欢迎访问作物学报,今天是

作物学报 ›› 2012, Vol. 38 ›› Issue (01): 36-42.doi: 10.3724/SP.J.1006.2012.00036

• 作物遗传育种·种质资源·分子遗传学 • 上一篇    下一篇

对一个新发现的棉纤维突变体的鉴定及特性分析

张锐,吕芬妮,王海海,郭旺珍*   

  1. 南京农业大学作物遗传与种质创新国家重点实验室,江苏南京 210095
  • 收稿日期:2011-06-13 修回日期:2011-09-14 出版日期:2012-01-12 网络出版日期:2011-11-07
  • 通讯作者: 郭旺珍, E-mail: moelab@njau.edu.cn
  • 基金资助:

    本研究由国家自然科学基金项目(30871558)和国家转基因生物新品种培育重大专项(2008ZX08009-003)资助。

Identification and Characterization of a Novel Fiber Mutant from Transgenic Progeny in Gossypium hirsutum L.

ZHANG Rui,LÜ Fen-Ni,WANG Hai-Hai,GUO Wang-Zhen*   

  1. National Key Laboratory of Crop Genetics & Germplasm Enhancement, Nanjing Agricultural University, Nanjing 210095, China
  • Received:2011-06-13 Revised:2011-09-14 Published:2012-01-12 Published online:2011-11-07
  • Contact: 郭旺珍, E-mail: moelab@njau.edu.cn

摘要: 在农杆菌介导的转基因组织培养再生后代中发现了一个无绒有絮的纤维发育突变体,通过自交选择T3代获得其纯合体,命名为CM突变体。尽管CM突变体从转基因后代中发现,但和转基因插入位点无关,推测是在组织培养过程中产生的点突变所致。通过与陆地棉遗传标准系TM-1,海岛棉军海1号,以及新乡小吉无绒有絮(XinFLM),新乡小吉无绒无絮(XinWX),徐州142无绒无絮(XZ142WX),显性光子N1N1,隐性光子n2n2、SL-7-1、MD17及T586等一系列纤维发育突变体分别配制F2组合进行突变基因的遗传及等位性分析,结果表明CM突变体与纤维发育正常的TM-1和军海1号杂交,F1表型均为无绒有絮,F2表现无绒有絮和有绒有絮3∶1分离,说明该突变体与纤维发育正常材料相比,在短绒发育方面存在一个位点的差异,该突变性状由单显性基因控制。等位性测验及分子定位均表明, 控制该突变体短绒的基因与控制N1N1显性光子的N1基因等位。扫描电镜进一步证明该基因突变会造成纤维起始突起延迟。与N1N1突变体相比,CM突变体的衣分比N1N1显著高,而百粒重比N1N1极显著低。推测CM突变体中的突变基因与显性N1基因为复等位基因。

关键词: 陆地棉, 转基因, 纤维发育突变体, 鉴定

Abstract: The discovery and identification of the fiber mutant has been vital for genetic and functional genomic research in cotton. In this study, we found a linted-fuzzless fiber mutant in transgenic cotton by Agrobacterium-mediated transformation path, the pure line of the mutant was obtained in T3 generation. We named the novel fiber mutant as CM mutant. PCR analysis showed that the mutation trait had no relationship with T-DNA insertion, but was deduced to be caused by point mutation in the process of tissue culture. Analysis of inheritance and allelic tests were conducted by crossing CM mutant with TM-1, Junhai1, and a series of fiber developmental mutants such as XinFLM, N1N1, n2n2, and T586 with linted-fuzzless fiber and XinWX, XZ142WX, SL-7-1, and MD17 with lintless-fuzzless fiber, respectively. Of above 10 combinations, the F1 were fuzzless, and F2 generations of CM×TM-1 and CM×Junhai1, all showed the separation ratio of 3:1 of linted-fuzzless to linted-fuzzed phenotypes. Based on the genetic analysis, we indicated that there was one dominantly different locus between the mutant and TM-1or Junhai1. Allelic tests and gene mapping all showed that the fuzzless gene of the mutant was allelic to N1, dominantly controlling naked-seed trait. Scanning electron microscopy (SEM) analysis was conducted to investigate the development of fiber cell initials in CM mutant during early developmental stages (0–3 DPA). Just like N1N1 mutant, the mutation gene could result in the process of fiber cell formation and elongation delayed. Compared to N1N1, the lint percentage of CM was significantly higher and 100-seed weight was significantly lower. In conclusion, we speculate on that the mutation gene in CM is one of multiple allele genes of dominant naked-seed N1, and the result also shows the mutation reproducibility for fiber development in different cotton materials.

Key words: Gossypium hirsutum L., Transgenic analysis, Fiber developmental mutant, Identification

[1]Stewart J M. Fiber initiation on the cotton ovule (Gossypium hirsutum). Am J Bot, 1975, 62: 723–730
[2]Endrizzi J E, Turcotte E L, Kohel R J. Qualitative genetics, cytology and cytogenetics. In: Kohel R J, Lewis D F, eds. Agronomy: Cotton. Madison WI: American Society of Agronomy Inc, 1984. pp 59–80
[3]Kohel R J. Genetic nomenclature in cotton. J Hered, 1973, 64: 291–295
[4]Kohel R J, Narbuth E V, Benedict C R. Fiber development of Ligon Lintless-2 mutant of cotton. Crop Sci, 1992, 32: 733–735
[5]Kearney T H, Harrison G J. The inheritance of smoothness seeds in cotton. J Agric Res, 1927, 35: 193–217
[6]Ware J O, Benedict L I, Rolfe W H. A recessive naked-seed character in Upland cotton. J Hered, 1947, 38: 313–331
[7]Zhang T-Z(张天真), Pan J-J(潘家驹). Genetic analysis of fuzzless-lintless mutant in Gossypium hirsutum L. Jiangsu J Agric Sci (江苏农业学报), 1991, 7(3): 13–16 (in Chinese with English abstract)
[8]Turley R B, Kloth R H. Identification of a third fuzzless seed locus in upland cotton (Gossypium hirsutum L.). J Hered, 2002, 93: 359–364
[9]Du X M, Pan J J, Wang R H, Zhang T Z, Shi Y Z. Genetic analysis of presence and absence of lint and fuzz in cotton. Plant Breed, 2001, 120: 519–522
[10]Kohel R J. Genetic nomenclature in cotton. J Hered, 1973, 64: 291–295
[11]Endrizzi J E, Ramsay G. Identification of ten chromosome deficiencies of cotton. J Hered, 1980, 71: 45–48
[12]Rong J K, Pierce G J, Waghmare V N, Rogers C J, Desai A, Chee P W, May O L, Gannaway J R, Wendel J F, Wilkins T A, Paterson A H. Genetic mapping and comparative analysis of seven mutants related to seed fiber development in cotton. Theor Appl Genet, 2005, 111: 1137–1146
[13]Zhang D Y, Zhang T Z, Sang Z Q, Guo W Z. Comparative development of lint and fuzz using different cotton fiber-specific developmental mutants in Gossypium hirsutum. J Integr Plant Biol, 2007, 49: 1038–1046
[14]Lee J J, Hassan O S S, Gao W, Wei N E, Kohel R J, Chen X Y, Payton P, Sze S H, Stelly D M, Chen Z J. Developmental and gene expression analysis of a cotton naked seed mutant. Planta, 2006, 223: 418–432
[15]Bolton J J, Soliman K M, Wilkins T A, Jenkins J N. Aberrant expression of critical genes during secondary cell wall biogenesis in a cotton mutant, Ligon lintless-1 (Li-1). Compar Funct Genom, 2009,DOI: 10.1155/2009/659301
[16]John M E. Structural characterization of genes corresponding to cotton fiber mRNA E6: reduced E6 protein in transgenic plants by antisense gene. Plant Mol Biol, 1996, 30: 297–306
[17]Paterson A H, Brubaker C, Wendel J F. A rapid method for extraction of cotton (Gossypium spp.) genomic DNA suitable for RFLP or PCR analysis. Plant Mol Biol Rep, 1993, 11: 122–127
[18]Zhang J(张军), Wu Y-T(武耀廷), Guo W-Z(郭旺珍), Zhang T-Z(张天真). Fast screening of microsatellite markers in cotton with PAGE/silver staining. Cotton Sci (棉花学报), 2000, 12: 267–269 (in Chinese with English abstract)
[19]Zhang J, Guo W Z, Zhang T Z. Molecular linkage map of allotetraploid cotton (Gossypium hirsutum L.×Gossypium barbadense L.) with a haploid population. Theor Appl Genet, 2002, 105: 1166–1174
[20]Van Ooijen J W, Voorrips R E. JoinMapR Version 3.0: Software for the calculation of genetic linkage maps. Wageningen: CPRO-DLO, 2001
[21]Voorrips R E. MapChart: Software for the graphical presentation of linkage maps and QTLs. J Hered, 2002, 93: 77–78
[22]Leuhrsen K R. Insertion of Mul elements in the first intron of the Adh l-S gene of maize results in novel RNA processing events. Plant Cell, 1990, 2: 1225–1238
[23]Van Lijsebetens M, Vanderhaeghen R, Van Montagu M. Insertional mutagenesis in Arabidopsis thaliana: isolation of a T-DNA linked mutation that alters leaf morphology. Theor Appl Genet, 1991, 81: 277–284
[24]Stelly D M, Altman D W, Kohel R J, Rangan T S, Commiskey E. Cytogenetic abnormalities of cotton somaclones from callus culture. Genome, 1989, 32: 762–770
[25]Altman D W, Stelly D M, Mitten D M. Quantitative trait variation in phenotypically normal regenerants of cotton. In Vitro Cell Dev Biol, 1991, 27: 132–138
[26]Evans D A, Sharp W R. Single gene mutations in tomato plants regenerated from tissue culture. Science, 1983, 221: 949–951
[27]Gao D-Y(高东迎), Guo S-W(郭士伟), Li X(李霞), Sun L-H(孙立华), Liu A-M(刘蔼民). Somaclonal variation in rice. Chin Bull Bot (植物学通报), 2002, 19(6): 749–951 (in Chinese with English abstract)
[28]Bregilzer P, Halberl S E, Lemaux P G. Somaclonal variation in the progeny of transgenic barley. Theor Appl Genet, 1998, 96: 421–425
[29]Wang S-H(王素会), Du X-M(杜雄明). Advances in researches on molecular biology of two fiber-mutant. Cotton Sci (棉花学报), 2003, 15(6): 376–379 (in Chinese with English abstract)
[30]Song L(宋丽), Guo W-Z(郭旺珍), Qin H-D(秦鸿德), Ding Y-Z(丁业掌), Zhang T-Z(张天真). Genetic analysis and molecular validation of chromosome assignment for fuzzless genes N1 and n2 in cotton. J Nanjing Agric Univ (南京农业大学学报), 2010, 33(1): 21–26 (in Chinese with English abstract)
[1] 彭佳泺, 李颖, 李丹丹, 杨军宁, 郭学峰, 张文姣, 俞晓雪, 周亚荣, 王振玉, 王彩香, 马雄风, 宿俊吉. 陆地棉I类LBD家族成员鉴定及GhLBD6调控开花期的功能和单倍型分析[J]. 作物学报, 2026, 52(6): 1682-1697.
[2] 张献丰, 郭利建, 李康春, 孔斌雪, 刘玉芳, 车卓, 杨德龙. 小麦ABHD6基因家族鉴定与粒重功能标记开发[J]. 作物学报, 2026, 52(6): 1711-1727.
[3] 田立涛, 丁宁, 王树林, 齐恩芳, 张荣, 王蕊蕊, 马利雯, 李建武, 杨江伟. 马铃薯Argonaute基因家族鉴定及晚疫病诱导表达分析[J]. 作物学报, 2026, 52(4): 1116-1126.
[4] 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.
[5] 谭文清, 惠荣奎, 张凡丽, 覃磊, 毛舒香, 邓力超, 郭一鸣, 曲亮, 严明理. 油菜耐渍性快速鉴定及耐渍种质筛选[J]. 作物学报, 2026, 52(4): 1035-1045.
[6] 王粤生, 葛冬冬, 程兰斐, 陈春环, 王长有, 刘新伦, 李停栋, 邓平川, 吉万全, 赵继新. 小麦-华山新麦草二体异代换系16DH25-7的分子细胞遗传学及抗病性鉴定[J]. 作物学报, 2026, 52(2): 433-445.
[7] 刘迪, 黎瑞源, 石茂竹, 李洪有, 陈庆富, 石桃雄. 苦荞半矮秆突变体sd3的表型鉴定及转录组分析[J]. 作物学报, 2026, 52(1): 316-328.
[8] 董丽华, 董成艳, 李正楠, 余静, 叶靓, 刘芳, 谭静. 玉米禾谷镰孢穗腐病抗性候选基因的筛选与鉴定[J]. 作物学报, 2026, 52(1): 131-147.
[9] 薛晓菲, 戴云静, 李熙林, 丁艳艳, 王翔, 雷长英, 韩焕勇, 贺道华. 陆地棉杜松烯合酶基因GhCDN10的特征及其在棉酚合成中功能分析[J]. 作物学报, 2025, 51(8): 2060-2076.
[10] 许忆葳, 张莹莹, 李瑞, 燕永亮, 刘允军, 孔照胜, 郑军, 王逸茹. 戈壁异常球菌csp2基因提高玉米的抗旱性[J]. 作物学报, 2025, 51(8): 1981-1990.
[11] 李宜谦, 徐守振, 刘萍, 马麒, 谢斌, 陈红. 基于40K SNP芯片的陆地棉产量构成因素全基因组关联分析及单铃重位点挖掘[J]. 作物学报, 2025, 51(8): 2128-2138.
[12] 王润风, 李文佳, 廖泳俊, 鲁清, 刘浩, 李海芬, 李少雄, 梁炫强, 洪彦彬, 陈小平. 花生核心种质资源荚果成熟度评鉴及早熟种质筛选[J]. 作物学报, 2025, 51(2): 395-404.
[13] 郭淑慧, 潘转霞, 赵战胜, 杨六六, 皇甫张龙, 郭宝生, 胡晓丽, 录亚丹, 丁霄, 吴翠翠, 兰刚, 吕贝贝, 谭逢平, 李朋波. 陆地棉D11染色体一个纤维长度主效位点的遗传解析[J]. 作物学报, 2025, 51(2): 383-394.
[14] 孙现军, 于太飞, 胡正, 申鑫萍, 戈文艺, 姜雪敏, 王世佳, 于思佳, 武书羽, 韩龙植, 张辉, 姜奇彦. 基于“标准差系数加权法”的水稻全生育期耐盐碱鉴定与资源筛选[J]. 作物学报, 2025, 51(12): 3369-3376.
[15] 赵海红, 李梦媛, 刘锦婧, 王园园, 杜磊, 王娟, 董承光, 李成奇. 利用3VmrMLM方法检测陆地棉株高QTN及QTN-环境互作(QEI)[J]. 作物学报, 2025, 51(10): 2619-2631.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!