作物学报 ›› 2023, Vol. 49 ›› Issue (10): 2677-2686.doi: 10.3724/SP.J.1006.2023.24207
李阿蕾(), 戴志刚, 陈基权, 邓灿辉, 唐蜻, 程超华, 许英, 张小雨, 粟建光, 杨泽茂()
LI A-Lei(), DAI Zhi-Gang, CHEN Ji-Quan, DENG Can-Hui, TANG Qing, CHENG Chao-Hua, XU Ying, ZHANG Xiao-Yu, SU Jian-Guang, YANG Ze-Mao()
摘要:
镉污染是重金属污染中最严重的类型之一, 筛选耐镉性强的黄麻种质资源对改良土壤环境有重要意义。为鉴定评价长果种黄麻种质资源萌发期耐镉性, 本研究对239份来源不同的长果种黄麻种质萌发期进行0 mg L-1、5 mg L-1和25 mg L-1镉胁迫处理, 测定计算发芽率、发芽势、根长、芽长、发芽指数、活力指数和相对镉害率等7个指标, 结果显示对照组和处理组的7个指标间存在不同程度的差异。采用主成分分析、隶属函数分析和系统聚类分析等综合分析方法对长果种黄麻萌发期耐镉性进行综合评价, 将239份长果种黄麻种质资源依据D值大小划分成5类: 镉敏感型材料72份、镉较敏感材料52份、中度耐镉材料56份、耐镉材料50份、高耐镉材料9份, 其中以CoODKCG为代表的9份高耐镉材料可作为长果种黄麻耐镉育种的优异种质资源。通过逐步回归分析方程建立 5 mg L-1与25 mg L-1胁迫下长果种黄麻耐镉性综合评价数学模型: D1 =0.029 + 0.060×GR + 0.036×GI + 0.122×VI + 0.066× RL + 0.148×BL + 0.047×RCDR ( R12=0.833 ), D2=0.064 + 0.098×GR + 0.146×GI + 0.133×VI + 0.113×RL + 0.087×BL + 0.056×RCDR ( R22=0.801 ) 。结合主成分分析、相关性分析和逐步回归分析筛选出发芽指数、活力指数和根长作为长果种黄麻萌发期综合耐镉鉴定指标。本研究为长果黄麻耐镉品种的培育和优异基因资源的挖掘奠定了基础。
[1] | 郭昌盛, 林海涛, 蒋芳. 黄麻纤维的性能及其改性技术研究进展. 成都纺织高等专科学校学报, 2017, 34: 210-214. |
Guo C S, Lin H T, Jiang F. Jute fiber's property and its research progress in modification technologies. J Chengdu Textile Coll, 2017, 34: 210-214. (in Chinese with English abstract) | |
[2] |
徐益, 张列梅, 郭艳春, 祁建民, 张力岚, 方平平, 张立武. 黄麻核心种质的遴选. 作物学报, 2019, 45: 1672-1681.
doi: 10.3724/SP.J.1006.2019.94008 |
Xu Y, Zhang L M, Guo Y C, Qi J M, Zhang L L, Fang P P, Zhang L W. Core collection screening of a germplasm population in jute (Corchorus spp.). Acta Agron Sin, 2019, 45: 1672-1681. (in Chinese with English abstract) | |
[3] |
Arasimowicz-Jelonek M, Floryszak-Wieczorek J, Gwóźdź E A. The message of nitric oxide in cadmium challenged plants. Plant Sci, 2011, 181: 612-620.
doi: 10.1016/j.plantsci.2011.03.019 pmid: 21893258 |
[4] |
Hamid Y, Tang L, Yaseen M, Hussain B, Zehra A, Aziz M Z, He Z L, Yang X. Comparative efficacy of organic and inorganic amendments for cadmium and lead immobilization in contaminated soil under rice-wheat cropping system. Chemosphere, 2019, 214: 259-268.
doi: S0045-6535(18)31769-7 pmid: 30265933 |
[5] |
Pagani M A, Tomas M, Carrillo J, Bofill R, Capdevila M, Atrian S, Andreo C S. The response of the different soybean metallothionein isoforms to cadmium intoxication. J Inorg Biochem, 2012, 117: 306-315.
doi: 10.1016/j.jinorgbio.2012.08.020 pmid: 23073037 |
[6] | 张星雨, 叶志彪, 张余洋. 植物响应镉胁迫的生理与分子机制研究进展. 植物生理学报, 2021, 57: 1437-1450. |
Zhang X Y, Ye Z B, Zhang Y Y. Advances in physiological and molecular mechanism of plant response to cadmium stress. Plant Physiol J, 2021, 57: 1437-1450 (in Chinese with English abstract). | |
[7] | Xiang M, Li Y, Yang J, Lei K, Li Y, Li F, Zheng D, Fang X, Cao Y. Heavy metal contamination risk assessment and correlation analysis of heavy metal contents in soil and crops. Environ Pollut, 2021, 278: 116-911. |
[8] | 周建军, 周桔, 冯仁国. 我国土壤重金属污染现状及治理战略. 中国科学院院刊, 2014, 29: 315-320. |
Zhou J J, Zhou J, Feng R G. Status of China's heavy metal contamination in soil and its remediation strategy. Bull Chin Acad Sci, 2014, 29: 315-320. (in Chinese with English abstract) | |
[9] | 王泓博, 苟文贤, 吴玉清, 李伟. 重金属污染土壤修复研究进展:原理与技术. 生态学杂志, 2021, 40: 2277-2288. |
Wang H B, Gou W X, Wu Y Q, Li W. Progress in remediation technologies of heavy metals contaminated soil: principles and technologies. Chin J Ecol, 2021, 40: 2277-2288. (in Chinese with English abstract) | |
[10] |
Pulford I D, Watson C. Phytoremediation of heavy metal- contaminated land by trees: a review. Environ Int, 2003, 29: 529-540.
pmid: 12705950 |
[11] | Ye P, Wang M, Zhang T, Liu X, Jiang H, Sun Y, Cheng X, Yan Q. Enhanced cadmium accumulation and tolerance in transgenic hairy roots of Solanum nigrum L. expressing iron-regulated transporter gene IRT1. Life (Basel), 2020, 10: 324. |
[12] | 杜彩艳, 张乃明, 雷宝坤, 胡万里, 付斌, 陈安强, 毛妍婷, 木霖, 王红华, 严婷婷, 段宗颜, 雷梅. 不同玉米(Zea mays)品种对镉锌积累与转运的差异研究. 农业环境科学学报, 2017, 36(1): 16-23. |
Du C Y, Zhang N M, Lei B K, Hu W L, Fu B, Chen A Q, Mao Y T, Mu L, Wang H H, Yan T T, Duan Z Y, Lei M. Differences of cadmium and zinc accumulation and translocation in different varieties of Zea mays. J Agro-Environ Sci, 2017, 36(1): 16-23. (in Chinese with English abstract) | |
[13] |
Shi G L, Zhu S, Bai S N, Xia Y, Lou L Q, Cai Q S. The transportation and accumulation of arsenic, cadmium, and phosphorus in 12 wheat cultivars and their relationships with each other. J Hazard Mater, 2015, 299: 94-102.
doi: 10.1016/j.jhazmat.2015.06.009 pmid: 26094242 |
[14] | 任超, 任彧仲, 王浩, 朱利文, 李竞天, 杜倩倩, 李萍. 镉胁迫下不同小麦品种对镉的积累特性. 环境科学, 2022, 43: 1606-1619. |
Ren C, Ren Y Z, Wang H, Zhu L W, Li J T, Du Q Q, Li P. Cadmium accumulation characteristics of different heat varieties under cadmium stress. Environ Sci, 2022, 43: 1606-1619. (in Chinese with English abstract) | |
[15] |
许肖博, 安鹏虎, 郭天骄, 韩丹, 贾玮, 黄五星. 水稻镉胁迫响应机制及防控措施研究进展. 中国水稻科学, 2021, 35: 415-426.
doi: 10.16819/j.1001-7216.2021.201209 |
Xu X B, An P H, Guo T J, Han D, Jia W, Huang W X. Research progresses on response mechanisms and control measures of cadmium stress in rice. Chin J Rice Sci, 2021, 35: 415-426. (in Chinese with English abstract)
doi: 10.16819/j.1001-7216.2021.201209 |
|
[16] | 丁枫华, 刘术新, 罗丹, 王果. 23种常见作物对镉毒害的敏感性差异. 环境科学, 2011, 32: 277-283. |
Ding F H, Liu S X, Luo D, Wang G. Different sensitivity of 23 common crop species to cadmium toxicity. Environ Sci, 2011, 32: 277-283. (in Chinese with English abstract) | |
[17] |
Marie B, Václava G, Miroslav G. Accumulation of cadmium by flax and linseed cultivars in field-simulated conditions: a potential for phytoremediation of Cd-contaminated soils. Ind Crops Prod, 2011, 33: 761-774.
doi: 10.1016/j.indcrop.2011.01.020 |
[18] | 姚运法, 赖正锋, 林碧珍, 练冬梅, 洪建基. 耐镉黄,红麻品种筛选试验. 福建热作科技, 2018, 43(3): 1-4. |
Yao Y F, Lai Z F, Lin B Z, Lian D M, Hong J J. Choice test of cadmium proof vute, kenaf. Fujian Sci Technol Trop Crops, 2018, 43(3): 1-4. (in Chinese) | |
[19] | 孙凯, 朱涛涛, 朱爱国. 苎麻耐镉品种的水培筛选. 湖南农业科学, 2016, (7): 21-23. |
Sun K, Zhu T T, Zhu A G, Screening of ramie (Boehmeria nivea L.) Cd-tolerant variety by hydroponics. Hunan Agric Sci, 2016, (7): 21-23. (in Chinese with English abstract) | |
[20] | 苏小雨, 高桐梅, 张鹏钰, 李丰, 吴寅, 王东勇, 田媛, 卫双玲. 基于主成分分析及隶属函数法对芝麻苗期耐热性综合评价. 作物杂志, 2022, https://kns.cnki.net/kcms/detail/11.1808.S.20220728.1506.004.html. |
Su X Y, Gao T M, Zhang P Y, Li F, Wu Y, Wang D Y, Tian Y, Wei S L. Evaluation of heat resistance of sesame seedlings based on principal component analysis and membership function method. Crops, 2022, https://kns.cnki.net/kcms/detail/11.1808.S.20220728.1506.004.html. (in Chinese with English abstract) | |
[21] | 安婷婷, 黄帝, 王浩, 张一, 陈应龙. 植物响应镉胁迫的生理生化机制研究进展. 植物学报, 2021, 56: 347-362. |
An T T, Huang D, Wang H, Zhang Y, Chen Y L. Research advances in plant physiological and biochemical mechanisms in response to cadmium stress. Bull Bot, 2021, 56: 347-362. (in Chinese with English abstract) | |
[22] | 张宇, 马乐, 卢垚, 王露, 杨旭. 茄子种质资源耐盐性鉴定及耐盐评价指标筛选. 中国蔬菜, 2018, (9): 14-23. |
Zhang Y, Ma L, Lu Y, Wang L, Yang X. Salt tolerance identification of eggplant germplasm resources and selection of salt tolerance evaluation indexes. China Veget, 2018, (9): 14-23. (in Chinese with English abstract) | |
[23] | 孔令功. 大豆种质资源苗期耐盐性鉴定与耐盐材料筛选. 大豆科技, 2019, (5): 4-9. |
Kong L G. Identification of salt tolerance in seedling stage of soybean germplasm resources screening of salt tolerant materials. Soybean Sci Technol, 2019, (5): 4-9 (in Chinese with English abstract). | |
[24] | 张庆昕, 张玉霞, 陈卫东, 孙明雪, 郭园, 丛百明, 杜晓艳. 饲用高粱品种种子萌发期耐盐碱指标筛选及耐盐碱性综合评价. 安徽农业科学, 2022, 50: 40-42. |
Zhang Q X, Zhang Y X, Chen W D, Sun M X, Guo Y, Cong B M, Du X Y. Selection of salt and alkali tolerance indexes and comprehensive evaluation of salt and alkali tolerance of feed sorghum varieties during seed germination. Anhui Agric Sci, 2022, 50: 40-42. (in Chinese with English abstract) | |
[25] |
Wu H, Guo J, Wang C, Li K, Zhang X, Yang Z, Li M, Wang B. An effective screening method and a reliable screening trait for salt tolerance of Brassica napus at the germination stage. Front Plant Sci, 2019, 10: 530.
doi: 10.3389/fpls.2019.00530 |
[26] |
俞萍, 高凡, 刘杰, 梁琼, 韩莹琰, 王敬贤, 贾月慧. 镉对植物生长的影响和植物耐镉机制研究进展. 中国农学通报, 2017, 33(11): 89-95.
doi: 10.11924/j.issn.1000-6850.casb16080035 |
Yu P, Gao F, Liu J, Liang Q, Han Y Y, Wang J X, Jia Y H. Effect of Cd on plant growth and its tolerance mechanism. Chin Agric Sci Bull, 2017, 33(11): 89-95 (in Chinese with English abstract).
doi: 10.11924/j.issn.1000-6850.casb16080035 |
|
[27] | 游秀花, 何海斌, 聂丽华. 重金属对杉木种子发芽与根伸长抑制的生态效应. 东北林业大学学报, 2006, 34(1): 7-8. |
You X H, He H B, Nie L H. Ecological effect of heavy metal contamination on the inhibition of seed germination and root elongation of Chinese Fir. J Northeast For Univ, 2006, 34(1): 7-8. (in Chinese with English abstract) | |
[28] |
辛宝宝, 袁庆华, 王瑜. 多年生黑麦草种质材料苗期耐钴性综合评价及钴离子富集特性研究. 草地学报, 2012, 20: 1123-1131.
doi: 10.11733/j.issn.1007-0435.2012.06.023 |
Xin B B, Yuan Q H, Wang Y. Comprehensive evaluation of Co+ resistance and enrichment features of Italian ryegrass accessions at seedling stage. Acta Agrest Sin, 2012, 20: 1123-1131. (in Chinese with English abstract) | |
[29] | 张亚娟, 王倩, 龙瑜菡, 李璇, 李光菊, 邓纲, 刘飞虎. 不同大麻品种种子萌发期耐重金属铜胁迫能力评价. 中国麻业科学, 2018, 40(4): 183-191. |
Zhang Y J, Wang Q, Long Y H, Li Y, Li G J, Deng G, Liu F H, Effects of Cu2+ stress on the seed germination and Cu-tolerance evaluation of industrial hemp. China Fiber Sci, 2018, 40(4): 183-191. (in Chinese with English abstract) | |
[30] |
李敏, 苏慧, 李阳阳, 李金鹏, 李金才, 朱玉磊, 宋有洪. 黄淮海麦区小麦耐热性分析及其鉴定指标的筛选. 中国农业科学, 2021, 54: 3381-3393.
doi: 10.3864/j.issn.0578-1752.2021.16.002 |
Li M, Su H, Li Y Y, Li J P, Li J C, Zhu Y L, Song Y H. Analysis of heat tolerance of wheat with different genotypes and screening of identification indexes in Huang-Huai-Hai region. Sci Agric Sin, 2021, 54: 3381-3393. (in Chinese with English abstract)
doi: 10.3864/j.issn.0578-1752.2021.16.002 |
|
[31] | 张瑞, 王洋, Shahid H, 刘永昊, 邵星宇, 杨硕, 陈英龙, 韦还和, 戴其根. 水培条件下水稻全生育期耐盐筛选鉴定. 植物遗传资源学报, 2021, 22: 1567-1581. |
Zhang R, Wang Y, Shahid H, Liu Y H, Shao X Y, Yang S, Chen Y L, Wei H H, Dai Q G. Identification of salt-tolerant rice cultivars in the growth period under hydroponic conditions. J Plant Genet Resour, 2021, 22: 1567-1581. (in Chinese with English abstract)
doi: 10.13430/j.cnki.jpgr. 20210402001 |
[1] | 孟雨, 田文仲, 温鹏飞, 丁志强, 张学品, 贺利, 段剑钊, 刘万代, 郭天财, 冯伟. 基于不同发育阶段协同的小麦品种抗旱性综合评判[J]. 作物学报, 2023, 49(2): 570-582. |
[2] | 王洋洋, 贺利, 任德超, 段剑钊, 胡新, 刘万代, 郭天财, 王永华, 冯伟. 基于主成分-聚类分析的不同水分冬小麦晚霜冻害评价[J]. 作物学报, 2022, 48(2): 448-462. |
[3] | 柳妍娣, 赵宝平, 张宇, 米俊珍, 武俊英, 刘景辉. 不同基因型燕麦产量差异与叶片生理特性的关系[J]. 作物学报, 2022, 48(11): 2953-2964. |
[4] | 王瑞莉,王刘艳,叶桑,郜欢欢,雷维,吴家怡,袁芳,孟丽姣,唐章林,李加纳,周清元,崔翠. 铝毒胁迫下甘蓝型油菜种子萌发期相关性状的QTL定位[J]. 作物学报, 2020, 46(6): 832-843. |
[5] | 张瑞栋,肖梦颖,徐晓雪,姜冰,邢艺凡,陈小飞,李邦,艾雪莹,周宇飞,黄瑞冬. 高粱种子对萌发温度的响应分析与耐低温萌发能力鉴定[J]. 作物学报, 2020, 46(6): 889-901. |
[6] | 陈二影, 王润丰, 秦岭, 杨延兵, 黎飞飞, 张华文, 王海莲, 刘宾, 孔清华, 管延安. 谷子芽期耐盐碱综合鉴定及评价[J]. 作物学报, 2020, 46(10): 1591-1604. |
[7] | 郜欢欢,叶桑,王倩,王刘艳,王瑞莉,陈柳依,唐章林,李加纳,周清元,崔翠. 甘蓝型油菜种子萌发期耐铝毒特性综合评价及其种质筛选[J]. 作物学报, 2019, 45(9): 1416-1430. |
[8] | 纪龙,申红芳,徐春春,陈中督,方福平. 基于非线性主成分分析的绿色超级稻品种综合评价[J]. 作物学报, 2019, 45(7): 982-992. |
[9] | 崔翠,程闯,赵愉风,郜欢欢,王瑞莉,王刘艳,周清元. 52份豌豆种质萌发期耐铝毒性的综合评价与筛选[J]. 作物学报, 2019, 45(5): 798-805. |
[10] | 张春宵,李淑芳,金峰学,刘文平,李万军,刘杰,李晓辉. 用3种方法定位玉米萌发期和苗期的耐盐和耐碱相关性状QTL[J]. 作物学报, 2019, 45(4): 508-521. |
[11] | 张笑笑,潘映红,任富莉,蒲伟军,王道平,李玉斌,陆平,李桂英,朱莉. 基于多重表型分析的准确评价高粱抗旱性方法的建立[J]. 作物学报, 2019, 45(11): 1735-1745. |
[12] | 王倩,崔翠,叶桑,崔明圣,赵愉风,林呐,唐章林,李加纳,周清元. 甘蓝型油菜种子萌发期耐苯磺隆种质筛选与综合评价[J]. 作物学报, 2018, 44(8): 1169-1184. |
[13] | 胡一波,杨修仕,陆平*,任贵兴*. 中国北部藜麦品质性状的多样性和相关性分析[J]. 作物学报, 2017, 43(03): 464-470. |
[14] | 徐宁,陈冰嬬,王明海,包淑英,王桂芳,郭中校. 绿豆品种资源萌发期耐碱性鉴定[J]. 作物学报, 2017, 43(01): 112-121. |
[15] | 吴奇,周宇飞,高悦,张姣,陈冰嬬,许文娟,黄瑞冬. 不同高粱品种萌发期抗旱性筛选与鉴定[J]. 作物学报, 2016, 42(08): 1233-1246. |
|