作物学报 ›› 2022, Vol. 48 ›› Issue (5): 1141-1151.doi: 10.3724/SP.J.1006.2022.12024
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*(
)
WANG Xiao-Lei(
), LI Wei-Xing, OU-YANG Lin-Juan, XU Jie, CHEN Xiao-Rong, BIAN Jian-Min, HU Li-Fang, PENG Xiao-Song, HE Xiao-Peng, FU Jun-Ru, ZHOU Da-Hu, HE Hao-Hua, SUN Xiao-Tang*(
), ZHU Chang-Lan*(
)
摘要:
株型是由多个形态和生理性状集成的复合性状, 它与水稻产量密切相关。挖掘优异株型等位基因或QTL, 对水稻超高产育种具有重要意义。本研究利用籼稻昌恢121和粳稻Koshihikari构建的208个染色体片段置换系(chromosome segment substitution lines, CSSLs), 在3个环境下, 对控制株高、剑叶形态和分蘖数的QTL进行检测, 共鉴定到35个株型性状QTL, 分布于11条染色体上(除9号染色体以外), 解释表型变异2.00%~22.86%。值得关注的是qPH-1-1、qFLW-6和qFLA-3均能在3个环境下被检测到, 其中qFLW-6为1个新鉴定到的剑叶宽QTL。对qPH-1-1和qFLA-3位点进行鉴定, 验证了这2个位点等位基因的加性效应和环境稳定性。本研究为株型性状QTL的进一步精细定位、克隆及分子辅助聚合育种奠定了基础。
| [1] | 马梦影, 巩文靓, 康雪蒙, 段海燕. 水稻理想株型改良的研究进展. 中国农学通报, 2020, 36(29):1-6. |
| Ma M Y, Gong W L, Kang X M, Duan H Y. The improvement of ideal plant type of rice: a review. Chin Agric Sci Bull, 2020, 36(29):1-6 (in Chinese with English abstract). | |
| [2] | 陈温福, 徐正进, 张龙步. 水稻超高产育种——从理论到实践. 沈阳农业大学学报, 2003, 34:324-327. |
| Chen W F, Xu Z J, Zhang L B. Rice breeding for super high yield—from theories to practices. J Shenyang Agric Univ, 2003, 34:324-327 (in Chinese with English abstract). | |
| [3] | 程式华, 曹立勇, 庄杰云, 吴伟明. 关于超级稻品种培育的资源和基因利用问题. 中国水稻科学, 2009, 23:223-228. |
| Cheng S H, Cao L Y, Zhuang J Y, Wu W M. Discussion on germplasm and gene utilization in breeding of super rice. Chin J Rice Sci, 2009, 23:223-228 (in Chinese with English abstract). | |
| [4] | 刘化龙, 杨洛淼, 徐善斌, 刘华东, 邹德堂. 多环境下水稻株型相关性状QTL解析. 东北农业大学学报, 2020, 51:1-9. |
| Liu H L, Yang L M, Xu S B, Liu H D, Zou D T. QTL analysis on plant type related traits of rice under multi-environment. J Northeast Agric Univ, 2020, 51:1-9 (in Chinese with English abstract). | |
| [5] | 周丽慧, 赵春芳, 赵凌, 张亚东, 朱镇, 陈涛, 赵庆勇, 姚姝, 于新, 王才林. 利用染色体片段置换系群体检测水稻叶片形态QTL. 中国水稻科学, 2013, 27:26-34. |
| Zhou L H, Zhao C F, Zhao L, Zhang Y D, Zhu Z, Chen T, Zhao Q Y, Yao S, Yu X, Wang C L. QTL detection for leaf morphology of rice using chromosome segment substitution lines. Chin J Rice Sci, 2013, 27:26-34 (in Chinese with English abstract). | |
| [6] | 李红, 何炜, 连玲, 魏毅东, 蔡秋华, 王颖姮, 谢华安, 张建福. 水稻株型的研究进展. 福建稻麦科技, 2020, 38:61-66. |
| Li H, He W, Lian L, Wei Y D, Cai Q H, Wang Y H, Xie H A, Zhang J F. Research advances on plant type of rice. Fujian Sci Technol Rice Wheat, 2020, 38:61-66 (in Chinese with English abstract). | |
| [7] |
Sasaki A, Ashikari M, Ueguchi-Tanaka M, Itoh H, Nishimura A, Swapan D, Ishiyama K, Saito T, Kobayashi M, Khush G S, Kitano H, Matsuoka M. Green revolution: a mutant gibberellin-synthesis gene in rice. Nature, 2002, 416:701-702.
doi: 10.1038/416701a |
| [8] |
Tan L B, Li X R, Liu F X, Sun X Y, Li C G, Zhu Z F, Fu Y C, Cai H W, Wang X K, Xie D X, Sun C Q. Control of a key transition from prostrate to erect growth in rice domestication. Nat Genet, 2008, 40:1360-1364.
doi: 10.1038/ng.197 |
| [9] |
Zhang L, Yu H, Ma B, Liu G F, Wang J J, Wang J M, Gao R C, Li J J, Liu J Y, Xu J, Zhang Y Y, Li Q, Huang X H, Xu J L, Li J M, Qian Q, Han B, He Z H, Li J Y. A natural tandem array alleviates epigenetic repression of IPA1 and leads to superior yielding rice. Nat Commun, 2017, 8:14789.
doi: 10.1038/ncomms14789 pmid: 28317902 |
| [10] |
Sakamoto T, Morinaka Y, Ohnishi T, Sunohara H, Fujioka S, Ueguchi-Tanaka M, Mizutani M, Sakata K, Takatsuto S, Yoshida S, Tanaka H, Kitano H, Matsuoka M. Erect leaves caused by brassinosteroid deficiency increase biomass production and grain yield in rice. Nat Biotechnol, 2006, 24:105-109.
pmid: 16369540 |
| [11] |
Jin J, Huang W, Gao J P, Yang J, Shi M, Zhu M Z, Luo D, Lin H X. Genetic control of rice plant architecture under domestication. Nat Genet, 2008, 40:1365-1369.
doi: 10.1038/ng.247 |
| [12] |
Wang Y H, Li J Y. Rice, rising. Nat Genet, 2008, 40:1273-1275.
doi: 10.1038/ng1108-1273 |
| [13] |
Jiao Y Q, Wang Y H, Xue D W, Wang J, Yan M X, Liu G F, Dong G J, Zeng D L, Lu Z F, Zhu X D, Qian Q, Li J Y. Regulation of OsSPL14 by OsmiR156 defines ideal plant architecture in rice. Nat Genet, 2010, 42:541-544.
doi: 10.1038/ng.591 |
| [14] |
Liu M M, Shi Z Y, Zhang X H, Wang M X, Zhang L, Zheng K Z, Liu J Y, Hu X M, Di C R, Qian Q, He Z H, Yang D L. Inducible overexpression of ideal plant architecture1 improves both yield and disease resistance in rice. Nat Plants, 2019, 5:389-400.
doi: 10.1038/s41477-019-0383-2 |
| [15] |
Wang F, Han T W, Song Q X, Ye W X, Song X G, Chu J F, Li J Y, Chen Z J. The rice circadian clock regulates tiller growth and panicle development through strigolactone signaling and sugar sensing. Plant Cell, 2020, 32:3124-3138.
doi: 10.1105/tpc.20.00289 |
| [16] |
Wang J, Zhou L, Shi H, Chern M S, Yu H, Yi H, He M, Yin J J, Zhu X B, Li Y, Li W T, Liu J L, Wang J C, Chen X Q, Qing H, Wang Y P, Liu G F, Wang W M, Li P, Wu X J, Zhu L H, Zhou J M, Ronald P C, Li S G, Li J Y, Chen X W. A single transcription factor promotes both yield and immunity in rice. Science, 2018, 361:1026-1028.
doi: 10.1126/science.aat7675 |
| [17] |
王小雷, 李炜星, 曾博虹, 孙晓棠, 欧阳林娟, 陈小荣, 贺浩华, 朱昌兰. 基于染色体片段置换系对水稻粒形及千粒重QTL检测与稳定性分析. 作物学报, 2020, 46:1517-1525.
doi: 10.3724/SP.J.1006.2020.02008 |
| Wang X L, Li W X, Zeng B H, Sun X T, Ou-Yang L J, Chen X R, He H H, Zhu C L. QTL detection and stability analysis of rice grain shape and thousand-grain weight based on chromosome segment substitution lines. Acta Agron Sin, 2020, 46:1517-1525 (in Chinese with English abstract). | |
| [18] | 孙永建, 周济, 徐华山, 余四斌. 利用代换系分析水稻株高QTL及其互作效应. 分子植物育种, 2010, 8:1068-1073. |
| Sun Y J, Zhou J, Xu H S, Yu S B. QTL and their interactions for plant height in rice chromosomal substitution segment lines. Mol Plant Breed, 2010, 8:1068-1073 (in Chinese with English abstract). | |
| [19] | 杨梯丰, 曾瑞珍, 朱海涛, 陈岚, 张泽民, 丁效华, 李文涛, 张桂权. 水稻粒长基因GS3在聚合育种中的效应. 分子植物育种, 2010, 8:59-66. |
| Yang T F, Zeng R Z, Zhu H T, Chen L, Zhang Z M, Ding X H, Li W T, Zhang G Q. Effect of grain length geneGS3 in pyramiding breeding of rice. Mol Plant Breed, 2010, 8:59-66 (in Chinese with English abstract). | |
| [20] |
Hu Z J, Lu S J, Wang M J, He H H, Sun L, Wang H R, Liu X H, Jiang L, Sun J L, Xin X Y, Kong W, Chu C C, Xue H W, Yang J S, Luo X J, Liu J X. A novel QTL qTGW3 encodes the GSK3/SHAGGY-Like kinase OsGSK5/OsSK41 that interacts with OsARF4 to negatively regulate grain size and weight in rice. Mol Plant, 2018, 11:736-749.
doi: 10.1016/j.molp.2018.03.005 |
| [21] |
Zhang T, Wang S M, Sun S F, Zhang Y, Li J, You J, Su T, Chen W B, Ling Y H, He G H, Zhao F M. Analysis of QTL for grain size in a rice chromosome segment substitution line Z1392 with long grains and fine mapping of qGL-6. Rice, 2020, 13:40.
doi: 10.1186/s12284-020-00399-z pmid: 32529315 |
| [22] | 贺浩华, 傅军如, 朱昌兰, 贺晓鹏, 彭小松, 陈小荣, 刘宜柏. 香型超级杂交稻新组合淦鑫688. 杂交水稻, 2008, 23(3):80-82. |
| He H H, Fu J R, Zhu C L, He X P, Peng X S, Chen X R, Liu Y B. Ganxin 688, a new combination of fragrant super hybrid rice. Hybrid Rice, 2008, 23(3):80-82 (in Chinese with English abstract). | |
| [23] | 王小雷, 刘杨, 孙晓棠, 欧阳林娟, 潘锦龙, 彭小松, 陈小荣, 贺晓鹏, 傅军如, 边建民, 胡丽芳, 徐杰, 贺浩华, 朱昌兰. 不同环境下稻米品质性状QTL的检测及稳定性分析. 中国水稻科学, 2020, 34:17-27. |
| Wang X L, Liu Y, Sun X T, Ou-Yang L J, Pan J L, Peng X S, He X P, Ru J R, Bian J M, Hu L F, Xu J, He H H, Zhu C L. Identification and stability analysis of QTL for grain quality traits under multiple environments in rice. Chin J Rice Sci, 2020, 34:17-27 (in Chinese with English abstract). | |
| [24] |
Wang J K, Wan X Y, Crossa J, Crouch J, Weng J F, Zhai H Q, Wan J M. QTL mapping of grain length in rice (Oryza sativa L.) using chromosome segment substitution lines. Genet Res, 2006, 88:93-104.
doi: 10.1017/S0016672306008408 |
| [25] |
Meng L, Li H H, Zhang L Y, Wang J K. QTL IciMapping: integrated software for genetic linkage map construction and quantitative trait locus mapping in biparental populations. Crop J, 2015, 3:269-283.
doi: 10.1016/j.cj.2015.01.001 |
| [26] |
Voorrips R E. MapChart: software for the graphical presentation of linkage maps and QTLs. J Hered, 2002, 93:77-78.
pmid: 12011185 |
| [27] | 邹德堂, 王晋, 王敬国, 刘化龙, 刘宇强, 贾琰. 水稻剑叶形态与单株产量的基因定位分析. 东北农业大学学报, 2014, 45:23-28. |
| Zou D T, Wang J, Wang J G, Liu H L, Liu Y Q, Jia Y. QTL analysis of flag leaf characteristics and ears weight in rice. J Northeast Agric Univ, 2014, 45:23-28 (in Chinese with English abstract). | |
| [28] | 张习春, 张应洲, 圣忠华, 龙武华, 吴健强, 朱速松, 魏祥进. 水稻株型相关性状QTL定位研究. 江苏农业科学, 2019, 47:102-108. |
| Zhang X C, Zhang Y Z, Sheng Z H, Long W H, Wu J Q, Zhu S S, Wei X J. Study on QTL mapping for plant type traits in rice (Oryza sativa). Jiangsu Agric Sci, 2019, 47:102-108 (in Chinese with English abstract). | |
| [29] |
张玲, 李晓楠, 王伟, 杨生龙, 李清, 王嘉宇. 水稻株型相关性状的QTL分析. 作物学报, 2014, 40:2128-2135.
doi: 10.3724/SP.J.1006.2014.02128 |
| Zhang L, Li X N, Wang W, Yang S L, Li Q, Wang J Y. Analysis of QTLs for plant type traits in rice (Oryza sativa). Acta Agron Sin, 2014, 40:2128-2135 (in Chinese with English abstract). | |
| [30] | 彭伟业, 孙平勇, 潘素君, 李魏, 戴良英. 水稻品种魔王谷粒形、剑叶性状和株高QTL定位. 作物学报, 2018, 44:1673-1680. |
| Peng W Y, Sun P Y, Pan S J, Li W, Dai L Y. Mapping QTLs for grain shape, flag leaf traits, and plant height in rice variety Mowanggu. Acta Agron Sin, 2018, 44:1673-1680 (in Chinese with English abstract). | |
| [31] |
Zhu Y Y, Nomura T, Xu Y H, Zhang Y Y, Peng Y, Mao B Z, Hanada A, Zhou H C, Wang R X, Li P J, Zhu X D, Mander L, Kamiya Y, Yamaguchi S, He Z H. ELONGATED UPPERMOST INTERNODE encodes a cytochrome P450 monooxygenase that epoxidizes gibberellins in a novel deactivation reaction in rice. Plant Cell, 2006, 18:442-456.
doi: 10.1105/tpc.105.038455 |
| [32] |
Yang G H, Xing Y Z, Li S Q, Ding J Z, Yue B, Deng K, Li Y S, Zhu Y G. Molecular dissection of developmental behavior of tiller number and plant height and their relationship in rice (Oryza sativa L.). Hereditas, 2006, 143:236-245.
doi: 10.1111/j.2006.0018-0661.01959.x |
| [33] |
Ruan W Y, Guo M N, Xu L, Wang X Q, Zhao H Y, Wang J M, Yi K K. An SPX-RLI1 module regulates leaf inclination in response to phosphate availability in rice. Plant Cell, 2018, 30:853-870.
doi: 10.1105/tpc.17.00738 |
| [34] | Chen S H, Zhou L J, Xu P, Xue H W. SPOC domain-containing protein leaf inclination 3 interacts with LIP1 to regulate rice leaf inclination through auxin signaling. PLoS Genet, 2018, 14:e1007829. |
| [35] | 洪凯, 张斌, 高阳, 阮班普, 彭友林, 马伯军, 钱前, 高振宇. 水稻剑叶夹角和单株产量的QTL分析. 分子植物育种, 2015, 13:761-768. |
| Hong K, Zhang B, Gao Y, Ruan B P, Peng Y L, Ma B J, Qian Q, Gao Z Y. Dissection of QTLs for flag leaf angel and yield per plant in rice. Mol Plant Breed, 2015, 13:761-768 (in Chinese with English abstract). | |
| [36] |
Mei H W, Luo J L, Ying C S, Wang Y P, Yu X Q, Guo L B, Paterson A H, Li Z K. Gene actions of QTLs affecting several agronomic traits resolved in a recombinant inbred rice population and two testcross populations. Theor Appl Genet, 2003, 107:89-101.
pmid: 12721635 |
| [37] |
Mei H W, Li Z K, Shu Q Y, Guo L B, Wang Y P, Yu X Q, Ying C S, Luo L J. Gene actions of QTLs affecting several agronomic traits resolved in a recombinant inbred rice population and two backcross populations. Theor Appl Genet, 2005, 110:649-659.
pmid: 15647921 |
| [38] |
Marri P R, Sarla N, Reddy L V, Siddiq E A. Identification and mapping of yield and yield related QTLs from an Indian accession of Oryza rufipogon. BMC Genet, 2005, 6:33.
doi: 10.1186/1471-2156-6-33 |
| [39] | 张克勤, 戴伟民, 樊叶杨, 沈波, 郑康乐. 水稻剑叶角度与主穗产量的遗传剖析. 中国农学通报, 2008, 24(9):186-192. |
| Zhang K Q, Dai W M, Fan Y Y, Shen B, Zheng K L. Genetic dissection of flag leave angle and main panicle yield traits in rice. Chin Agric Sci Bull, 2008, 24(9):186-192 (in Chinese with English abstract). | |
| [40] | 周丽慧, 谢永楚, 陈涛, 张亚东, 朱镇, 赵庆勇, 姚姝, 于新, 赵凌, 王才林. 水稻剑叶形态与产量的关系及相关性状的QTL分析. 江苏农业学报, 2012, 28:1207-1211. |
| Zhou L H, Xie Y C, Chen T, Zhang Y D, Zhu Z, Zhao Q Y, Yao S, Yu X, Zhao L, Wang C L. Relations between flag leaf morphology and yield and QTL analysis of related traits. Jiangsu Agric Sci, 2012, 28:1207-1211 (in Chinese with English abstract). | |
| [41] | 孙佩, 才宏伟, 卫晓轶. 水稻最高分蘖数和有效分蘖数的QTL分析. 河南农业科学, 2014, 43:12-15. |
| Sun P, Cai H W, Wei X Y. QTL mapping of maximum tiller number and effective tiller number in rice (Oryza sativa L.). J Henan Agric Sci, 2014, 43:12-15 (in Chinese with English abstract). |
| [1] | 胡赵, 钱润, 谢丰璞, 应素平. 水稻SPX基因家族鉴定及响应磷处理的表达分析[J]. 作物学报, 2026, 52(6): 1902-1912. |
| [2] | 邹仪妹, 徐敏, 汪海洋, 姚辉, 王加峰, 刘浩, 任代胜. 两系不育系水稻幼苗根系响应盐胁迫的转录因子调控网络鉴定[J]. 作物学报, 2026, 52(6): 1728-1742. |
| [3] | 闫安, 蒋昆炜, 王蓉圆, 田林, 张璐, 王韵, 徐建龙. 水稻剑叶小维管束数基因SVN7的鉴定与克隆[J]. 作物学报, 2026, 52(5): 1364-1372. |
| [4] | 陈伟, 卫万娟, 赵其兵, 常东伟, 余凌波, 翟鹏飞, 冯志明, 陈宗祥, 任仰涛, 杨鹏, 刘海浪, 李珍富, 杨永乐, 金彦刚, 左示敏. 利用CRISPR/Cas9编辑Hd6基因创制优质早熟水稻新种质[J]. 作物学报, 2026, 52(4): 1046-1056. |
| [5] | 石少阶, 刘凯, 陈姿夷, 王卉颖, 李三和, 周雷, 游艾青. 水稻矮化多分蘖基因DMT1的克隆与功能分析[J]. 作物学报, 2026, 52(4): 1022-1034. |
| [6] | 覃奕琰, 付瑶, 苏畅, 李娜, 徐静茹, 程笑然, 张琪, 赵明辉. OsST41调控水稻苗期耐盐性的功能分析[J]. 作物学报, 2026, 52(3): 802-812. |
| [7] | 叶凡, 李帅, 李思宇, 陈云, 窦超银, 刘立军. 不同节水灌溉方式对东北稻区水稻产量和群体质量的影响[J]. 作物学报, 2026, 52(3): 895-907. |
| [8] | 王婵, 吴莹莹, 李文奇, 李霞, 王芳权, 周彤, 杨杰. 基于HRM技术开发水稻抗条纹叶枯病基因STV11功能标记[J]. 作物学报, 2025, 51(9): 2547-2556. |
| [9] | 陈惠莹, 何嘉欣, 朱斌, 黄士轩, 周星佑, 伍君权, 杨美艳. 水稻黄单胞菌噬菌体vB_XaS_HDB2的全基因组分析和生物学特性研究[J]. 作物学报, 2025, 51(8): 2087-2099. |
| [10] | 杨海洋, 吴林宣, 李博纹, 石翰峰, 袁禧龙, 刘金朝, 蔡海荣, 陈诗怡, 郭涛, 王慧. 基于QTL定位发现的OsWRI3调控水稻种子的落粒性[J]. 作物学报, 2025, 51(7): 1712-1724. |
| [11] | 雷松翰, 范骏扬, 车艳奕, 代永东, 郑雨萌, 田维江, 桑贤春, 王晓雯. 水稻内卷叶突变体acl3的鉴定及调控基因的功能分析[J]. 作物学报, 2025, 51(6): 1467-1479. |
| [12] | 李福媛, 杨奕, 马继琼, 许明辉, 林良斌, 孙一丁. 水稻OsPUB4基因克隆、激素诱导表达分析与互作蛋白筛选[J]. 作物学报, 2025, 51(6): 1690-1700. |
| [13] | 王梦宁, 谢可冉, 高逖, 王飞, 任孝俭, 熊栋梁, 黄见良, 彭少兵, 崔克辉. 水稻幼穗分化期至抽穗期高温对籽粒形态和充实的影响及其与粒重的关系[J]. 作物学报, 2025, 51(5): 1347-1362. |
| [14] | 盛倩男, 方娅婷, 赵剑, 杜思垚, 胡行珍, 余秋华, 朱俊, 任涛, 鲁剑巍. 不同养分管理措施对稻田和旱地油菜产量的影响及其对冻害的响应[J]. 作物学报, 2025, 51(5): 1286-1298. |
| [15] | 翁文安, 邢志鹏, 胡群, 魏海燕, 廖萍, 朱海滨, 瞿济伟, 李秀丽, 刘桂云, 高辉, 张洪程. 无人化旱直播水稻产量形成特征及其能量与经济效益研究[J]. 作物学报, 2025, 51(5): 1363-1377. |
|
||