作物学报 ›› 2021, Vol. 47 ›› Issue (10): 1863-1873.doi: 10.3724/SP.J.1006.2021.02088
田彪(
), 丁仕林, 刘朝雷, 阮班普, 姜洪真, 郭锐, 董国军, 胡光莲, 郭龙彪, 钱前, 高振宇*(
)
TIAN Biao(
), DING Shi-Lin, LIU Chao-Lei, RUAN Ban-Pu, JIANG Hong-Zhen, GUO Rui, DONG Guo-Jun, HU Guang-Lian, GUO Long-Biao, QIAN Qian, GAO Zhen-Yu*(
)
摘要:
为了解析水培苗期根系相关性状的遗传调控, 以籼稻9311和粳稻日本晴(Nipponbare, NPB)为亲本的148个株系构成的重组自交系群体为材料, 对水稻幼苗根系相关性状开展QTL分析。在2次重复中共检测到26个控制最长根长、总根系长、根表面积、根体积和根直径的QTL, 分布在水稻第1、2、4、7、9、10、11号共7条染色体上, 发现了水稻第2、4、7和10号染色体上的4个QTL簇, 包括第4号染色体上控制最长根长的QTL qLRL4。为了精细定位该QTL, 我们构建了以9311为背景、插入缺失标记IND4-1和IND4-4间来自NPB的近等系NIL-qLRL4。利用NIL-qLRL4和9311构建的F2群体, 最终将qLRL4精细定位在标记IND4-1和IND4-3之间约68.23 kb的区间内并预测了候选基因。此根长QTL的精细定位将有助于水稻根长遗传机理的研究, 为探究水稻根系形态建成的分子机制奠定了基础。
| [1] | 范楚玉. 西周农事诗中反映的粮食作物选种及其发展. 自然科学史研究, 1982, 3:267-272. |
| Fan C Y. Selection and development of grain crops reflected in the poetry of agriculture in the Western Zhou Dynasty. Stud Hist Nat Sci, 1982, 3:267-272 (in Chinese with English abstract). | |
| [2] | 陶荣荣, 蔡晗, 朱庆权, 周益雷, 王康平, 余超, 侯丹平, 刘海浪, 张耗. 水稻高产高效的根-冠互作机制研究进展. 中国农学通报, 2018, 34(5):1-4. |
| Tao R R, Cai H, Zhu Q Q, Zhou Y L, Wang K P, Yu C, Hou D P, Zhang H. Research progress on root-crown interaction mechanism of high-yield and high-efficiency rice. Chin Agric Sci Bull, 2018, 34(5):1-4 (in Chinese with English abstract). | |
| [3] | 丁仕林, 刘朝雷, 钱前. 水稻根系遗传研究进展. 中国稻米, 2019, 25(5):24-29. |
| Ding S L, Liu C L, Qian Q. Advances in rice root genetics. China Rice, 2019, 25(5):24-29 (in Chinese with English abstract). | |
| [4] | 徐吉臣, 李晶昭, 郑先武, 邹亮星, 朱立煌. 苗期水稻根部性状的QTL定位. 遗传学报, 2001, 28:433-438. |
| Xu J C, Li J Z, Zheng X W, Zou L X, Zhu L H. QTL mapping of rice root traits at seedling stage. J Genet Genomics, 2001, 28:433-438 (in Chinese with English abstract). | |
| [5] | 滕胜, 曾大力, 钱前, 国广泰史, 藤本宽, 黄大年, 朱立煌. 水稻根系活力的遗传分析. 中国水稻科学, 2002, 16:119-123. |
| Teng S, Zeng D L, Qian Q, Kunihiro Y, Fujimoto K, Huang D N, Zhu L H. Genetic analysis of root vigor in rice. Chin J Rice Sci, 2002, 16:119-123 (in Chinese with English abstract). | |
| [6] | 胡兴明, 郭龙彪, 曾大力, 高振宇, 滕胜, 李浩戈, 朱立煌, 钱前. 水稻苗期发根力的QTL和上位性分析. 中国水稻科学, 2004, 18:396-400. |
| Hu X M, Guo L B, Zeng D L, Gao Z Y, Teng S, Li H G, Zhu L H, Qian Q. QTL mapping and epistasis analysis of rice root growth ability at seedling stage. Chin J Rice Sci, 2004, 18:396-400 (in Chinese with English abstract). | |
| [7] |
Mitsuhiro O, Wataru T, Takeshi E. Fine-mapping of qRL6.1, a major QTL for root length of rice seedlings grown under a wide range of NH4+ concentrations in hydroponic conditions. Theor Appl Genet, 2010, 121:535-547.
doi: 10.1007/s00122-010-1328-3 pmid: 20390245 |
| [8] | 王汝慈. 两个生育时期水稻耐低磷胁迫相关性状的QTL定位. 中国农业科学院硕士学位论文, 北京, 2009. |
| Wang R C. QTL Mapping of Low Phosphorus Stress-related Traits in Rice during Two Growth Periods. MS Thesis of Chinese Academy of Agricultural Sciences, Beijing, China, 2015 (in Chinese with English abstract). | |
| [9] |
Obara M, Fukuta Y, Yanagihara S. Genetic variation and QTLs related to root development in upland new rice for Africa(NERICA) varieties. Breed Sci, 2019, 69:94-103.
doi: 10.1270/jsbbs.18059 |
| [10] | Kitomi Y, Nakao E, Sawako K. Fine mapping of quick rooting 1 and 2, quantitative trait loci increasing root length in rice. G3: Genes Genom Genet, 2018, 8:727-735. |
| [11] |
章怡兰, 林雪, 吴仪, 李梦佳, 张晟婕, 路梅, 饶玉春, 王跃星. 水稻根系遗传育种研究进展. 植物学报, 2020, 55:382-393.
doi: 10.11983/CBB20021 |
| Zhang Y L, Lin X, Wu Y, Li M J, Zhang S J, Lu M, Rao Y C, Wang Y X. Research progress on rice root genetics and breeding. Chin Bull Bot, 2020, 55:382-393 (in Chinese with English abstract). | |
| [12] | 梁永书, 周军杰, 南文斌, 段东东, 张汉马. 水稻根系研究进展. 植物学报, 2016, 51:98-106. |
| Liang Y S, Zhou J J, Nan W B, Duan D D, Zhang H M. Research progress of rice root system. Chin Bull Bot, 2016, 51:98-106 (in Chinese with English abstract). | |
| [13] |
Yao S G, Mushika J, Taketa S, Ichii M. The short root mutation srt5 defines a sugar-mediated root growth in rice(Oryza sativa L.). Plant Sci, 2004, 167:49-54.
doi: 10.1016/j.plantsci.2004.02.025 |
| [14] |
Jia L, Zhang B, Mao C. OsCYT-INV1 for alkaline/neutral invertase is involved in root cell development and reproductivity in rice (Oryza sativa L.). Planta, 2008, 228:51-59.
doi: 10.1007/s00425-008-0718-0 |
| [15] |
Inukai Y, Sakamoto T, Ueguchitanka M. Crown rootless1, which is essential for crown root formation in rice, is a target of an auxin response factor in auxin signaling. Plant Cell, 2005, 17:1387-1396.
doi: 10.1105/tpc.105.030981 |
| [16] |
Liu H, Wang S, Yu X, Yu J, He X, Zhang S, Shou H, Wu P. ARL1, a LOB-domain protein required for adventitious root formation in rice. Plant J, 2005, 43:47-56.
doi: 10.1111/tpj.2005.43.issue-1 |
| [17] |
Zhao Y, Hu Y F, Dai M G, Huang L M, Zhou D Y. The WUSCHEL-related homeobox gene WOX11 is required to activate shoot-borne crown root development in rice. Plant Cell, 2009, 21:736-748.
doi: 10.1105/tpc.108.061655 pmid: 19258439 |
| [18] |
Yang S Q, Li W Q, Miao H, Gan P F, Qiao L, Chang Y L, Shi C H, Chen K M. REL2, a gene encoding an unknown function protein which contains DUF630 and DUF632 domains controls leaf rolling in rice. Rice, 2016, 9:1-14.
doi: 10.1186/s12284-015-0073-2 |
| [19] |
Dai X Y, Wang Y Y, Zhang W H. OsWRKY74, a WRKY transcription factor, modulates tolerance to phosphate starvation in rice. J Exp Bot, 2016, 67:947-960.
doi: 10.1093/jxb/erv515 |
| [20] |
Ao S G, Shin T, Masahiko I. Isolation and characterization of an abscisic acid-insensitive mutation that affects specifically primary root elongation in rice (Oryza sativa L.). Plant Sci, 2003, 164:971-978.
doi: 10.1016/S0168-9452(03)00081-5 |
| [21] |
Jing H W, Yang X L, Zhang J, Liu X H, Zheng H K, Dong G J, Nian J Q, Feng J, Xia B, Qian Q, Li J Y, Zuo J R. Peptidyl-prolyl isomerization targets rice Aux/IAAs for proteasomal degradation during auxin signaling. Nat Commun, 2015, 6:7395.
doi: 10.1038/ncomms8395 |
| [22] | McCouch S, Cho Y, Yano M, Paul E, Blinstrub M, Morishima H, Kinoshita T. Report on QTL nomenclature. Rice Genet Newsl, 1997, 14:11-131. |
| [23] | 姜树坤, 张凤鸣, 白良明, 孙世臣, 王彤彤, 丁国华, 姜辉, 张喜娟. 水稻移栽后新生根系相关性状的QTL分析. 中国水稻科学, 2014, 6:598-604. |
| Jiang S K, Zhang F M, Bai L M, Sun S C, Wang T T, Ding G H, Jiang H, Zhang X J. QTL analysis of the related traits of new roots after transplanting rice. Chin J Rice Sci, 2014, 6:598-604 (in Chinese with English abstract). | |
| [24] | 徐晓明, 张迎信, 王会民, 任翠, 王汝慈, 沈希宏, 占小登, 吴玮勋, 程式华, 曹立勇. 一个水稻根长QTL qRL4的分离鉴定. 中国水稻科学, 2016, 30:363-370. |
| Xu X M, Zhang Y X, Wang H M, Ren C, Wang R C, Shen X H, Zhan X D, Wu W X, Cheng S H, Cao L Y. Isolation and identification of a QTL qRL4 of rice root length. Chin J Rice Sci, 2016, 30:363-370 (in Chinese with English abstract). | |
| [25] |
Rogers E D, Benfey P N. Regulation of plant root system architecture: implications for crop advancement. Curr Opin Biotechnol, 2015, 32:93-98.
doi: 10.1016/j.copbio.2014.11.015 |
| [26] |
Raffaele D I, Francisco S L, Emanuele S. Cytokinins determine Arabidopsis root-meristem size by controlling cell differentiation. Curr Biol, 2007, 17:678-682.
pmid: 17363254 |
| [27] |
Raffaele D I, Kinu N, Laila M. A genetic framework for the control of cell division and differentiation in the root meristem. Science, 2008, 322:1380-1384.
doi: 10.1126/science.1164147 pmid: 19039136 |
| [28] |
Liu W, Xu Z H, Luo D. Roles of OsCKI1, a rice casein kinase I, in root development and plant hormone sensitivity. Plant J, 2003, 36:189-202.
doi: 10.1046/j.1365-313X.2003.01866.x |
| [29] |
Chen H, Ma B, Zhou Y, He S J, Tang S Y, Lu X, Xie Q, Chen S Y, Zhang J S. E3 ubiquitin ligase SOR1 regulates ethylene response in rice root by modulating stability of Aux/IAA protein. Proc Natl Acad Sci USA, 2018, 115:4513-4518.
doi: 10.1073/pnas.1719387115 |
| [30] |
Zhang H G, Zhang L J, Si H, Ge Y S, Liang G H, Gu M H, Tang S Z. Rf5 is able to partially restore fertility to Honglian-type cytoplasmic male sterile japonica rice(Oryza sativa) lines. Mol Breed, 2016, 36:1-10.
doi: 10.1007/s11032-015-0425-z |
| [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. |
|
||