Acta Agronomica Sinica ›› 2023, Vol. 49 ›› Issue (11): 3029-3041.doi: 10.3724/SP.J.1006.2023.22061
• CROP GENETICS & BREEDING·GERMPLASM RESOURCES·MOLECULAR GENETICS • Previous Articles Next Articles
ZHOU Wen-Qi1,2(), QIANG Xiao-Xia3, LI Si-Yu1, WANG Sen4, WEI Wan-Rong1,*()
[1] | 邓秋雨, 肖应辉. 水稻卷叶类型及调控机制研究进展. 作物研究, 2021, 35: 376-384. |
Deng Q Y, Xiao Y H. Research progress on types and regulation mechanism of rice rolled leaf. Crop Res, 2021, 35: 376-384 (in Chinese with English abstract). | |
[2] |
Zhang G H, Xu Q, Zhu X D, Qian Q, Xue H W. SHALLOT- LIKE1is a KANADI transcription factor that modulates rice leaf rolling by regulating leaf abaxial cell development. Plant Cell, 2009, 21: 719-735.
doi: 10.1105/tpc.108.061457 |
[3] | 沈年伟, 钱前, 张光恒. 水稻卷叶性状的研究进展及在育种中的应用. 分子植物育种, 2009, 7: 852-860. |
Shen N W, Qian Q, Zhang G H. Research progress on rice rolled leaf and its application in breeding program. Mol Plant Breed, 2009, 7: 852-860 (in Chinese with English abstract). | |
[4] | 黄州, 杜志喧, 王建平, 李剑镔, 鲍建中, 任伟芳, 傅军如. 水稻卷叶性状与分子调控机制研究进展. 分子植物育种, 2021, 19: 7604-7611. |
Huang Z, Du Z X, Wang J P, Li J B, Bao J Z, Ren W F, Fu J R. Research progress on rolled leaf traits and molecular regulation mechanism in rice (Oryza sativa). Mol Plant Breed, 2021, 19: 7604-7611 (in Chinese with English abstract). | |
[5] |
Zhang J J, Wu S Y, Jiang L, Wang J L, Zhang X, Guo X P, Wu C Y, Wan J M. A detailed analysis of the leaf rolling mutant sll2 reveals complex nature in regulation of bulliform cell development in rice (Oryza sativa L.). Plant Biol, 2015, 17: 437-438.
doi: 10.1111/plb.12255 |
[6] |
Li L, Shi Z Y, Li L, Shen G Z, Wang X Q, An L S, Zhang J L. Overexpression of ACL1 (abaxially curled leaf 1) increased bulliform cells and induced abaxial curling of leaf blades in rice. Mol Plant, 2010, 3: 807-817.
doi: 10.1093/mp/ssq022 |
[7] |
Zou L P, Sun X H, Zhang Z G, Liu P, Wu J X, Tian C J, Qiu J L, Lu T G. Leaf rolling controlled by the homeodomain leucine zipper class IV gene Roc5 in rice. Plant Physiol, 2011, 156: 1589-1602.
doi: 10.1104/pp.111.176016 |
[8] |
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. Plant Physiol, 2012, 159: 1488-1500.
doi: 10.1104/pp.112.199968 |
[9] |
Chen Q L, Xie Q J, Gao J, Wang W Y, Sun B, Liu B H, Zhu H T, Peng H F, Zhao H B, Liu C G, Wang J L, Zhang G Q, Zhang Z M. Characterization of Rolled and Erect Leaf 1 in regulating leave morphology in rice. J Exp Bot, 2015, 66: 6047-6058.
doi: 10.1093/jxb/erv319 |
[10] |
Yang S Q, Li W Q, Miao H, Gan J F, Qiao L, Chang Y L, Shi C H, Chen C M. REL2, a gene encoding an unknown function protein which contains DUF630 and DUF632 domains controls leaf rolling in rice. Rice, 2016, 9: 37.
doi: 10.1186/s12284-016-0105-6 |
[11] |
Li W Q, Zhang M J, Gan P F, Qiao L, Yang S Q, Miao H, Wang G F, Zhang M M, Liu W T, Li H F, Shi C H, Chen K M. CLD1/SRL1 modulates leaf rolling by affecting cell wall formation, epidermis integrity and water homeostasis in rice. Plant J, 2017, 92: 904-923.
doi: 10.1111/tpj.13728 |
[12] |
Wang H M, Shi Y F, Zhang X B, Xu X, Wu J L. Characterization of a novel rice dynamic narrow-rolled leaf mutant with deficiencies in aromatic amino acids. Int J Mol Sci., 2020, 21: 1521.
doi: 10.3390/ijms21041521 |
[13] | 李战朋. 水稻卷叶突变体zw235的基因克隆与功能分析. 中国农业科学院硕士学位论文,北京, 2016. |
Li Z P. Map-based Cloning and Function Analysis of a Rolled Leaf Mutant zw235in Rice. MS Thesis of Chinese Academy of Agricultural Sciences, Beijing, China, 2015 (in Chinese with English abstract). | |
[14] |
Fujino K, Matsuda Y, Ozawa K, Nishimura T, Koshiba T, Fraaije MW, Sekiguchi H. NARROW LEAF 7 controls leaf shape mediated by auxin in rice. Mol Genet Genomics, 2008, 279: 499-507.
doi: 10.1007/s00438-008-0328-3 pmid: 18293011 |
[15] |
Woo Y M, Park H J, Su'udi M, Yang J I, Park J J, Back K, Park Y M, An G. Constitutively wilted 1, a member of the rice YUCCA gene family, is required for maintaining water homeostasis and an appropriate root to shoot ratio. Plant Mol Biol, 2007, 65: 125-136.
doi: 10.1007/s11103-007-9203-6 |
[16] |
Hu J, Zhu L, Zeng D L, Gao Z Y, Guo L B, Fang Y X, Zhang G H, Dong G J, Yan M X, Liu J, Qian Q. Identification and characterization of NARROW AND ROLLED LEAF 1, a novel gene regulating leaf morphology and plant architecture in rice. Plant Mol Biol, 2010, 73: 283-292.
doi: 10.1007/s11103-010-9614-7 |
[17] |
Wu C, Fu Y P, Hu G C, Si H M, Cheng S H, Liu W Z. Isolation and characterization of a rice mutant with narrow and rolled leaves. Planta, 2010, 232: 313-324.
doi: 10.1007/s00425-010-1180-3 pmid: 20443024 |
[18] |
Fang L K, Zhao F M, Cong Y F, Sang X C, Du Q, Wang D Z, Li Y F, Ling Y H, Yang Z L, He G H. Rolling-leaf14 is a 2OG-Fe (II) oxygenase family protein that modulates rice leaf rolling by affecting secondary cell wall formation in leaves. Plant Biotechnol J, 2012, 10: 524-532.
doi: 10.1111/j.1467-7652.2012.00679.x pmid: 22329407 |
[19] |
Zhao S Q, Hu J, Guo L B, Qian Q, Xue H W. Rice leaf inclination2, a VIN3-like protein, regulates leaf angle through modulating cell division of the collar. Cell Res, 2010, 20: 935-947.
doi: 10.1038/cr.2010.109 |
[20] |
Xu Y, Wang Y H, Long Q Z, Huang J X, Wang Y L, Zhou K N, Zheng M, Sun J, Chen H, Chen S H, Jiang L, Wang C M, Wan J M. Overexpression of OsZHD1, a zinc finger homeodomain class homeobox transcription factor, induces abaxially curled and drooping leaf in rice. Planta, 2014, 239: 803-816.
doi: 10.1007/s00425-013-2009-7 |
[21] |
Hibara K I, Obara M, Hayashida E, Abe M, Ishimaru T, Satoh H, Itoh J I, Nagato Y. The ADAXIALIZED LEAF1gene functions in leaf and embryonic pattern formation in rice. Dev Biol, 2009, 334: 345-354.
doi: 10.1016/j.ydbio.2009.07.042 |
[22] |
Itoh J, Hibara K, Sato Y, Nagato Y. Developmental role and auxin responsiveness of class III homeodomain leucine zipper gene family members in rice. Plant Physiol, 2008, 147: 1960-1975.
doi: 10.1104/pp.108.118679 |
[23] |
Zhang J S, Zhang H, Kumar S A, Pan Y J, Bai J J, Fang J J, Shi H Z, Zhu J K. Knockdown of rice MicroRNA166 confers drought resistance by causing leaf rolling and altering stem xylem development. Plant Physiol, 2018, 176: 2082-2094.
doi: 10.1104/pp.17.01432 pmid: 29367235 |
[24] | 周文期, 寇思荣, 连晓荣, 杨彦忠, 刘忠祥, 王晓娟, 何海军, 周玉乾. 水稻和玉米叶表皮突变体的筛选和鉴定. 植物生理学报, 2020, 56: 189-199. |
Zhou W Q, Kou S R, Lian X R, Yang Y Z, Liu Z X, Wang X J, He H J, Zhou Y Q. Screening and identification of leaf epidermal mutants in rice and maize. Plant Physiol J, 2020, 56: 189-199 (in Chinese with English abstract).
doi: 10.1111/ppl.1982.56.issue-2 |
|
[25] |
王峰, 徐飚, 杨正林, 凌英华, 何光华, 陈胜, 卿明敬, 桑贤春. EMS诱变水稻矮生资源的鉴定评价. 核农学报, 2011, 25: 197-201.
doi: 10.11869/hnxb.2011.02.0197 |
Wang F, Xu B, Yang Z L, Ling Y H, He G H, Chen S, Qing M J, Sang X C. Identification and analysis of EMS induced dwarf mutants in rice. Acta Agric Nucl Sin, 2011, 25: 197-201 (in Chinese with English abstract). | |
[26] |
周文期, 强晓霞, 王森, 江静雯, 卫万荣. 水稻OsLPL2/PIR基因抗旱耐盐机制研究. 作物学报, 2022, 48: 1401-1415.
doi: 10.3724/SP.J.1006.2022.12032 |
Zhou W Q, Qiang X X, Wang S, Jiang J W, Wei W R. Mechanism of drought and salt tolerance of OsLPL2/PIR gene in rice. Acta Agron Sin, 2022, 48: 1401-1415 (in Chinese with English abstract).
doi: 10.3724/SP.J.1006.2022.12032 |
|
[27] |
Lichtenthaler H K, Wellburn A R. Determinations of total carotenoids and chlorophylls a and b of leaf extracts in different solvents. Biochem Soc Trans, 1983, 11: 591-592.
doi: 10.1042/bst0110591 |
[28] | 周文期. 调控水稻叶表皮发育的LPL2和DSP1基因克隆与功能分析. 兰州大学博士学位论文,甘肃兰州, 2015. |
Zhou W Q. The Cloning and Functional Analysis of LPL2 and DSP1, two Genes, that Regulate the Epidermal Cell Development in Rice. PhD Dissertation of Lanzhou University, Lanzhou, Gansu, China, 2015 (in Chinese with English abstract). | |
[29] | 王艺程, 张世杰, 丁寒雪, 蒋成娣, 张浠然, 张志国, 刘翔. 甲基磺酸乙酯(EMS) 在植物诱变育种中的应用. 分子植物育种, 2022, https://kns.cnki.net/kcms/detail/46.1068.S.20220719.1519.016.html. |
Wang Y C, Zhang S J, Ding H X, Jiang C D, Zhang X R, Zhang Z G, Liu X. Application of Ethyl Methanesulfonate (EMS) in plant mutation breeding. Mol Plant Breed, 2022, (on line). https://kns.cnki.net/kcms/detail/46.1068.S.20220719.1519.016.html (in Chinese with English abstract). | |
[30] |
周文期, 周玉乾, 刘忠祥, 连晓荣, 王晓娟, 何海军, 杨彦忠, 寇思荣. 12C6+重离子束辐照玉米后代的生物学效应. 核农学报, 2019, 33: 2311-2318.
doi: 10.11869/j.issn.100-8551.2019.12.2311 |
Zhou W Q, Zhou Y Q, Liu Z X, Lian X R, Wang X J, He H J, Yang Y Z, Kou S R. Biological effects of offspring of maize irradiated by 12C6+ heavy ion beam. Acta Agric Nucl Sin, 2019, 33: 2311-2318 (in Chinese with English abstract). | |
[31] |
周文期, 周玉乾, 李永生, 何海军, 杨彦忠, 王晓娟, 连晓荣, 刘忠祥, 胡筑兵. 玉米ZmICE2基因调控气孔发育过程. 植物学报, 2023, DOI: 10.11983/CBB22261.
doi: 10.11983/CBB22261 |
Zhou W Q, Zhou Y Q, Li Y S, He H J, Yang Y Z, Wang X J, Lian X R, Liu Z X, Hu Z B. ZmICE2 regulates stomatal development in maize. Chin Bull Bot, 2023, DOI: 10.11983/CBB22261.
doi: 10.11983/CBB22261 |
|
[32] |
周文期, 张贺通, 何海军, 龚佃明, 杨彦忠, 刘忠祥, 李永生, 王晓娟, 连晓荣, 周玉乾, 邱法展. 调控玉米株高和穗位高候选基因Zmdle1的定位. 中国农业科学, 2023, 56: 821-837.
doi: 10.3864/j.issn.0578-1752.2023.05.002 |
Zhou W Q, Zhang H T, He H J, Gong D M, Yang Y Z, Liu Z X, Li Y S, Wang X J, Lian X R, Zhou Y Q, Qiu F Z. Candidate gene localization of ZmDLE1 gene regulating plant height and ear height in maize. Sci Agric Sin, 2023, 56: 821-837 (in Chinese with English abstract). | |
[33] | 叶俊, 吴建国, 杜婧, 郑希, 张志, 石春海. 水稻“9311”突变体筛选和突变体库构建. 作物学报, 2006, 32: 1525-1529. |
Ye J, Wu J G, Du J, Zheng X, Zhang Z, Shi C H. The screening of mutants and construction of mutant population for cultivar “9311” in rice (Oryza sativa L.). Acta Agron Sin, 2006, 32: 1525-1529 (in Chinese with English abstract). | |
[34] |
Lu X D, Liu J S, Ren W, Yang Q, Chai Z G, Chen R M, Wang L, Zhao J, Lang Z H, Wang H Y, Fan Y L, Zhao J R, Zhang C Y. Gene-indexed mutations in maize. Mol Plant, 2018, 11: 496-504.
doi: S1674-2052(17)30368-4 pmid: 29223623 |
[35] | 周文期, 连晓荣, 周玉乾, 王兴荣, 杨彦忠, 刘忠祥, 王晓娟, 何海军, 寇思荣. EMS诱变玉米自交系种质创新应用. 玉米科学, 2020, 28(6): 31-38. |
Zhou W Q, Lian X R, Zhou Y Q, Wang X R, Yang Y Z, Liu Z X, Wang X J, He H J, Kou S R. Innovative application of EMS mutagenesis germplasm of maize inbred lines. J Maize Sci, 2020, 28(6): 31-38 (in Chinese with English abstract). | |
[36] | 黄益安, 邓小娟, 万海波, 王朋, 方小龙, 张杰, 杨存义. 大豆华夏3号突变体库构建及SSR分子标记. 中国油料作物学报, 2016, 38: 159-166. |
Huang Y A, Deng X J, Wan H B, Wang P, Fang X L, Zhang J, Yang C Y. Mutagenesis and SSR markers of soybean cultivar Huaxia 3. Chin J Oil Crop Sci, 2016, 38: 159-166 (in Chinese with English abstract). | |
[37] |
Shi X L, Cui F, Han X Y, He Y L, Zhao L, Zhang N, Zhang H, Zhu H D, Liu Z X, Ma B, Zheng S S, Zhang W, Liu J J, Fan X L, Si Y Q, Tian S Q, Niu J Q, Wu H L, Liu X M, Chen Z, Meng D Y, Wang X Y, Song L Q, Sun L J, Han J, Zhao H, Ji J, Wang Z G, He X Y, Li R L, Chi X B, Liang C Z, Niu B F, Xiao J, Li J M, Ling H Q. Comparative genomic and transcriptomic analyses uncover the molecular basis of high nitrogen-use efficiency in the wheat cultivar Kenong 9204. Mol Plant, 2022, 15: 1440-1456.
doi: 10.1016/j.molp.2022.07.008 |
[38] |
Abe A, Kosugi S, Yoshida K, Natsume S, Takagi H, Kanzaki H, Matsumura H, Yoshida K, Mitsuoka C, Tamiru M, Innan H, Cano L, Kamoun S, Terauchi R. Genome sequencing reveals agronomically important loci in rice using MutMap. Nat Biotechnol, 2012, 30: 174-178.
doi: 10.1038/nbt.2095 pmid: 22267009 |
[39] | 周文期, 刘忠祥, 王晓娟, 何海军, 周玉乾, 杨彦忠, 连晓荣, 李永生. 利用BSA-Seq方法快速定位作物农艺性状QTL/基因概述. 甘肃农业科技, 2022, 53(4): 1-10. |
Zhou W Q, Liu Z X, Wang X J, He H J, Zhou Y Q, Yang Y Z, Lian X R, Li Y S. Rapid mapping of QTL/gene for agronomic traits in crops using BSA-seq method. Gansu Agric Sci Technol, 2022, 53(4): 1-10 (in Chinese with English abstract). | |
[40] | 李蓓, 莫凯琴, 马银花. 水稻卷叶基因研究进展. 安徽农学通报, 2021, 27(6): 14-18. |
Li B, Mo K Q, Ma Y H. Advances in gene research of rice roll leaf. Anhui Agric Sci Bull, 2021, 27(6): 14-18 (in Chinese with English abstract). | |
[41] |
Li M, Li X Z, Zhu L, Xue P B, Bao J L, Zhou B B, Jin J, Wang J. Genome-wide transcriptomic analysis reveals the gene regulatory network that controlled by SRL1 in regulating rice leaf rolling. J Plant Growth Regul, 2022, 41: 2292-2304.
doi: 10.1007/s00344-021-10443-x |
[42] | 葛倩雯, 金宝花, 傅小进, 顾志敏, 陈析丰, 马伯军. 水稻卷叶矮化突变体rld的表型鉴定及基因精细定位. 浙江师范大学学报(自然科学版), 2019, 42: 434-440. |
Ge Q W, Jin B H, Fu X J, Gu Z M, Chen X F, Ma B J. Phenotypic identification and gene-fine mapping of a rolling leaf and dwarf mutant rld in rice. J Zhejiang Normal Univ (Nat Sci Edn), 2019, 42: 434-440 (in Chinese with English abstract). | |
[43] | 张谷禹, 唐诗闻, 吴凡, 向威, 黎腊梅, 陈永军, 邹挺, 彭友林, 胡运高. 水稻卷叶半不育突变体的鉴定及初步遗传分析. 杂交水稻, 2019, 34(5): 46-50. |
Zhang G Y, Tang S W, Wu F, Xiang W, Li L M, Chen Y J, Zou T, Peng Y L, Hu Y G. Identification and preliminary genetic analysis of a leaf-rolling and semi-sterile mutant in rice. Hybrid Rice, 2019, 34(5): 46-50 (in Chinese with English abstract). | |
[44] |
韩保林, 陶宇, 张洪凯, 顾朝剑, 廖泳祥, 彭永彬, 张红宇, 徐培洲, 陈晓琼, 吴先军. 水稻叶片内卷突变体rl(t)的鉴定与基因定位. 中国水稻科学, 2017, 31: 149-156.
doi: 10.16819/j.1001-7216.2017.6137 |
Han B L, Tao Y, Zhang H K, Gu C J, Liao Y X, Peng Y B, Zhang H Y, Xu P Z, Chen X Q, Wu X J. Identification and gene mapping of a rolled leaf mutant rl(t) in rice. Chin J Rice Sci, 2017, 31: 149-156 (in Chinese with English abstract). | |
[45] |
Wen X X, Sun L P, Chen Y Y, Xue P, Yang Q Q, Wang B F, Yu N, Cao Y R, Zhang Y, Gong K, Wu W X, Chen D B, Cao L Y, Cheng S H, Zhang Y X, Zhan X D. Rice Dwarf and low tillering 10 (OsDLT10) regulates tiller number by monitoring auxin homeostasis. Plant Sci, 2020, 297: 110502.
doi: 10.1016/j.plantsci.2020.110502 |
[46] |
Yu Q, Chen L, Zhou W Q, An Y H, Luo T X, Wu Z L, Wang Y Q, Xi Y F, Yan L F, Hou S W. RSD1 is essential for stomatal patterning and files in rice. Front Plant Sci, 2020, 11: 600021.
doi: 10.3389/fpls.2020.600021 |
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