作物学报 ›› 2012, Vol. 38 ›› Issue (03): 416-422.doi: 10.3724/SP.J.1006.2012.00416
惠国强1,2,杜何为1,3,杨小红1,刘光辉1,王振通1,张义荣1,郑艳萍1,严建兵1,张铭堂1,4,李建生1,*
HUI Guo-Qiang1,2,DU He-Wei1,3,YANG Xiao-Hong1,LIU Guang-Hui1,WANG Zhen-Tong1,ZHANG Yi-Rong1,ZHENG Yan-Ping1,YAN Jian-Bing1,CHANG Ming-Tang1,4,LI Jian-Sheng1,*
摘要: 通过比较3种除草剂加倍玉米单倍体的效率,提出了利用除草剂加倍玉米单倍体的新方法。以先玉335、中农大4号和8607×8609三个基因型诱导的单倍体籽粒为材料,利用20、40、80和160 μmol L-1浓度的甲基胺草磷、炔苯酰草胺和氟乐灵作为加倍药剂,在单倍体植株生长到三叶期和五叶期时,用滴心法处理幼苗,选择有花粉的单株自交,收获后调查果穗加倍率;采用细胞学方法观察单倍体的染色体数目和花粉的活性。结果表明,20~160 μmol L-1的3种除草剂对玉米单倍体加倍均有效果,加倍率在3.42%~26.32%之间。甲基胺草磷、炔苯酰草胺和氟乐灵的加倍率分别为4.29%~26.32%、3.85%~20.81%和3.42%~17.61%;其中80 μmol L-1甲基胺草磷的加倍效果最佳,使用80 μmol L-1甲基胺草磷处理3个杂交种的单倍体,平均加倍率分别为25.02%、20.13%和14.99%。方差分析表明,3个基因型间的单倍体加倍率均呈极显著差异,可见使用甲基胺草磷、炔苯酰草胺、氟乐灵可以提高玉米单倍体的加倍频率,但不同基因型单倍体对除草剂的敏感性存在差异。
[1] FAO (联合国粮食及农业组织). FAO Statistical Yearbook 2009 Vol. 4 (1) (粮农组织统计年鉴2009年第4卷1). Rome: FAO, 2009. pp 59–62 (in Chinese)[2] National Bureau of Statistics China (中华人民共和国国家统计局). China Statistical Yearbook 2009 (中国统计年鉴2009). Beijing: China Statistics Press, 2009. pp 481, 485 (in Chinese)[3] Tong P-Y(佟屏亚). The course and the achievement of corn variety improving in the 20th century in China. China Hist Mater Sci Technol (中国科技史料), 2001, 22(2): 113–127 (in Chinese with English abstract)[4] Chang M T, Coe E. H. Doubled Haploids (Molecular Genetic Approaches to Maize Improvement). Berlin Heidelberg: Springer-Verlag, 2009. pp 134–137[5] Sarkar K R, Coe E H. A genetic analysis of the origin of maternal haploid in maize. Genetics, 1966, 54: 453–464[6] Chase S S. Techniques for isolating monoploid maize plants. Am J Bot, 1947, 34: 582[7] Chase S S. Monoploid frequencies in a commercial double cross hybrid maize, and in its component single cross hybrids and inbred lines. Genetics, 1949, 34: 328–332[8] Chase S S. The reproductive success of monoploid maize. Am J Bot, 1949, 36: 795–796[9] Chase S S. Ef?cient methods of developing and improving inbred lines. The monoploid method of developing inbred lines. In: Proc. 6th Annual Hybrid corn Industry Research Conference. Chicago, Illinois, USA. 1951. pp 29–34. [10] Chen S-J(陈绍江), Li L(黎亮), Li H-C(李浩川). Technology of Haploid Breeding in Maize (玉米单倍体育种技术). Beijing: China Agricultural University Press, 2009. pp 5–11 (in Chinese)[11] Kato A. Nitrous oxide (N2O) is effective in chromosome doubling of maize seedings. Maize Genet Coop Newsl, 1997, 71: 36–37[12] Kato A. Chromosome doubling of haploid maize seedlings using nitrous oxide gas at the flower primordial stage. Plant Breed, 2002, 121: 370–377[13] Chalyk S T. Properties of maternal haploid maize plants and potential application to maize breeding. Euphytica, 1994, 79: 13–18[14] Mu Q-H(母秋华), Yang Z-T(杨振棠), Chen Z-G(陈泽光), Zhang Z-M(张增明), Wang Y-X(王玉霞), Liu Z-D(刘志东), Zhang G-L(张桂兰), Tian H-X(田惠香). Screening of maize (Zea mays L.) pollen-embryoid clone and its application in breeding. Acta Biol Exp Sin (实验生物学报), 1983, 16(2): 223–227 (in Chinese with English abstract)[15] Gayen P, Jasbir K M, Rajesh K, Sarkar K R. Chromosome doubling in haploids through colchicines. Maize Genet Coop Newsl, 1994, 68: 65 [16] Stadler J, Phillips R, Leonard M. Mitotic blocking agents for suspension cultures of maize Black Mexican Sweet cell lines. Genome, 1989, 32: 475–478[17] Ramulu K S, Verhoeven H A, Dijkhuis P. Mitotic blocking, micronucleation, and chromosome doubling by oryzalin, amiprophos-methyl, and colchicine in potato. Proto Plasma, 1991, 160: 2–3, 65–71 [18] Blanco H G, Rozandi A, Leiderman L. Experimentation with herbicides in the cultivation of onion (Allium cepa L.) to evaluate the efficiency of 16 herbicides applied pre-emergence to weeds. Biologico, 1982, 48: 113–134[19] Beaumont V H, Widholm J M. Ploidy variation of pronamide-treated maize calli during long term culture. Plant Cell Rep, 1993, 12: 648–651[20] Lashermes P, Beckert M. Genetic control of maternal haploidy in maize (Zea mays L.) and selection of haploid inducing lines. Theor Appl Genet, 1988, 76: 405–410[21] Shatskaya O A, Zabirova E R, Shcherbak V S. Autodiploid lines as sources of haploid spontaneous diploidization in corn. Maize Genet Coop Newsl, 1994, 68: 51–52[22] Chen Z Z, Snyder S, Fan Z G, Lob W H. Efficient production of doubled haploid plants through chromosome doubling of isolated microspores in Brassica napus. Plant Breed, 1994, 11: 217–221[23] Chauvin J E, Souchet C, Dantec J P, Ellissèche D. Chromosome doubling of 2x Solanum species by Oryzalin: method development and comparison with spontaneous chromosome doubling in vitro. Plant Cell Tissue Organ Cult, 2003, 73: 65–73[24] Ge Z-D(葛志东), Li H-Z(李海真), Wang H-L(王惠林), Xu L-C(许利彩). The research on induction of pumpkin chromosome doubling with trifluralin. Chin Agric Sci Bull (中国农学通报), 2009, 25(8): 215–218 (in Chinese with English abstract)[25] Wei J-J(魏俊杰), Zhang X-L(张晓丽), Chen M-X(陈梅香), Liu Z-Z(刘志增), Zhu L-Y(祝丽英). Analysis of the results of injection treatment with colchicines in six leaf stage to maize haploid. J Maize Sci (玉米科学), 2007, 15(4): 49–51 (in Chinese with English abstract) [26] Hansen N J P, Asndersen S B. In vitro chromosome doubling potential of colchicines, oryzalin, trifluralin, and APM in Brassica napus microspore culture. Euphytica, 1996, 88: 159–164[27] Liu Z-Q(刘支前). Effect of pronamide on the mitosis in the shoot meristems of dodder seedlings. Aeta Biol Exp Sin (实验生物学报), 1995, 28(2): 209–213 (in Chinese with English abstract)[28] Wen K(文科), Li L(黎亮), Liu Y-Q(刘玉强), Chen S-J(陈绍江). Study on bio-haploid inducing and doubling efficiency in maize. J China Agric Univ (中国农业大学学报) 2006, 11(5): 17–20 (in Chinese with English abstract)[29] Heinz D J, Mee G W P. colchicines induced polyploids from cell sus-pension cultures of sugarcane. Crop Sci, 1970, 10: 696–699[30] Novak F. J. Production of garlic (Allium sative L.) tetraploids in shoot-tip in vitro culture. Z. P. Flanzenzuchtg, 1983, 91: 329–333[31] Gayen P, Sarkar K R. Cytomixis in maize haploids. Genet Plant Breed, 1996, 56: 79–85[32] Chakraborti S P, Vijayan K. In vitro induction of tetraploidy in mulberry (Morus alba L.). Plant Cell Rep, 1998, 17: 799–803[33] Su S-Q(苏少泉). Herbicide Introduction (除草剂概论). Beijing: Science Press, 1989. p 292 (in Chinese)[34] Anonymity(匿名). Propyzamide. Pesticide Sci Adm (农药科学与管理), 2008, 29(6): 58 (in Chinese)[35] An Q(安琼). Degradation of trifluralin in soils and its affected faetors. Chin J Appl Ecol (应用生态学报), 1993, 4(4): 418–422 (in Chinese with English abstract) |
[1] | 肖颖妮, 于永涛, 谢利华, 祁喜涛, 李春艳, 文天祥, 李高科, 胡建广. 基于SNP标记揭示中国鲜食玉米品种的遗传多样性[J]. 作物学报, 2022, 48(6): 1301-1311. |
[2] | 崔连花, 詹为民, 杨陆浩, 王少瓷, 马文奇, 姜良良, 张艳培, 杨建平, 杨青华. 2个玉米ZmCOP1基因的克隆及其转录丰度对不同光质处理的响应[J]. 作物学报, 2022, 48(6): 1312-1324. |
[3] | 王丹, 周宝元, 马玮, 葛均筑, 丁在松, 李从锋, 赵明. 长江中游双季玉米种植模式周年气候资源分配与利用特征[J]. 作物学报, 2022, 48(6): 1437-1450. |
[4] | 杨欢, 周颖, 陈平, 杜青, 郑本川, 蒲甜, 温晶, 杨文钰, 雍太文. 玉米-豆科作物带状间套作对养分吸收利用及产量优势的影响[J]. 作物学报, 2022, 48(6): 1476-1487. |
[5] | 陈静, 任佰朝, 赵斌, 刘鹏, 张吉旺. 叶面喷施甜菜碱对不同播期夏玉米产量形成及抗氧化能力的调控[J]. 作物学报, 2022, 48(6): 1502-1515. |
[6] | 徐田军, 张勇, 赵久然, 王荣焕, 吕天放, 刘月娥, 蔡万涛, 刘宏伟, 陈传永, 王元东. 宜机收籽粒玉米品种冠层结构、光合及灌浆脱水特性[J]. 作物学报, 2022, 48(6): 1526-1536. |
[7] | 单露英, 李俊, 李亮, 张丽, 王颢潜, 高佳琪, 吴刚, 武玉花, 张秀杰. 转基因玉米NK603基体标准物质研制[J]. 作物学报, 2022, 48(5): 1059-1070. |
[8] | 刘嘉欣, 兰玉, 徐倩玉, 李红叶, 周新宇, 赵璇, 甘毅, 刘宏波, 郑月萍, 詹仪花, 张刚, 郑志富. 耐三唑并嘧啶类除草剂花生种质创制与鉴定[J]. 作物学报, 2022, 48(4): 1027-1034. |
[9] | 许静, 高景阳, 李程成, 宋云霞, 董朝沛, 王昭, 李云梦, 栾一凡, 陈甲法, 周子键, 吴建宇. 过表达ZmCIPKHT基因增强植物耐热性[J]. 作物学报, 2022, 48(4): 851-859. |
[10] | 刘磊, 詹为民, 丁武思, 刘通, 崔连花, 姜良良, 张艳培, 杨建平. 玉米矮化突变体gad39的遗传分析与分子鉴定[J]. 作物学报, 2022, 48(4): 886-895. |
[11] | 闫宇婷, 宋秋来, 闫超, 刘爽, 张宇辉, 田静芬, 邓钰璇, 马春梅. 连作秸秆还田下玉米氮素积累与氮肥替代效应研究[J]. 作物学报, 2022, 48(4): 962-974. |
[12] | 徐宁坤, 李冰, 陈晓艳, 魏亚康, 刘子龙, 薛永康, 陈洪宇, 王桂凤. 一个新的玉米Bt2基因突变体的遗传分析和分子鉴定[J]. 作物学报, 2022, 48(3): 572-579. |
[13] | 宋仕勤, 杨清龙, 王丹, 吕艳杰, 徐文华, 魏雯雯, 刘小丹, 姚凡云, 曹玉军, 王永军, 王立春. 东北主推玉米品种种子形态及贮藏物质与萌发期耐冷性的关系[J]. 作物学报, 2022, 48(3): 726-738. |
[14] | 渠建洲, 冯文豪, 张兴华, 徐淑兔, 薛吉全. 基于全基因组关联分析解析玉米籽粒大小的遗传结构[J]. 作物学报, 2022, 48(2): 304-319. |
[15] | 张倩, 韩本高, 张博, 盛开, 李岚涛, 王宜伦. 控失尿素减施及不同配比对夏玉米产量及氮肥效率的影响[J]. 作物学报, 2022, 48(1): 180-192. |
|