作物学报 ›› 2010, Vol. 36 ›› Issue (08): 1280-1285.doi: 10.3724/SP.J.1006.2010.01280
李俊,罗莉霞,王转,李均,陈坤荣,任莉,方小平*
LI Jun,LUO Li-Xia,WANG Zhuan,LI Jun,CHEN Kun-Rong,REN Li,FANG Xiao-Ping*
摘要: 为比较甘蓝型油菜不同细胞质基因组的遗传效应及其与核基因的相互作用,对12个白菜(2n=20)与1个芥蓝(2n=18)的正反交种间杂种分别进行子房和胚培养,人工合成白菜和甘蓝细胞质甘蓝型油菜。结果表明,白菜 × 芥蓝的正交子房培养杂种苗平均诱导率2.32%,甘蓝 × 白菜的反交胚培养杂种苗平均诱导率为1.16%。不同杂交组合之间,杂种苗诱导率差异大,但相同亲本正反交杂种获得的难易趋势相似。将单倍体杂种小苗在含0.01%秋水仙碱的MS培养基中预培养处理10 d的染色体加倍效果最好,加倍率达59.32%。人工合成的甘蓝型油菜农艺性状类似于栽培甘蓝型油菜,无论正交或反交合成的甘蓝型油菜,其农艺性状介于父母本之间,但更接近于母本。合成油菜花粉育性在40.53%~88.95%之间。
[1] Liu H-L(刘后利). Genetics and Breeding of Rapeseed (油菜的遗传和育种). Shanghai: Shanghai Scientific Technology Press, 1985 (in Chinese) [2] Niu Y-Z(牛应泽), Wang L-Z(汪良中), Niu Y-Z(刘玉贞), Guo S-X(郭世星). Development of new germplasm in rapeseed through resynthesis of new Brassica napus L. Chin J Oil Crop Sci (中国油料作物学报), 2003, 25(2): 11–15 (in Chinese with English abstract) [3] Liu P-W(刘平武), Yang G-S(杨光圣). Analyses of the genetic diversity of resynthesized Brassica napus by RAPD and SSR molecular markers. Acta Agron Sin (作物学报–1273 (in Chinese with English abstract)), 2004, 30(12): 1266 [4] Heath D W, Earle E D. Resynthesis of rapeseed (Brassica napus L.): a comparison of sexual versus somatic hybridization. Plant Breed, 1996, 115: 395–401 [5] Zhou W-J(周伟军), Tang G-X(唐桂香), Zhang G-Q(张国庆), Hagberg P. Studies on efficient production of doubled haploid plants by colchincine treatment in microspore culture of Brassica napus. Sci Agric Sin (中国农业科学), 2002, 35(4): 410–414 (in Chinese with English abstract) [6] Li Z, Liu H L, Luo P. Production and cytogeneric hybrids between Brassica napus and Orychophragmus violaceus. Theor Appl Genet–136, 1995, 91: 131 [7] Zhang X-W(张晓伟), Gao M-Q(高睦枪), Yuan Y-X(原玉香), Geng J-F(耿建峰), Wen Y-C(文雁成), Zhang S-F(张书芬), Li G-Y(栗根义). Studies河南农业科学), 2001, (2): 7–10 (in Chinese with English abstract) on artificially synthesized B. napus L. J Henan Agri Sci ( [8] Lu C M, Zhang B, Kakihara F, Kato M. Introgression of genes into cultivated Brassica napus through resynthesis of B. napus via ovule culture and the accompanying change in fatty acid composition. Plant Breed, 2001, 120: 405–410 [9] Dale P J. Spread of engineered genes to wild relatives. Plant Physiol, 1992, 100: 13–15 [10] Zhang G Q, Tang G X, Song W J, Zhou W J. Resynthesizing Brassica napus from interspecific hybridization between Brassica rapa and B. oleracea through ovary culture. Euphytica, 2004, 140: 181–187 [11] Goy P A, Duesing J H. Assessing the environmental impact of gene transfer to wild relatives. Biotechnology, 1996, 14: 39–40 [12] Hossain M M, Inden H, Asahira T. Intergeneric and interspecific hybrids through in vitro ovule culture in the Creuciferae. Plant Sci, 1988, 58: 121–128 [13] Zhou Q-Y(周清元), Li J-N(李加纳), Yin J-M(殷家明), Tang Z-L(唐章林), Chen L(谌利), Tao L(陶澜). Preliminary studies on interspecific hybridization between Brassica campestris and B. oleracea var. aceaphala: I. The effect of the time of overay taking on seed forming in in-vitro culture. J Southwest Agric Univ (Nat Sci Edn)(西南农业大学学报·自然科学版), 2003, 25(6): 495–497 (in Chinese with English abstract) [14] Wen Y-C(文雁成), Zhang S-F(张书芬), Wang J-P(王建平), Li G-Y(栗根义), Zhang X-W(张晓伟). Studies on synthetic Brassica napus by interspecific hybridization between B. oleracea and B. campestris. Chin J Oil Crop Sci (中国油料作物学报), 1999, 21(4): 8–11 (in Chinese with English abstract) [15] Dai L-J(戴林建), Li X(李栒), Zhang S-W(张四伟). Crossabilities between Brassica spp. and Eruca sativa. Crop Res (作物研究), 2002, 3: 123–125 (in Chinese) [16] Scheffler J A, Dale P J. Opportunities for gene transfer from transgenic oilseed rape (Brassica napus) to related species. Transgenic Res, 1994, 3: 263–278 [17] Wang D(王丹), Wang W(王文), Shi Y-Y(史滟滪). Embryologic research into reciprocal crosses between Brassica juncea and B.pekinesi. Chin Bull Bot (植物学通报), 2006, 23(2): 158–163 (in Chinese with English abstract) [18] Li J(李俊), Zhang C-L(张春雷), Li G-M(李光明). Research progress in gene flow from transgenic rapeseed (Brassica napus) to its relatives. Acta Agric Jiangxi (江西农业学报), 2009, 21(3): 32–37 (in Chinese with English abstract) Li M-T(栗茂腾), Liu J-M(刘建民), Wang Y-T(王艳婷), Yu L-J(余龙江), Meng J-L(孟金陵). Production of partial new-typed Brassica napus by introgression of genomic components from B. rapa and B. carinata. Acta Gen Sin (遗传学报), 2007, 34(5): 460–480 (in Chinese with English abstract) |
[1] | 韦还和,姜元华,赵可,许俊伟,张洪程,戴其根,霍中洋,许轲,魏海燕,郑飞. 甬优系列杂交稻品种的超高产群体特征[J]. 作物学报, 2013, 39(12): 2201-2210. |
[2] | 张新友,徐静,汤丰收,董文召,臧秀旺,张忠信. 花生种间杂种胚胎发育及内源激素变化[J]. 作物学报, 2013, 39(06): 1127-1133. |
[3] | 王爱云;李栒;胡大有. 芥菜型油菜和黑芥与诸葛菜属间杂种的获得及其特性[J]. 作物学报, 2008, 34(09): 1557-1562. |
[4] | 庞朝友;杜雄明;马峙英. 棉属种间杂交基因渐渗系SSR标记及其表型性状的聚类分析[J]. 作物学报, 2006, 32(09): 1371-1378. |
[5] | 栗茂腾; 张椿雨;李宗芸;孟金陵. 埃塞俄比亚芥与白菜型油菜间六倍体杂种的获得及其生物学特性研究[J]. 作物学报, 2005, 31(12): 1579-1585. |
[6] | 周清元;李加纳;崔翠;殷家明;谌利;唐章林. 芥菜型油菜×羽衣甘蓝种间杂种的获得及其性状表现[J]. 作物学报, 2005, 31(08): 1058-1063. |
[7] | 王熹;陶龙兴;黄效林;俞美玉. 亚种间杂交稻协优9308的结实特性与生理基础[J]. 作物学报, 2003, 29(04): 530-533. |
[8] | 郎有忠;杨建昌;朱庆森. 亚种间杂交稻根系形态生理特征及其与籽粒充实度关系的研究[J]. 作物学报, 2003, 29(02): 230-235. |
[9] | 王国槐;官春云;陈社员;刘本坤;刘忠松. 十字花科芸薹属种间杂种营养优势的利用研究[J]. 作物学报, 2003, 29(01): 54-58. |
[10] | 王兰珍;李惟基;周海鹰;葛玉梅;刘庆昌;陆漱韵. 甘薯与低倍体种间杂种杂交低结实性的克服[J]. 作物学报, 2000, 26(02): 134-142. |
[11] | 孟金陵. 甘蓝型油菜与近缘种、属杂交时花粉-雌蕊相互作用的研究[J]. 作物学报, 1990, 16(01): 19-25. |
[12] | 陆漱韵;国分祯二;佐藤宗治. 关于甘薯属甘薯组中 A 群和 B 群之间可交配性的研究[J]. 作物学报, 1989, 15(01): 46-52. |
[13] | 钱思颖;黄骏麒;刘桂玲;彭跃进;应苗成;徐英俊. 棉属种间杂交的研究[J]. 作物学报, 1988, 14(02): 96-102. |
|