作物学报 ›› 2011, Vol. 37 ›› Issue (05): 929-933.doi: 10.3724/SP.J.1006.2011.00929
• 研究简报 • 上一篇
李玲,陈进红,祝水金*
LI Ling,CHEN Jin-Hong,ZHU Shui-Jin
摘要: 以陆地棉标准系TM-1为对照,通过盆栽模拟试验,采用ICP-MS技术和NIRS技术测定不同水平镉胁迫下2个棉花品种(系)种子种仁的镉含量和营养成分。结果表明,3个参试的棉花品种(系)种仁中的镉含量随镉处理浓度的增加而显著增加,其中转基因抗虫棉品种SGK3种子种仁的镉含量最高,低、中、高镉浓度处理后的种仁镉含量均显著高于其他品种(系),说明该品种具有较强的镉累积能力。转基因抗草甘膦棉花种质系ZD-90种仁中的镉含量虽显著低于SGK3,但高于甚至显著高于陆地棉标准系TM-1。镉处理可降低棉花种子的物理品质性状,且品种(系)间的差异达到显著水平。3个陆地棉品种中,镉处理对于TM-1的蛋白质、油分和棉酚含量有较大的影响,差异达到了显著水平。而SGK3和ZD-90的种子种仁营养成分受镉处理影响相对较小,不同处理间种仁的营养成分差异未达显著水平。耐镉害能力为SGK3>ZD-90 >TM-1。相关性分析结果表明,棉花种子种仁的镉含量与棉酚含量呈显著负相关,但与其他种子物理品质性状和种仁营养品质性状的相关性未达显著水平。
| [1]Wang H-Z(王慧忠), Li J(李鹃). Effect of cadmium ion and lead ion induced stress on anti-oxidative genes expression in perennial ryegrass cells. J Agro Environ Sci (农业环境科学学报), 2008, 27(6): 2371–2376 (in Chinese with English abstract) [2]Huang D-F(黄冬芬), Xi L-L(奚岭林), Yang L-N(杨立年), Wang Z-Q(王志琴), Yang J-C(杨建昌). Comparison of agronomic and physiological traits of rice genotypes differing in cadmium-tolerance. Acta Agron Sin (作物学报), 2008, 34(5): 809–817 (in Chinese with English abstract) [3]Huang D-F(黄冬芬), Wang Z-Q(王志琴), Liu L-J(刘立军), Yang J-C(杨建昌). Effect of cadmium on the rice yield and grain quality. Chin J Trop Crops (热带作物学报), 2010, 31(1): 19–24 (in Chinese with English abstract) [4]Huang D-F(黄冬芬), Xi L-L(奚岭林), Wang Z-Q(王志琴), Liu L-J(刘立军), Yang J-C(杨建昌). Effects of irrigation patterns during grain filling on grain quality and concentration and distribution of cadmium in different organs of rice. Acta Agron Sin (作物学报), 2008, 34(3): 456–464 (in Chinese with English abstract) [5]Cao Y(曹莹), Huang R-D(黄瑞冬), Jiang W-C(蒋文春), Cao Z-Q(曹志强). Effect of heavy metal lead and cadmium on grain quality of maize. J Shenyang Agric Univ (沈阳农业大学学报), 2005, 36(2): 218–220 (in Chinese with English abstract) [6]Guo T-C(郭天财), Xia L-K(夏来坤), Zhu Y-J(朱云集), Kang G-Z(康国章), Qin X-L(秦学磊), Zhang C-L(张春丽). Preliminary study on effects of copper, cadmium stress on starch content and pasting property of winter wheat grain. J Triticeae Crops (麦类作物学报), 2006, 26(3): 107–110 (in Chinese with English abstract) [7]Wu F B, Chen F, Wei K, Zhang G P. Effect of cadmium on free amino acids, glutathione and ascorbic acid content in two barley genotypes differing in Cd tolerance. Chemoshpere, 2004, 57: 447–454 [8]Sun S-K(孙善康), Chen J-H(陈建华), Xiang S-K(项时康), Wei S-J(魏守军). Study on the nutritional quality of cotton seeds. Sci Agric Sin (中国农业科学), 1987, 20(5): 12–16 (in Chinese with English abstract) [9]Daud M K, Sun Y Q, Dawood M, Hayat Y, Variath M T, Wu Y X, Raziuddin, Mishkat U, Salahuddin, Najeeb U, Zhu S J. Cadmium-induced functional and ultrastructural alterations in roots of two transgenic cotton cultivars. J Hazard Mater, 2009, 161: 463–473 [10]Daud M K, Variath M T, Shafaqat Ali, Najeeb U, Jamil M, Hayat Y, Dawood M, Khan M I, Zaffar M, Cheema S A, Tong X H, Zhu S J. Cadmium-induced ultramorphological and physiological changes in leaves of two transgenic cotton cultivars and their wild relative. J Hazard Mater, 2009, 168: 614–625 [11]Wang G-J(王国建), Zhu J(朱军), Zang R-C(藏荣春), Xu F-H(许馥华), Ji D-F(季道藩). Analysis of covariance components between seed and agronomy traits in upland cotton. Acta Gossypii Sin (棉花学报), 1996, 8(6): 295–300 (in Chinese) [12]Ji D-F(季道藩), Zeng G-W(曾广文), Zhu J(朱军). Analysis of oil and amino acid contents in four cultivated species of gossypium. J Zhejiang Agric Univ (浙江农业大学学报), 1985, 11(3): 257–262 (in Chinese) [13]Dani R G. Genotype × environment interactions for seed-oil and protein content in cotton (Gossypium hirsutum L.). Indian J Genet Plant Breed, 1990, 49: 237–240 [14]Yu H(于辉), Yang Z-Y(杨中艺), Xiang Z-X(向佐湘), Chen G-H(陈桂华), Liu M-X(刘明稀), Zang Z-F(张志飞), Yuan J-G(袁剑刚). Existing forms of cadmium in brown rice (Oryza sativa L.) of two cultivars differing in Cd accumulation. Acta Sci Nat Univ Sunyatseni (中山大学学报), 2010, 49(1): 85–89 (in English with Chinese abstract) [15]Cobbett C S. Phytochelatin biosynthesis and function in heavy-metal detoxification. Curr Opin Plant Biol, 2000, 3: 211–216 [16]Grill E, Winnacker E L, Zenk M H. Phytochelatins, a class of heavy metal-binding peptides from plants are functionally analogous to metallothioneins. Proc Natl Acad Sci USA, 1987, 84: 439–443 [17]Salt D E, Rauser W E. MgATP-dependent transport of phytochelatin across the tonoplast of oat roots. Plant Physiol, 1995, 107: 1293–1301 [18]Pizzinatto M A, Menten J O M, Soave J, Cia E, Maeda J A. Relacao entre densidade qualidade desementes de algodoeiro. Bragantia, 1991, 50: 269–289 [19]Speed T R, Kzieg D R, Jividen G. Relationship between cotton seeding cold tolerance and physical and chemical properties. In: Dugger P, Richter D A, eds. Proc. Belwide Cotton Conf. 2. National Cotton Council, Memphis, TN, 1996. pp 1170–1171 [20]Ye C-F(叶常丰), Dai X-W(戴心维). Seed Science (种子学). Beijing: China Agriculture Press, 1994. pp 249–304 (in Chinese) [21]Wei X(魏行), Shen M(沈敏), Li S-Q(李胜清), Xue A-F(薛爱芳), Chen J(陈洁). Determination of Pb, Cd, Cu, Cr and Fe in transgenic rapeseeds by atomic absorption spectrometry. Food Sci (食品科学), 2008, 29(8): 553–556 (in Chinese with English abstract) [22]Wei X(魏行), Shen M(沈敏), Wang J-L(王金玲), Xue A-F(薛爱芳), Li S-Q(李胜清), Chen J(陈洁). Determination of Pb, Cd, Cu and Cr in the transgenic cotton seeds by graphite furnace atomic absorption spectrometry. J Anal Sci (分析科学学报), 2009, 25(2): 201–204 (in Chinese with English abstract) [23]Rui Y-K(芮玉奎), Zhang F-S(张福锁), Lu Y-H(陆雅海). Application of ICP-MS to detection of mineral elements and heavy metals in transgenic cotton fibre. Spectrosc Spect Anal (光谱学与光谱分析), 2008, 28(4): 937–939 (in Chinese with English abstract) |
| [1] | 赵佳雪, 周龙昊, 郭岂源, 尚伦霄, 王涵, 刘志涛, 陈曦, 张晓佩, 宋宪亮, 毛丽丽. 长期秸秆还田与深松通过改善土壤环境与棉花光合特性提高滨海盐碱地棉花产量[J]. 作物学报, 2026, 52(5): 1548-1560. |
| [2] | 张曦, 王广恩, 李邵琦, 刘祎, 李俊兰, 钱玉源. 基于转录组测序解析陆海杂交姊妹系马克隆值差异的形成机制[J]. 作物学报, 2026, 52(5): 1442-1458. |
| [3] | 周琦翔, 朱艳, 汪楚博, 朱柏林, 李俊博, 宋利兵. 基于DSSAT模型模拟气候变化对新疆棉花物候期及产量的影响[J]. 作物学报, 2026, 52(2): 590-602. |
| [4] | 郭栋财, 吕涛, 蔡永生, 买吾鲁达·艾合买提, 全家, 曲延英, 郑凯. 棉花纤维品质相关性状QTL元分析及候选基因鉴定[J]. 作物学报, 2025, 51(6): 1445-1466. |
| [5] | 王亚雯, 戚正阳, 尤佳琦, 聂新辉, 曹娟, 杨细燕, 涂礼莉, 张献龙, 王茂军. 棉花60K功能位点基因芯片的制备及应用[J]. 作物学报, 2025, 51(5): 1178-1188. |
| [6] | 丁俊沣, 许映飞, 张祥, 陈媛, 陈德华. 生长调节剂吲哚丁酸对移栽棉苗成活及生长发育的影响[J]. 作物学报, 2025, 51(12): 3331-3341. |
| [7] | 哈丽哈什·依巴提, 张炎, 李青军, 徐新朋, 何萍. 基于产量反应和农学效率的棉花智能化推荐施肥方法研究[J]. 作物学报, 2025, 51(11): 3052-3064. |
| [8] | 李亚玮, 徐盈盈, 左春阳, 刘若男, 梁亚军, 孔杰, 张献龙, 闵玲. 棉花减数分裂进程鉴定体系构建及其对高温胁迫的响应分析[J]. 作物学报, 2025, 51(10): 2570-2580. |
| [9] | 陈佳伟, 林艳, 张明星, 周诗晶, 饶力群, 周池, 李鑫. 贝莱斯芽孢杆菌YCH92对棉花根际土壤微生物群落及棉花产量的影响[J]. 作物学报, 2025, 51(10): 2821-2835. |
| [10] | 谢章书, 谢学方, 屠小菊, 刘爱玉, 董合忠, 周仲华. 植物激素对棉花蕾铃脱落的调控研究进展[J]. 作物学报, 2025, 51(1): 1-29. |
| [11] | 辛明华, 秘雅迪, 王国平, 李小飞, 李亚兵, 董合林, 韩迎春, 冯璐. 行距配置和种植密度对棉花干物质生产及产量的影响[J]. 作物学报, 2025, 51(1): 221-232. |
| [12] | 李超, 付小琼. 基于GYT双标图综合评价黄河流域中熟杂交棉花区域试验品种[J]. 作物学报, 2025, 51(1): 30-43. |
| [13] | 艾莎, 李莎, 方治伟, 李论, 李甜甜, 高利芬, 陈利红, 肖华锋, 万人静, 闫多子, 武星廷, 彭海, 韩瑞玺, 周俊飞. 棉花MNP标记位点开发及其在DNA指纹图谱构建中的应用[J]. 作物学报, 2024, 50(9): 2267-2278. |
| [14] | 李航, 刘丽, 黄乾, 刘文豪, 司爱君, 孔宪辉, 王旭文, 赵福相, 梅拥军, 余渝. 棉花种质资源萌发期耐盐性鉴定及筛选[J]. 作物学报, 2024, 50(5): 1147-1157. |
| [15] | 乐愉, 王涛, 张献龙, 林忠旭. 陆地棉重组自交系再生能力和遗传转化效率筛选[J]. 作物学报, 2024, 50(5): 1172-1180. |
|
||