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核农学报  2014 

两个水稻细卷叶等位突变体的基因定位

DOI: 10:11869/j.issn.100-8551.2014.01.0007, PP. 7-13

Keywords: 水稻,细卷叶突变体,基因定位,类纤维素合成酶D4

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Abstract:

叶片形态是水稻重要的农艺性状之一。本研究分离了两个水稻突变体F2-102和S1-4,其表型为叶片宽度减小,叶片半卷及半矮化。遗传分析表明,这两个突变体均受单一核编码隐性基因控制,并利用Indel标记将其定位在第12号染色体长臂上。对定位区间内的编码类纤维素合成酶D4的基因OsCSLD4进行序列分析表明,突变体F2-102在第二个外显子缺失了8bp,而S1-4在第二个外显子发生单碱基替换,导致类纤维素合成酶D4功能缺失,引起细卷叶表型。

References

[1]  Li M, Xiong G Y, Li R, et al. Rice cellulose synthase-like D4 is essential for normal cell-wall biosynthesis and plant growth[J]. The Plant Journal, 2009, 60(6): 1055-1069
[2]  Wu C, Fu Y P, Hu G C, et al. Isolation and characterization of a rice mutant with narrow and rolled leaves[J]. Planta, 2010, 232(2): 313-324
[3]  Hu J, Zhu L, Zeng D L, et al. Identification and characterization of NARROW AND ROLLED LEAF 1, a novel gene regulating leaf morphology and plant architecture in rice[J]. Plant Molecular Biology, 2010, 73(3): 283-292
[4]  Luan W J, Liu Y Q, Zhang F X, et al. OsCD1 encodes a putative member of the cellulose synthase-like D sub-family and is essential for rice plant architecture and growth[J]. Plant Biotechnology Journal, 2011, 9(4): 513-524
[5]  郭伟伟, 李光贤, 王光全等.水稻直穗散穗形状的初步研究[J]. 核农学报, 2012, 26(1): 11-16
[6]  Lerouxel O, Cavalier D.M, Liepman A.H.and Keegstra K, Biosynthesis of plant cell wall polysaccharides-a complex process[J]. Current Opinion in Plant Biology, 2006, 9(6): 621-630
[7]  Tsiantis M. Control of shoot cell fate: beyond homeoboxes[J]. Plant Cell, 2001, 13(4): 733-738
[8]  Scanlon M J.Developmental complexities of simple leaves[J]. Current Opinion in Plant Biology, 2000, 3 (1): 3l-36
[9]  Bowman J L, Eched Y, Baum S F. Establishment of polarity in angiosperm lateral organs[J]. Trends Genet, 2002, 18 (3): 134-141
[10]  祁永斌, 杨卫兵, 叶胜海, 刘合芹, 金庆生, 何祖华. 水稻双剑叶突变体的表型、遗传分析及BR应答[J].核农学报, 2012, 26(6): 847-852
[11]  王寅, 徐建伟, 张丹丹, 舒小丽, 吴殿星. 与栽培密度相关的水稻形态基因研究进展[J].核农学报, 2011, 25(5): 951-958
[12]  郎有忠, 张祖建, 顾兴友, 杨建昌, 朱庆森.水稻卷叶性状生理生态效应的研究Ⅱ.光合特性、物质生产与产量形成[J]. 作物学报, 2004, 30(9): 883-887
[13]  徐东, 吴海滨, 杨文韬, 巩鹏涛, 李有志, 赵德刚.水稻单侧卷叶突变体B157遗传分析及基因初步定位[J].分子植物育种, 2008, 6(2): 220-226
[14]  李仕贵, 马玉清, 何平, 黎汉云, 陈英, 周开达, 朱立煌. 一个未知的卷叶基因的识别和定位[J].四川农业大学学报, 1998, 16(4): 391-393
[15]  邵元健, 陈宗祥, 张亚芳, 陈恩会, 祁顶成, 缪进, 潘学彪.一个水稻卷叶主效QTL的定位及其物理图谱的构建[J].遗传学报, 2005, 32(5): 501-506
[16]  严长杰, 严松, 张正球, 梁国华, 陆驹飞, 顾铭洪.一个新的水稻卷叶突变体rl9(t)的遗传分析和基因定位[J].科学通报, 2005, 50(24): 2757-2762
[17]  Luo Z K, Yang Z L, Zhong B Q, Li Y F, Xie R, Zhao F M, Ling Y H, He G H. Genetic analysis and fine mapping of a dynamic rolled leaf gene, RL10(t), in rice (Oryza sativa L.)[J]. Genome, 2007, 50(9): 811-817
[18]  施勇烽, 陈洁, 刘文强, 黄奇娜, 沈波, Hei L, 吴建利.一个新的水稻卷叶突变体的遗传分析与基因定位[J].中国科学(C 辑:生命科学), 2009, 39(4): 407-412
[19]  夏令, 陈亮, 郭迟鸣, 张红心, 赵政, 沈明山, 陈亮.一个新的水稻矮秆突变体sd-sl 的遗传与基因定位研究[J].厦门大学学报:自然科学版, 2007, 46(6): 847-851
[20]  Wang D K, Liu H Q, Li K L, Li S J, Tao Y Z. Genetic analysis and gene mapping of a narrow leaf mutant in rice (Oryza sativa L.)[J]. Chinese Science Bulletin, 2009, 54(5): 752-758
[21]  邵元健, 潘存红, 陈宗祥, 左示敏, 张亚芳, 潘学彪.水稻不完全隐性卷叶主基因rl(t)的精细定位[J].科学通报, 2005, 50(19): 2107-2113
[22]  沈革志, 王新其, 殷丽青, 王江, 李琳, 张景六.T-DNA插入水稻群体中卷叶突变体R1-A2的遗传分析[J].实验生物学报, 2003, 36(6): 459-464
[23]  陈兆贵, 王江, 张泽民, 刘芳, 朱海涛, 宛新杉, 张景六, 张桂权.T-DNA(Ds)插入产生的水稻卷叶突变的遗传分析[J].华南农业大学学报, 2006, 27(1): 1-4
[24]  罗远章, 赵芳明, 桑贤春, 凌英华, 杨正林, 何光华.水稻新型卷叶突变体rl12(t)的遗传分析和基因定位[J].作物学报, 2009, 35(11): 1967-1972
[25]  Yan S, Yan C J, Zeng X H, Yang Y C, Fang Y W, Tian C Y, Sun Y W, Cheng Z K, Gu M H. Rolled leaf 9, encoding a GARP protein regulates the leaf abaxial cell fate in rice[J]. Plant Molecular Biology, 2008, 68(3): 239-250
[26]  Keegstra K, Walton J. Beta-glucans—brewer's bane, dietician's delight[J]. Science, 2006, 311(5769): 1872-1873
[27]  Fincher G B. Revolutionary times in our understanding of cell wall biosynthesis and remodeling in the grasses[J]. Plant Physiology, 2009, 149(1): 27-37
[28]  Dhugga K S, Barreiro R, Whitten B, Stecca K, Hazebroek J, Randhawa G S, Dolan M, Kinney A J, Tomes D, Nichols S, Anderson P. Guar seed beta-mannan synthase is a member of the cellulose synthase super gene family[J]. Science, 2004, 303(5656): 363-366
[29]  Liepman A H, Wilkerson C G, Keegstra K. Expression of cellulose synthase-like (Csl) genes in insect cells reveals that CslA family members encode mannan synthases[J]. Proceedings of the National Academy of Sciences of the United States of America, 2005, 102(6): 2221-2226
[30]  Liepman A H, Nairn C J, Willats W GT, Srensen I, Roberts A W, Keegstra K. Functional genomic analysis supports conservation of function among cellulose synthase-like A gene family members and suggests diverse roles of mannans in plants[J]. Plant Physiology, 2007, 143(4): 1881-1893
[31]  Cocuron J C, Lerouxel O, Drakakaki G, Alonso A P, Liepman A H, Keegstra K, Raikhel N, Wilkerson C. A gene from the cellulose synthase-like C family encodes a beta-1, 4 glucan synthase[J]. Proceedings of the National Academy of Sciences of the United States of America, 2007, 104(20): 8550-8555
[32]  Burton R A, Wilson S M, Hrmova M, Harvey A J, Shirley N J, Medhurst A, Stone B A, Newbigin E J, Bacic A, Fincher G B. Cellulose synthase-like CslF genes mediate the synthesisof cell wall (1, 3;1, 4)-beta-D-glucans[J]. Science, 2006, 311(5769): 1940-1942
[33]  Burton R A, Jobling S A, Harvey A J, Shirley N J, Mather D E, Bacic A, Fincher G B. The genetics and transcriptional profiles of the cellulose synthase-like HvCslF gene family in barley[J]. Plant Physiology, 2008, 146(4): 1821-1833
[34]  Doblin M S, Pettolino F A, Wilson S M, Campbell R, Burton R A, Fincher G B, Newbigin E, Bacic A. A barley cellulose synthase-like CSLH gene mediates (1, 3;1, 4)-beta-D-glucan synthesis in transgenic Arabidopsis[J]. Proceedings of the National Academy of Sciences of the United States of America, 2009, 106(4): 5996-6001
[35]  朱丽, 胡江, 颜美仙, 高振宇, 刘坚, 钱前, 郭龙彪.水稻窄卷叶相关基因OsCSLD4的RNAi研究及表达分析[J].核农学报, 2010, 24(5):873-880
[36]  Zhang G H, Xu Q, Zhu X D, Qian Q, Xue H W. SHALLOT-LIKE1 is a KANADI transcription factor that modulates rice leaf rolling by regulating leaf abaxial cell development[J]. Plant Cell, 2009, 21(3): 719-35
[37]  Xiang J J, Zhang G H, Qian Q, Xue H W. Semi-rolled leaf1 encodes a putative glycosylphosphatidylinositol-anchored protein and modulates rice leaf rolling by regulating the formation of bulliform cells[J]. Plant Physiology, 2012, 159(4):1488-500

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