欢迎访问作物学报,今天是

作物学报 ›› 2020, Vol. 46 ›› Issue (12): 1991-1996.doi: 10.3724/SP.J.1006.2020.03025

• 研究简报 • 上一篇    下一篇

玉米雄性不育突变体mi-ms-3的遗传分析及分子鉴定

田士可(), 秦心儿, 张文亮, 董雪, 代明球, 岳兵*()   

  1. 华中农业大学作物遗传改良国家重点实验室, 湖北武汉 430070
  • 收稿日期:2020-05-07 接受日期:2020-08-19 出版日期:2020-08-31 网络出版日期:2020-08-31
  • 通讯作者: 岳兵
  • 基金资助:
    国家重点研发计划项目(2016YFD0100804)

Genetic analysis and characterization of male sterile mutant mi-ms-3 in maize

TIAN Shi-Ke(), QIN Xin-Er, ZHANG Wen-Liang, DONG Xue, DAI Ming-Qiu, YUE Bing*()   

  1. National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan 430070, Hubei, China
  • Received:2020-05-07 Accepted:2020-08-19 Published:2020-08-31 Published online:2020-08-31
  • Contact: YUE Bing
  • Supported by:
    National Key Research and Development Program of China(2016YFD0100804)

摘要:

玉米是杂种优势利用的最好的作物之一, 雄性不育材料作为一种宝贵的种质资源, 对杂种优势的利用具有十分重要的价值。前期筛选得到1个雄性不育突变体, 并将其命名为mi-ms-3。该突变体表现为: 雄穗花药数目减少且不外露, 每个花药只有2个药室, 部分花药退化为膜状并在其末端形成丝状物; 1% I2-KI染色发现花药中含有能正常着色的花粉粒, 与野生型花粉镜检不同之处在于总花粉粒数目的减少; 突变体雌穗花丝增多, 成熟果穗的籽粒两侧各有1个败育的籽粒。通过mi-ms-3与自交系Mo17杂交得到F1完全正常。利用F2分离群体进行遗传分析发现突变表型由隐性单基因控制。利用BSA法, 初步将该基因定位在3号染色体长臂上。随后利用29对SSR标记和10对Indel标记, 将突变基因定位到S-6和umc1027两个标记之间, 物理距离为1.5 cM。该定位区间内有21个候选基因, 通过转座子标签法及测序分析, 最终发现Zm00001d042618 (zmm16)基因ATG上游30 bp处发生了Mu转座子的插入突变。分析表明, mi-ms-3与之前所报道的由于碱基突变造成的sts1突变体的突变方式不同, 是一个新的sts1的等位突变体。RT-PCR分析表明zmm16基因在突变体中表达量降低。mi-ms-3的发现为玉米花器官发育研究以及不育化杂交制种提供了新材料。

关键词: 玉米, 雄性不育, 基因定位, 遗传分析

Abstract:

Maize is one of the best crops in the utilization of heterosis. Male sterile lines are important germplasms for the hybrids production. A male sterile mutant named mi-ms-3 was obtained by screening in a mutator insertion library. The number of male anthers in tassel decreased and not exserted. There were few anthers with only two pollen sacs in the mutant tassels, and some of the anthers were degenerated to membranous and formed filaments at their ends. Although pollens in the anthers could be stained by I2-KI, pollen shedding was abnormal and the number of pollen grains decreased. The number of silks in the ear of the mutant increased, and there was a sterile grain on both sides of the maturated kernel. Fertility of F1 plants, which were obtained by hybridization between mi-ms-3 and maize inbred Mo17, was normal. Genetic analysis of F2 population showed that the mutant phenotype was controlled by a recessive gene. The candidate gene was preliminarily mapped on the long arm of chromosome 3 by BSA and it was located between a SSR marker and an Indel marker with a distance of 1.5 cM. There are 21 candidate genes in this region. It was finally found that the insertion mutation of Mu transposon occurred at 30 bp upstream of the coding region of zm00001d042618 (zmm16) by transponson tagging and sequencing analysis. The results showed that mi-ms-3 was a new allele of sts1, which caused by a single base mutation in the coding region. RT-PCR analysis indicated that the expression of zmm16 in the mutant was decreased. The identification of the new allelic mutant of sts1 in this study would provide new materials for the study of flower development and hybrid seed production.

Key words: maize, male sterile, gene mapping, genetic analysis

表1

基因定位及基因表达分析的引物"

引物名称
Primer name
正向引物
Forward sequence (5′-3′)
反向引物
Reverse sequence (5′-3′)
染色体位置
Chromosome position
umc1973 CAGGCAGAAAAGGAACGGAAC GTGCGAGAGAAGATGGATGATTG 3.05
umc1027 AACTCTGTCTCCGTCACCGTGT GACCTCATCTCGGTGGAAATTG 3.06
S-1 CCGTCATCGACATTTTACTCAG CACAAGAGTTGGTTCGCTG 3.06
S-2 CCTTGTACCCGCTCATCCAT CTCCTACCGACCTGCCTG 3.06
S-3 GTGTTACAAGAACTCAGCGT AGCCTTCGTTCAGTTTCGGT 3.06
S-4 TGACTGGCTTTCGTCCTACT CACTCTCCAGCTGCTTCTCT 3.06
S-5 ACAATTAGCTTAAGAACGC AGCGGTGTTCATGGTACTCA 3.06
S-6 TGGCTACTAGCTAGCTGTGCT CTAAACCTTCACGCACAGCC 3.06
S-7 CCAACTGAGCCGAATCGTTC ATCATCCCATATCCCACGCC 3.06
S-8 GTGGCCCATATGGTCTCAAC CGGCCAGTCGATTAAAGCTC 3.06
S-9 CGACGAAGAACTGACTTGACC TTGCTTGATCATTCCTCCGC 3.06
S-10 GTTTGGGCCGCATTCGAGAGA TATTCTTGCCTCTCCCACCG 3.06
TIR-1 CGGCCTCCATTTCGTCGAATCCCTT
42618 TGCCGGTACTGTGACTGTTC CCTGAGCTCGATCTGCATGG 3.06
42618-2 TCTTTACTCCTCCCCTCCCA CTTCTTGAGGATCCCGTTGC 3.06
q42618 GCCTTAGTGCAGAGATTGACC GCCTTTCCCAGTGCTCCA 3.06

图1

mi-ms-3和野生型表型 A: 野生型(左)和mi-ms-3 (右)雄穗表型, mi-ms-3花药不外露; B1~B2: 花药发育后期, 野生型和mi-ms-3花药横切片, mi-ms-3花药只有2个药室; C1~C4: mi-ms-3突变体小穗, 分别包含0~3个花药; D1~D2: 野生型和mi-ms-3花粉粒; E1: mi-ms-3 (左)和野生型(右)雌穗表型, mi-ms-3雌穗花丝增多; E2: mi-ms-3 (左)和野生型(右)籽粒表型, mi-ms-3每个籽粒对应多个花丝。"

表2

重要重组单株基因型及表型"

umc1973 S-1 S-2 S-3 S-4 S-5 S-6 S-7 S-8 S-9 S-10 umc1027 表型Phenotype
2-2 H H H H A A A A A A A A 突变体Mutant
11-5 H H H H H A A A A A A A 突变体Mutant
9-3 H H H H H H H A A A A A 突变体Mutant
14-8 A A A A A A A A A A A H 突变体Mutant
5-4 H H H H H H H H H H H A 野生型Wild type
20-9 A H H H H H H H H H H H 野生型Wild type

图2

Mu转座子插入突变体的鉴定 1~2: 杂合野生型植株; 3~5: 纯合野生型植株; 6: marker; 7~14: 纯合突变体植株; 15: B73; 16: Mo17。"

图3

zmm16基因序列分析 Mu13转座子插入到zmm16基因ATG上游30 bp处。"

图4

zmm16启动子元件预测分析"

图5

zmm16表达量分析 相对于野生型, mi-ms-3中zmm16基因表达量降低。"

[1] 马冲, 张春庆, 陈举林, 侯玮, 王国胜 . 玉米胞质雄性不育系研究进展. 中国农学通报, 2005,21(1):163-164.
Ma C, Zhang C Q, Chen J L, Hou W, Wang G S . Advance on study of male sterility in maize. Chin Agric Sci Bull, 2005,21(1):163-164 (in Chinese with English abstract).
[2] Tanaka W, Pautler M, Jackson D, Hirano H Y . Grass meristems II: inflorescence architecture, flower development and meristem fate. Plant Cell Physiol, 2013,54:313-324.
doi: 10.1093/pcp/pct016
[3] Li Q L, Liu B S . Genetic regulation of maize flower development and sex determination. Planta, 2017,245:1-14.
doi: 10.1007/s00425-016-2607-2 pmid: 27770199
[4] Ambrose B A, Lerner D R, Ciceri P, Padilla C M, Yanofsky M F, Schmidt R J . Molecular and genetic analyses of the silky1 gene reveal conservation in floral organ specification between eudicots and monocots. Mol Cell, 2000,5:569-579.
doi: 10.1016/s1097-2765(00)80450-5 pmid: 10882141
[5] Bartlett M E, Williams S K, Taylor Z, DeBlasio S, Goldshmidt A, Hall D H, Schmidt R J, Jackson D P, Whipple C J . The maize PI/GLO ortholog zmm16/sterile tassel silky ear1 interacts with the zygomorphy and sex determination pathways in flower development. Plant Cell, 2015,27:3081-3098.
doi: 10.1105/tpc.15.00679 pmid: 26518212
[6] 王关林, 方宏筠 . 植物基因工程. 北京: 科学出版社, 2002. pp 742-744.
Wang G L, Fang H J . Plant Genetic Engineering. Beijing: Science Press, 2002. pp 742-744(in Chinese).
[7] Settles A M, Latshaw S, McCarty D R . Molecular analysis of high-copy insertion sites in maize. Nucl Acids Res, 2004,32:e54.
doi: 10.1093/nar/gnh052 pmid: 15060129
[8] Chen C, Chen H, Yi Z, He Y, Hannah T R, Frank M H, Xia R . Tbtools: an integrative toolkit developed for interactive analyses of big biological data. Mol Plant, 2020,13:1194-1202.
doi: 10.1016/j.molp.2020.06.009 pmid: 32585190
[9] Acosta I F, Helene L, Romero S P, Eric S, Mats H, Mottinger J P, Moreno M A, Dellaporta S L . Tasselseed1 is a lipoxygenase affecting jasmonic acid signaling in sex determination of maize. Science, 2009,323:262-265.
doi: 10.1126/science.1164645 pmid: 19131630
[10] Chuck G . Molecular mechanisms of sex determination in monoecious and dioecious plants. Adv Bot Res, 2010,54:53-83.
[11] Zhao Y, Zhang Y Z, Wang L J, Wang X R, Xu W, Gao X Y, Liu B S . Mapping and functional analysis of a maize silkless mutant sk-A7110. Front Plant Sci, 2018,9:1127.
doi: 10.3389/fpls.2018.01127 pmid: 30116254
[12] Sun J, Yang L, Wang J, Liu H L, Zheng H L, Xie D W, Zhang M H, Feng M F, Jia Y, Zhao H W, Zou D T . Identification of a cold-tolerant locus in rice ( Oryza sativa L.) using bulked segregant analysis with a next-generation sequencing strategy. Rice, 2018,11:24.
doi: 10.1186/s12284-018-0218-1 pmid: 29671148
[13] Bennetzen J L, Springer P S, Cresse A D, Hendrickx M . Specificity and regulation of the mutator transposable element system in maize. Crit Rev Plant Sci, 1993,12:57-95.
doi: 10.1080/07352689309382356
[14] Wang D X, Skibbe D S, Walbot V . Maize male sterile 8 (Ms8), a putative b-1,3-galactosyltransferase, modulates cell division, expansion, and differentiation during early maize anther development. Plant Reprod, 2013,26:329-338.
doi: 10.1007/s00497-013-0230-y
[15] Cui X Q, Hsia A P, Liu F, Ashlock D A, Wise R P, Schnable P S . Alternative transcription initiation sites and polyadenylation sites are recruited during Mu suppression at the rf2a locus of maize. Genetics, 2003,163:685-698.
pmid: 12618406
[16] 林晓怡, 杨典洱, 林建兴 . 带遗传标记的玉米基因雄性不育的发现及遗传和利用研究. 作物学报, 2000,26:129-133.
Lin X Y, Yang D E, Lin J X . The discovery, inheritance and utilization of genic male sterility with genetic marker in maize. Acta Agron Sin, 2000,26:129-133 (in Chinese with English abstract).
[17] 王颖, 麦维军, 梁成邺, 张明永 . 高等植物启动子的研究进展. 西北植物学报, 2003,23:2040-2048.
Wang Y, Mai W J, Liang C Y, Zhang M Y . Advances on studies of plant promoters. Acta Bot Boreal-Occident Sin, 2003,23:2040-2048 (in Chinese with English abstract).
[18] Becker A, Theissen G . The major clades of MADS-box genes and their role in the development and evolution of flowering plants. Mol Phylogenet Evol, 2003,29:464-489.
doi: 10.1016/s1055-7903(03)00207-0 pmid: 14615187
[1] 刘恩波, 陈静, 李红星, 于宁宁, 任佰朝, 赵斌, 刘鹏, 张吉旺. 遮阴改变源-库平衡和调节碳水化合物代谢进而抑制夏玉米幼穗发育[J]. 作物学报, 2026, 52(6): 1891-1901.
[2] 梁进宇, 尹嘉德, 王红丽, 张国平, 侯慧芝, 董博, 马明生. 基于无人机高光谱和机器学习的旱地饲用玉米叶片氮含量估测[J]. 作物学报, 2026, 52(6): 1788-1801.
[3] 孙淑凤, 许振南, 黄嘉鑫, 翁建峰, 李新海. 玉米MAPK家族全基因组鉴定及其对拟轮枝镰孢菌感染的响应[J]. 作物学报, 2026, 52(5): 1291-1308.
[4] 张宁宁, 滕雨菲, 任娜娜, 魏兴卓, 闫书豪, 樊可心, 王永宏, 陈文康, 张兴华, 朱万超, 徐淑兔, 薛吉全. 201份玉米自交系抗旱表型评价及可塑性分析[J]. 作物学报, 2026, 52(5): 1309-1325.
[5] 杨欣雨, 崔文涛, 迪力尼格尔·阿力木, 汪凯翔, 吴鹏昊, 任姣姣. 玉米穗上叶片数全基因组关联分析和全基因组选择[J]. 作物学报, 2026, 52(5): 1573-1590.
[6] 韩亚鑫, 何冠华, 张小琼, 张登峰, 李永祥, 刘旭洋, 王天宇, 黎裕, 邹华文, 李春辉. 基于RNA-Seq和BSA-Seq联合分析挖掘玉米侧根密度基因资源[J]. 作物学报, 2026, 52(5): 1341-1352.
[7] 杨扬, 常诗惠, 田红丽, 易红梅, 王璐, 任洁, 范亚明, 刘亚维, 王凤格, 赵久然. 不同生态区国审玉米品种的遗传多样性分析[J]. 作物学报, 2026, 52(5): 1352-1364.
[8] 张鸿蓉, 王菲儿, 李盼, 仇海龙, 朱静, 赵连豪, 南运有, 何蔚, 樊志龙, 胡发龙, 柴强, 殷文. 减量20%灌水与25%有机肥替代化肥提高青贮玉米产量的光合特性[J]. 作物学报, 2026, 52(5): 1487-1500.
[9] 蔡宏玮, 于爱忠, 姜科强, 王鹏飞, 王玉珑, 霍建喆, 庞小能, 尹波, 尚永盼. 干旱灌区有机肥替代部分化肥促进甜玉米产量提升的关键机制[J]. 作物学报, 2026, 52(4): 1166-1180.
[10] 田红丽, 杨扬, 范亚明, 易红梅, 郭丹丹, 王凤格, 赵久然. 适于玉米品种鉴定的一套三等位变异SNP新型标记组合[J]. 作物学报, 2026, 52(4): 993-1005.
[11] 杨亚莉, 徐明睿, 马越飞, 海艺蕊, 刘凯栋, 刘万茂, 孙颖. 玉米根尖及整根响应缺铁的转录组比较研究[J]. 作物学报, 2026, 52(4): 1006-1021.
[12] 张超, 郭欢, 李忠玲, 岳淑宁, 赵娜. 基于BSA-seq技术定位玉米籽粒花青素关联基因[J]. 作物学报, 2026, 52(3): 780-789.
[13] 郭向阳, 涂亮, 王栋, 刘鹏飞, 王安贵, 易强, 任洪, 李刚, 祝云芳, 吴迅, 蒋喻林, 田丰, 陈泽辉. 热带Suwan种质在我国玉米种质改良中的创新与利用[J]. 作物学报, 2026, 52(3): 655-664.
[14] 孟成, 王哲. 玉米ZmPFK基因家族全基因组鉴定及响应胁迫表达分析[J]. 作物学报, 2026, 52(3): 764-779.
[15] 李新浩, 邢梦柯, 周梓惠, 李思烨, 任昊, 王洪章, 赖华江. 外源褪黑素通过协调光反应与暗反应增强玉米苗期的耐热性[J]. 作物学报, 2026, 52(3): 839-856.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!