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Volume 35 Issue 7
Jul.  2020
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Article Contents
TIAN X, ZHONG C, LI X Y. Effect of Sodium Azide-induced Mutagenesis on Low-temperature Tolerance of Soybean Germplasms [J]. Fujian Journal of Agricultural Sciences,2020,35(7):699−708 doi: 10.19303/j.issn.1008-0384.2020.07.002
Citation: TIAN X, ZHONG C, LI X Y. Effect of Sodium Azide-induced Mutagenesis on Low-temperature Tolerance of Soybean Germplasms [J]. Fujian Journal of Agricultural Sciences,2020,35(7):699−708 doi: 10.19303/j.issn.1008-0384.2020.07.002

Effect of Sodium Azide-induced Mutagenesis on Low-temperature Tolerance of Soybean Germplasms

doi: 10.19303/j.issn.1008-0384.2020.07.002
  • Received Date: 2019-06-19
  • Rev Recd Date: 2020-01-20
  • Publish Date: 2020-07-31
  •   Objective  By immersing buds in varied concentrations of sodium azide solutions to induce mutagenesis in vitro on 3 soybean germplasms, optimized induction conditions were determined based on the effect on the low-temp tolerance of the mutants under stress.  Methods  Young buds of Changshutedawang (CSTDW), Taiwan 292, and Jianhe soybean germplasms were immersed in sodium azide solutions of different concentrations for the in vitro mutagenesis induction. After the optimized induction treatment (immersing buds at 0.8mmol sodium azide/L for 48h), the plants were subjected to low-temp stress at 4 ℃ for 4d prior to the physio-biochemical determinations.  Results  The mortality rate of the treated plants was only slightly higher than the median lethal dose(LD50). Under the low-temp stress, the contents of osmosis regulating substance and photosynthetic pigment in the mutant plants were higher than those in control. At room temperature, the increases on the germplasm was in the order of Taiwan 292>CSTDW>Jianhe, and the SOD and CAT in Taiwan 292 and Jianhe were significantly increased. Under low temperature, the antioxidant capacities differed among the germplasms. Overall, Jianhe was higher than CSTDW and followed by Taiwan 292. Specifically, SOD and POD activity increased in Jianhe, POD increased in CSTDW, and SOD and POD slightly increased and CAT decreased in Taiwan 292. Compared to control, Taiwan 292 had the greatest antioxidant activities showing an increased POD and slightly decreased SOD activity, CSTDW was next in line with no significant change, and Jianhe had the least with decreased activities on both SOD and POD. The MDA contents of CSTDW and Taiwan 292 increased initially followed by a decline, while Jianhe maintained an increasing trend. The overall increased levels ranked Taiwan 292> CSTDW> Jianhe.   Conclusion   The induced mutagenesis increased the osmosis regulating substance and photosynthetic pigment contents in the 3 soybean germplasms. The improvement on low-temp tolerance was higher for CSTDW and Taiwan 292 but lower for the local Jianhe soybean. After mutagenesis and low-temp treatment, Taiwan 292 performed well with a heightened antioxidant capacity. On the other hand, Jianhe changed significantly on the enzymatic activity, the condition was favorable for the plants at room temperature but disadvantageous at low temperatures. In all, the low-temp tolerance of the soybean germplasms generated by sodium azide-induced mutagenesis were found to be Taiwan 292>CSTDW>Jianhe.
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  • [1]
    HARTMAN G L, WEST E D, HERMAN T K. Crops that feed the World 2. Soybean: worldwide production, use, and constraints caused by pathogens and pests [J]. Food Security, 2011, 3(1): 5−17. doi: 10.1007/s12571-010-0108-x
    [2]
    张德荣, 张学君, 孟祥盟, 等. 大豆低温冷害敏感时期试验研究报告 [J]. 吉林农业科学, 1987(1):37−39.

    ZHANG D R, ZHANG X J, MENG X M, et al. Primary study on the key time for soybean plants to be injured by the lower temperature [J]. Journal of Jilin Agricultural Sciences, 1987(1): 37−39.(in Chinese)
    [3]
    张德荣, 张学君. 大豆低温冷害试验研究报告 [J]. 大豆科学, 1988, 7(2):125−132.

    ZHANG D R, ZHANG X J. Study on cool injury of soybean [J]. Soybean Sciences, 1988, 7(2): 125−132.(in Chinese)
    [4]
    GAYNOR L G, LAWN R J, JAMES A T. Agronomic studies on irrigated soybean in southern New South Wales. I. Phenological adaptation of genotypes to sowing date [J]. Crop & Pasture Science, 2011, 62(12): 1056−1066.
    [5]
    YAMAGUCHI N, YAMAZAKI H, OHNISHI S, et al. Method for selection of soybeans tolerant to seed cracking under chilling temperatures [J]. Breeding Science, 2014, 64(1): 103−108. doi: 10.1270/jsbbs.64.103
    [6]
    张东辉, 杨青春, 耿臻, 等. 我国大豆育种的现状分析 [J]. 农村经济与科技, 2017, 28(14):36. doi: 10.3969/j.issn.1007-7103.2017.14.028

    ZHANG D H, YANG Q C, GENG Z, et al. Current situation of soybean breeding in China [J]. Rural Economy and Science-Technology, 2017, 28(14): 36.(in Chinese) doi: 10.3969/j.issn.1007-7103.2017.14.028
    [7]
    钮力亚, 于亮, 付晶, 等. 叠氮化钠在农作物育种中的应用 [J]. 河北农业科学, 2010, 14(12):52−53, 57. doi: 10.3969/j.issn.1088-1631.2010.12.020

    NIU L Y, YU L, FU J, et al. Application of sodium azide in crops breeding [J]. Journal of Hebei Agricultural Sciences, 2010, 14(12): 52−53, 57.(in Chinese) doi: 10.3969/j.issn.1088-1631.2010.12.020
    [8]
    苑平, 吴娟娟, 李先信, 等. 叠氮化钠对纽荷尔脐橙腋芽的半致死浓度、生理影响和诱变效率研究 [J]. 湖南师范大学自然科学学报, 2018, 41(1):30−35.

    YUAN P, WU J J, LI X X, et al. Study on semi-lethal concentration, physiological effects and mutagenic efficiency of sodium azide on axillary buds in newhall navel orange(Citrus sinensis osbeck) [J]. Journal of Natural Science of Hunan Normal University, 2018, 41(1): 30−35.(in Chinese)
    [9]
    SUGIHARA N, HIGASHIGAWA T, ARAMOTO D, et al. Haploid plants carrying a sodium azide-induced mutation (fdr1) produce fertile pollen grains due to first Division restitution (FDR) in maize (Zea mays L.) [J]. Theoretical and Applied Genetics, 2013, 126(12): 2931−2941. doi: 10.1007/s00122-013-2183-9
    [10]
    姜振峰, 刘志华, 李文滨, 等. 叠氮化钠对大豆M1的生物学诱变效应 [J]. 核农学报, 2006, 20(3):208−210. doi: 10.3969/j.issn.1000-8551.2006.03.011

    JIANG Z F, LIU Z H, LI W B, et al. M1 mutagenic effect on soybean induced by NaN3 [J]. Journal of Nuclear Agricultural Sciences, 2006, 20(3): 208−210.(in Chinese) doi: 10.3969/j.issn.1000-8551.2006.03.011
    [11]
    李明飞, 谢彦周, 刘录祥, 等. 叠氮化钠诱变普通小麦陕农33突变体库的构建和初步评估 [J]. 麦类作物学报, 2015, 35(1):22−29. doi: 10.7606/j.issn.1009-1041.2015.01.04

    LI M F, XIE Y Z, LIU L X, et al. Construction and preliminary assessment of a mutant library of common wheat cultivar shaannong 33 mutated with sodium azide [J]. Journal of Triticeae Crops, 2015, 35(1): 22−29.(in Chinese) doi: 10.7606/j.issn.1009-1041.2015.01.04
    [12]
    孔佑涵, 苑平, 吴娟娟, 等. 叠氮化钠处理纽荷尔脐橙腋芽的诱变效应研究 [J]. 分子植物育种, 2016, 14(12):3489−3495.

    KONG Y H, YUAN P, WU J J, et al. Study on the mutagen effect of NaN3 in axillary bud of newhall navel orange (Citrus sinensis osbeck) [J]. Molecular Plant Breeding, 2016, 14(12): 3489−3495.(in Chinese)
    [13]
    韩伟, 魏岳荣, 盛鸥, 等. ‘巴西蕉’离体芽的化学诱变和抗镰刀菌酸材料的筛选 [J]. 核农学报, 2012, 26(9):1237−1243.

    HAN W, WEI Y R, SHENG O, et al. Chemical mutation and screening for tolerance to fusaric acid on shoot tip of Musa AAA Cavendish cv. ‘baxijiao’ [J]. Acta Agriculturae Nucleatae Sinica, 2012, 26(9): 1237−1243.(in Chinese)
    [14]
    李波, 贾秀峰, 高美玲, 等. 诱变苜蓿愈伤组织抗寒性研究 [J]. 草地学报, 2004, 12(2):95−97. doi: 10.11733/j.issn.1007-0435.2004.02.004

    LI B, JIA X F, GAO M L, et al. A research on the cold-resistance of induced alfalfa calluses [J]. Acta Agrestia Sinica, 2004, 12(2): 95−97.(in Chinese) doi: 10.11733/j.issn.1007-0435.2004.02.004
    [15]
    李波, 白庆武, 马兰, 等. 苜蓿抗性变异细胞系的筛选 [J]. 草业科学, 2003, 20(4):5−9.

    LI B, BAI Q W, MA L, et al. The selection of alfalfa resistance variation cells [J]. Pratacultural Science, 2003, 20(4): 5−9.(in Chinese)
    [16]
    钱玉源, 韩轩, 刘祎, 等. 叠氮化钠(NaN3)诱变在作物性状改良中的应用 [J]. 安徽农业科学, 2017, 45(35):136−138, 141. doi: 10.3969/j.issn.0517-6611.2017.35.041

    QIAN Y Y, HAN X, LIU Y, et al. Application of sodium azide (NaN3) mutation in crop character improvement [J]. Journal of Anhui Agricultural Sciences, 2017, 45(35): 136−138, 141.(in Chinese) doi: 10.3969/j.issn.0517-6611.2017.35.041
    [17]
    李合生. 植物生理生化实验原理和技术[M]. 北京: 高等教育出版社, 2000.
    [18]
    高兰英, 马庆. 诱发突变技术在小麦育种研究中的应用 [J]. 山西农业科学, 2009, 37(6):7−12. doi: 10.3969/j.issn.1002-2481.2009.06.002

    GAO L Y, MA Q. Mutants induction technology and its application in wheat breeding improvement [J]. Journal of Shanxi Agricultural Sciences, 2009, 37(6): 7−12.(in Chinese) doi: 10.3969/j.issn.1002-2481.2009.06.002
    [19]
    徐冠仁. 植物诱变育种学 [M]. 北京: 中国农业出版社, 1996.
    [20]
    BHAGWAT B, DUNCAN E. Mutation breeding of banana cv. Highgate (Musa spp., AAA Group) for tolerance to Fusarium oxysporum f. sp. cubense using chemical mutagens [J]. Scientia Horticulturae, 1998, 73(1): 11−22. doi: 10.1016/S0304-4238(97)00141-6
    [21]
    喻晓. 大百合无性系突变体诱导及其鉴定研究 [D]. 雅安: 四川农业大学, 2008.

    YU X. The study on induction and identification of mutations in cloned line of Cardiocinum giganteum [D]. Yaan, China: Sichuan Agricultural University, 2008. (in Chinese)
    [22]
    马玉涵, 赵岩, 张强, 等. 叠氮化钠诱变对离体蝴蝶兰类原球茎生理的影响 [J]. 核农学报, 2010, 24(2):411−414, 301. doi: 10.11869/hnxb.2010.02.0411

    MA Y H, ZHAO Y, ZHANG Q, et al. Effect of azide sodium in mutagenesis on physiological traits of Phalaenosis protocorm-like body in vitro [J]. Journal of Nuclear Agricul Turae Sciences, 2010, 24(2): 411−414, 301.(in Chinese) doi: 10.11869/hnxb.2010.02.0411
    [23]
    温日宇, 刘建霞, 宋亚静, 等. 叠氮化钠对绿豆种子和幼苗生长的诱变效应 [J]. 山西农业科学, 2017, 45(12):1933−1936. doi: 10.3969/j.issn.1002-2481.2017.12.09

    WEN R Y, LIU J X, SONG Y J, et al. Mutagenic effects of sodium azide on the growth of mung bean seeds and seedlings [J]. Journal of Shanxi Agricultural Sciences, 2017, 45(12): 1933−1936.(in Chinese) doi: 10.3969/j.issn.1002-2481.2017.12.09
    [24]
    张兰. 苹果砧木组培苗耐盐诱变及筛选技术研究 [D]. 保定: 河北农业大学, 2002.

    ZHANG L. Studies on screening techniques for salt tolerance evaluation of induced mutants of apple stock in vitro [D]. Baoding, China: Hebei Agricultural University, 2002. (in Chinese)
    [25]
    吕伯钦, 曾昭慧, 邓海, 等. 叠氮化钠的毒性研究 [J]. 卫生研究, 1992, 21(5):228−231, 278-279.

    LV B Q, ZENG Z H, DENG H, et al. Studies on toxicity of sodium azide [J]. Journal of Hygiene Research, 1992, 21(5): 228−231, 278-279.(in Chinese)
    [26]
    KIM T, JUNG Y, NA B, et al. Molecular cloning and expression of Cu/Zn-containing superoxide dismutase from Fasciola hepatica [J]. Infection and Immunity, 2000, 68(7): 3941−3948. doi: 10.1128/IAI.68.7.3941-3948.2000
    [27]
    李波, 邬婷婷. NaN3诱变和盐碱胁迫对苜蓿愈伤组织生长和生理特性的影响 [J]. 干旱地区农业研究, 2019, 37(2):130−135, 143. doi: 10.7606/j.issn.1000-7601.2019.02.19

    LI B, WU T T. Effects of NaN3 mutagenesis and saline-alkali stress on growth and physiological characteristics of alfalfa callus [J]. Agricultural Research in the Arid Areas, 2019, 37(2): 130−135, 143.(in Chinese) doi: 10.7606/j.issn.1000-7601.2019.02.19
    [28]
    刘建霞, 侍亚敏, 温日宇, 等. 晋藜1号种子及幼苗对叠氮化钠诱变的响应 [J]. 种子, 2018, 37(1):80−83.

    LIU J X, SHI Y M, WEN R Y, et al. Response of sodium azide mutagenesis on seeds and seedlings of Jinli No.1 quinoa [J]. Seed, 2018, 37(1): 80−83.(in Chinese)
    [29]
    宇克莉, 邹婧, 邹金华. 镉胁迫对玉米幼苗抗氧化酶系统及矿质元素吸收的影响 [J]. 农业环境科学学报, 2010, 29(6):1050−1056.

    YU K L, ZOU J, ZOU J H. Effects of cadmium stress on antioxidant enzyme system and absorption of mineral elements in maize seedlings [J]. Journal of Agro-Environment Science, 2010, 29(6): 1050−1056.(in Chinese)
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