作物学报 ›› 2011, Vol. 37 ›› Issue (07): 1175-1185.doi: 10.3724/SP.J.1006.2011.01175
胡霞1,石瑜敏2,**,贾倩1,徐琴1,王韵1,陈凯1,孙勇1,朱苓华1,徐建龙1,*,黎志康1,3
HU Xia1,SHI Yu-Min2,**,JIA Qian1,XU Qin1,WANG Yun1,CHEN Kai1,SUN Yong1,ZHU Ling-Hua1,XU Jian-Long1,*,LI Zhi-Kang1,3
摘要: 利用优质恢复系测258为轮回亲本与粳型糯稻新品系IR75862杂交创制的BC1F7回交导入系群体,在广西南宁和海南三亚定位了产量相关性状(二次枝梗数、穗总粒数、穗实粒数、粒重和穗重)、粒型(粒长、宽、厚)和碾磨品质(糙米率、精米率和整精米率)的主效QTL并剖析其环境互作效应。双亲在穗实粒数、千粒重、粒长和粒宽及整精米率等性状上存在显著差异。各产量相关性状间呈极显著正相关,而与千粒重和粒长呈极显著负相关。多数产量及粒型相关性状与3种碾磨品质相关不显著。在南宁和三亚环境下检测到影响产量相关性状、粒型及碾磨品质的主效QTL共计57个,包括二次枝梗数的6个,穗实粒数4个,穗总粒数、粒重和穗重各5个,粒长9个,粒宽7个,粒厚1个,糙米率4个,精米率5个和整精米率6个,分布在除第11染色体外的所有染色体上。多数影响枝梗数、穗粒数和粒重的QTL成簇分布,而且与影响BR、MR和HR的QTL分布在不同染色体区域。在第2、第3、第4、第5和第6染色体上鉴定出影响穗粒数、粒重、粒型及碾磨品质的重要QTL,这些QTL在以往不同遗传背景和环境下被多次检测到。在第8染色体RM152~RM310区间鉴定到1个影响粒长和粒宽的新的QTL,能同步增加粒宽和粒长。鉴定出的这些稳定表达的QTL具有标记辅助选择育种的应用价值。整精米率是受环境影响最大的性状,其QTL的环境互作效应明显。对QTL的环境互作效应特点及其在品种标记辅助改良中的作用进行了深入探讨。
| [1]Peng S B, Cassman K G, Virmani S S, Sheehy J, Khush G S. Yield potential trends of tropical rice since the release of IR8 and the challenge of increasing rice yield potential. Crop Sci, 1999, 39: 1552–1559 [2]Juliano B O, Villareal C P. Grain Quality Evaluation of World Rice. Manila, Philippines: International Rice Research Institute, 1993. pp 35–60 [3]Jennings P R, Kauffman W R. Rice Improvement. Los Banos, Laguna, Philippines: International Rice Research Institute, 1979. pp 101–120 [4]Khush G S. Prospects of and approaches to increasing the genetic yield potential of rice. In: Evenson R E, Herdt R W, Hossain M, eds. Rice Research in Asia: Progress and Priorities. CAB International, Wallingford: UK at the University Press, Cambridge, 1996. pp 59–71 [5]Takita T. Inheritance of grain size and the relationship between grain size and other characters in rice. Bull Nat Agric Res Cent, 1985, 3: 55–71 [6]Chauhan J S. Inheritance of grain weight, size and shape in rainfed rice (Oryza sativa L.). Indian J Agric Sci, 1998, 68: 9–12 [7]Zhu J, Weir B S. Analysis of cytoplasmic and maternal effects: II. Genetic models for triploid endosperms. Theor Appl Genet, 1994, 89: 160–166 [8]Shi C H, Zhu J, Zang R C, Chen G L. Genetic and heterosis analysis for cooking quality traits of indica rice in different environments. Theor Appl Genet, 1997, 95: 294–300 [9]Zhuang J Y, Lin H X, Qian G R, Hittalmani S, Huang N, Zheng K L. Analysis of QTL × environment interaction for yield components and plant height in rice. Thero Appl Genet, 1997, 95: 799–808 [10]Li Z K, Pinson S R M, Park W D, Paterson A H, Stansel J W. Epistasis for three grain yield components in rice (Oryza sativa L.). Genetics, 1997, 145: 453–465 [11]Xu J L, Yu S B, Luo L J, Zhong D B, Sanchez A, Mei H W, Khush G S, Li Z K. Molecular dissection of the primary sink size in rice (Oryza sativa L.). Plant Breed, 2004, 123: 43–50 [12]Fan C, Xing Y, Mao H, Lu T, Han B, Xu C, Li X, Zhang Q. GS3, a major QTL for grain length and weight and minor QTL for grain width and thickness in rice, encodes a putative transmembrane protein. Theor Appl Genet, 2006, 112: 1164–1171 [13]Zheng T Q, Xu J L, Li Z K, Zhai H Q, Wan J M. Genomic regions associated with milling quality and grain shape identified in a set of random introgression lines of rice (Oryza sativa L.). Plant Breed, 2007, 126: 158–163 [14]Ando T, Yamamoto T, Shimizu T, Ma X, Shomura A, Takeuchi Y, Lin S Y, Yano M. Genetic dissection and pyramiding of quantitative traits for panicle architecture by using chromosomal segment substitution lines in rice. Theor Appl Genet, 2008, 116: 881–890 [15]Xing Y-Z(邢永忠), Xu C-G(徐才国), Hua J-P(华金平), Tan Y-F(谈移芳). Analysis of QTL × Environment interaction for rice oanicle characteristics. Acta Genet Sin (遗传学报), 2001, 28(5): 439–446 (in Chinese with English abstract) [16]Temnykh S, DeClerck G, Lukashova A, Lipovich L, Cartinhour S, McCouch S. Computational and experimental analysis of microsatellites in rice (Oryza sativa L.): frequency, length variation, transposon associations, and genetic marker potential. Genome Res, 2001, 11: 1441–1452 [17]SAS Institute. SAS/STAT User’s Guide. SAS Institute, Cary, 1996 [18]Wang D L, Zhu J, Li Z K, Paterson A H. Mapping QTLs with epistatic effects and QTL × environment interactions by mixed linear model approaches. Theor Appl Genet, 1999, 99: 1255–1264 [19]Wang Y, Kuroda E, Hirano M. Analysis of high yielding mechanism on rice varieties belonging to different plant types. Jpn J Crop Sci, 1997, 66: 293–299 [20]Xu Z-J(徐正进), Chen W-F(陈温福), Ma-D-R(马殿荣), Lü Y-N(吕英娜), Zhou S-Q(周淑清), Liu L-X(刘丽霞). Correlations between rice grain shapes and main qualitative characteristics. Acta Agron Sin (作物学报), 2004, 30(9): 894–900 (in Chinese with English abstract) [21]Liu J-F(刘家富), Kui L-M(奎丽梅), Zhu Z-F(朱作峰), Tan L-B(谭禄宾), Wang G-J(王桂娟), Li Q-W(黎其万), Shu J-H(束继红), Sun C-Q(孙传清). Identification of QTLs associated with processing quality and appearance quality of common wild rice (Oryza rufipogon Griff.). J Agric Biotechnol (农业生物技术学报), 2007, 15(1): 90–96 (in Chinese with English abstract) [22]Yao G-X(姚国新), Li J-J(李金杰), Zhang Q(张强), Hu G-L(胡广隆), Chen C(陈超), Tang B(汤波), Zhang H-L(张洪亮), Li Z-C(李自超). Mapping QTLs for grain weight and shape using four sister near isogenic lines in rice (Oryza sativa L.). Acta Agron Sin (作物学报), 2010, 36(8): 1310–1317 (in Chinese with English abstract) [23]Lu C, Shen L,Tan Z, Xu Y, He P, Chen Y, Zhu L. Comparative mapping of QTLs for agronomy traits of rice across environments using a doubled haploid population. Theor Appl Genet, 1996, 93: 1211–1217 [24]Li Z K, Pinson S R M, Stansel J W, Paterson A H. Genetic dissection of the source-sink relationship affecting fecundity and yield in rice (Oryza sativa L.). Mol Breed, 1998, 4: 419–426 [25]Mei H W, Xu J L, Li Z K, Yu X Q, Guo L B, Wang Y P, Ying C S, Luo L J. QTLs influencing panicle size detected in two reciprocal introgressive line (IL) populations in rice (Oryza sativa L.). Theor Appl Genet, 2006, 112: 648–656 [26]Song X J, Huang W, Shi M, Zhu M Z, Lin H X. A QTL for rice grain width and weight encodes a previously unknown RING-type E3 ubiquitin ligase. Nat Genet, 2007, 39: 623–630 [27]Shomura A, Izawa T, Ebana K, Ebitani T, Kanegae H, Konishi S, Yano M. Deletion in a gene associated with grain size increased yields during rice domestication. Nat Genet, 2008, 40: 1023–1028 [28]Wang E, Wang J, Zhu X, Hao W, Wang L, Li Q, Zhang L, He W, Lu B, Lin H, Ma H, Zhang G, He Z. Control of rice grain-filling and yield by a gene with a potential signature of domestication. Nat Genet, 2008, 40: 1370–1374 [29]Paterson A H, Damon S, Hewitt J D, Zamir D, Rabinowitch H D, Lincoln S E, Lander E S, Tanksley S D. Mendelian factors underlying quantitative traits in tomato: comparison across species, generations and environments. Genetics, 1991, 127: 181–197 [30]Li Z K, Yu S B, Lafitte H R, Huang N, Courtois B, Hittalmani S, Vijayakumar C H M, Liu G F, Wang G C, Shashidhar H E, Zhuang J Y, Zheng K L, Singh V P, Sidhu J S, Srivantaneeyakul S, Khush G S. QTL × environment interactions in rice. I. Heading date and plant height. Theor Appl Genet, 2003, 108: 141–153 [31]Jansen R C, Stam P. High resolution of quantitative traits into multiple loci via interval mapping. Genetics, 1994, 136: 1447–1485 [32]Wang S C. Simulation Study on the Methods for Mapping Quantitative Trait Loci in Inbred Line Crosses. PhD Dissertation of Zhejiang University, 2000 [33]Wang Y(王韵), Cheng L-R(程立锐), Sun Y(孙勇), Zhou Z(周政), Zhu L-H(朱苓华), Xu Z-J(徐正进), Xu J-L(徐建龙), Li Z-K(黎志康). Genetic background effect on QTL expression of heading date and plant height and their interaction with environment in reciprocal introgression lines of rice. Acta Agron Sin (作物学报), 2009, 35(8): 1386–1394 (in Chinese with English abstract) |
| [1] | 马婷婷, 郭晓江, 李豪, 邓梅, 蒲至恩, 李伟, 张亚洲, 王凤涛, 崔凤娟, 魏育明, 王际睿, 蒋云峰, 陈国跃. 利用小麦农家种孝感麦协同改良蜀麦753产量与抗病耐逆性的育种实践[J]. 作物学报, 2026, 52(1): 56-71. |
| [2] | 胡亮亮, 周洪妹, 王晓磊, 王素华, 李彩菊, 魏云山, 王丽侠, 程须珍, 陈红霖. 小豆产量相关性状的基因型与环境互作效应及稳定性分析[J]. 作物学报, 2025, 51(10): 2581-2594. |
| [3] | 邵美红, 赵玲玲, 程楚, 程思明, 朱双兵, 翟来圆, 陈凯, 徐建龙. 水稻黄华占背景选择导入系的耐低氮筛选评价与利用[J]. 作物学报, 2024, 50(8): 1907-1919. |
| [4] | 刘颖超, 方敦煌, 徐海明, 童治军, 肖炳光. 烟草生物碱性状的QTL定位[J]. 作物学报, 2024, 50(1): 42-54. |
| [5] | 胡艳娟, 薛丹, 耿嫡, 朱末, 王天穹, 王晓雪. 水稻OsCDF1基因突变效应及其基因组变异分析[J]. 作物学报, 2023, 49(9): 2362-2372. |
| [6] | 殷芳冰, 李雅楠, 鲍建喜, 马雅杰, 秦文萱, 王锐璞, 龙艳, 李金萍, 董振营, 万向元. 玉米雌穗产量相关性状全基因组关联分析与候选基因鉴定[J]. 作物学报, 2023, 49(2): 377-391. |
| [7] | 姜骁, 许静, 潘丽娟, 陈娜, 王通, 江晓东, 殷祥贞, 杨珍, 禹山林, 迟晓元. 花生产量相关性状与气象因子多环境相关性分析[J]. 作物学报, 2023, 49(11): 3110-3121. |
| [8] | 王小雷, 李炜星, 欧阳林娟, 徐杰, 陈小荣, 边建民, 胡丽芳, 彭小松, 贺晓鹏, 傅军如, 周大虎, 贺浩华, 孙晓棠, 朱昌兰. 基于染色体片段置换系群体检测水稻株型性状QTL[J]. 作物学报, 2022, 48(5): 1141-1151. |
| [9] | 杨明, 李丹婷, 范德佳, 谭嵩娟, 程遐年, 刘裕强, 万建民. 广西野生稻Y11抗白背飞虱QTL定位[J]. 作物学报, 2022, 48(11): 2715-2723. |
| [10] | 罗兰, 雷丽霞, 刘进, 张瑞华, 金桂秀, 崔迪, 黎毛毛, 马小定, 赵正武, 韩龙植. 利用东乡普通野生稻染色体片段置换系定位产量相关性状QTL[J]. 作物学报, 2021, 47(7): 1391-1401. |
| [11] | 姜树坤,王立志,杨贤莉,李波,母伟杰,董世晨,车韦才,李忠杰,迟力勇,李明贤,张喜娟,姜辉,李锐,赵茜,李文华. 基于高密度SNP遗传图谱的粳稻芽期耐低温QTL鉴定[J]. 作物学报, 2020, 46(8): 1174-1184. |
| [12] | 童治军,张谊寒,陈学军,曾建敏,方敦煌,肖炳光. 雪茄烟品种Beinhart1000-1赤星病抗性基因的QTL定位[J]. 作物学报, 2019, 45(3): 477-482. |
| [13] | 崔国庆,王世明,马福盈,汪会,向朝中,李云峰,何光华,张长伟,杨正林,凌英华,赵芳明. 水稻高秆染色体片段代换系Z1377的鉴定及重要农艺性状QTL定位[J]. 作物学报, 2018, 44(10): 1477-1484. |
| [14] | 吕品, 于海峰, 侯建华. 利用抗旱选择导入系定位向日葵产量性状QTL[J]. 作物学报, 2018, 44(03): 385-396. |
| [15] | 沈超,李定国,聂以春,林忠旭. 利用黄褐棉染色体片段导入系定位产量和纤维品质性状QTL[J]. 作物学报, 2017, 43(12): 1733-1745. |
|
||