉴定与粒重功能标记开发[J]. 作物学报, 2026, 52(6): 1711-1727. |
| [4] | 王楚锐, 李开祥, 赵志, 肖麓, 唐国永, 赵志刚, 徐亮, 杜德志, 柳海东. 甘蓝型春油菜早花基因BnCRY2功能位点KASP标记的开发及应用[J]. 作物学报, 2026, 52(3): 708-721. |
| [5] | 王粤生, 葛冬冬, 程兰斐, 陈春环, 王长有, 刘新伦, 李停栋, 邓平川, 吉万全, 赵继新. 小麦-华山新麦草二体异代换系16DH25-7的分子细胞遗传学及抗病性鉴定[J]. 作物学报, 2026, 52(2): 433-445. |
| [6] | 苏爱国, 肖森林, 易红梅, 段赛茹, 王帅帅, 张如养, 邢锦丰, 李春辉, 孙轩, 徐瑞斌, 徐田军, 李志勇, 张勇, 王荣焕, 宋伟, 赵久然. 玉米穗腐病的抗性遗传研究进展与育种应用[J]. 作物学报, 2026, 52(1): 1-13. |
| [7] | 凤舞剑, 冼晓青, 张新钵, 曹丹, 强承魁. 基于转录组和AlphaFold对稻瘟菌经典效应蛋白和水稻受体的快速鉴定[J]. 作物学报, 2025, 51(6): 1480-1488. |
| [8] | 杨思杰, 杜启迪, 柴守玺, 熊宏春, 谢永盾, 赵林姝, 古佳玉, 郭会君, 刘录祥. 小麦小旗叶突变性状基因定位与遗传分析[J]. 作物学报, 2025, 51(6): 1548-1557. |
| [9] | 沈文杰, 陈晴晴, 胡逸群, 张爱芳, 张曼玉. 安徽省不同生理小种稻瘟病菌对稻瘟灵的敏感性研究[J]. 作物学报, 2025, 51(5): 1338-1346. |
| [10] | 朱建平, 李文奇, 许扬, 王芳权, 李霞, 蒋彦婕, 范方军, 陶亚军, 陈智慧, 吴莹莹, 杨杰. 水稻粉质胚乳突变体we2的表型分析与基因定位[J]. 作物学报, 2025, 51(4): 1110-1117. |
| [11] | 展宗冰, 靳奇峰, 刘迪, 吕迎春, 郭莹, 张雪婷, 虎梦霞, 王尚, 杨芳萍. 甘肃省小麦农家种老芒麦分子鉴定及其重要性状评价[J]. 作物学报, 2025, 51(3): 609-620. |
| [12] | 谢留杰, 段敏, 杨勇, 潘晓飚, 马伯军, 黄善军, 陈析丰. 抗白叶枯病广亲和恢复系的创制及杂交育种应用研究[J]. 作物学报, 2025, 51(12): 3133-3143. |
| [13] | 徐晓伟, 冯晶, 王凤涛, 童朝阳, 张建周, 李春盈, 蔺瑞明. 小麦地方品种蚕老麦成株抗条锈病QTL定位[J]. 作物学报, 2025, 51(11): 2933-2943. |
| [14] | 田汉钊, 冯龙婷, 应开, 孟天琪, 武军, 刘玉秀. 外引小麦种质麦谷蛋白亚基组成及评价[J]. 作物学报, 2025, 51(10): 2663-2680. |
| [15] | 马骏, 陈锋, 殷贵鸿, 胡海燕, 魏学宁, 解超杰, 孔令让. 小麦抗茎基腐病遗传育种研究的现状与展望[J]. 作物学报, 2025, 51(10): 2559-2569. |
|
||