Scientia Agricultura Sinica ›› 2025, Vol. 58 ›› Issue (10): 1896-1907.doi: 10.3864/j.issn.0578-1752.2025.10.003

• CROP GENETICS & BREEDING·GERMPLASM RESOURCES·MOLECULAR GENETICS • Previous Articles     Next Articles

Identification and Evaluation of Drought Resistance for 111 Germplasm Resources of Alfalfa During Germination Stage

CHEN CaiJin1,2,3(), MA Lin3, BAO MingFang1,2, ZHANG GuoHui2, JIANG QingXue3, YANG TianHui4, WANG Chuan4, WANG XiaoChun4, GAO Ting4, WANG XueMin3(), LIU WenHui1()   

  1. 1 Academy of Animal Science and Veterinary Medicine of Qinghai University, Xining 810016
    2 Guyuan Branch, Ningxia Academy of Agricultural and Forestry Sciences, Guyuan 756000, Ningxia
    3 Institute of Animal Scince, Chinese Academy of Agricultural Sciences, Beijing 100193
    4 Institute of Animal Science, Ningxia Academy of Agricultural and Forestry Sciences, Yinchuan 750002
  • Received:2024-11-13 Accepted:2024-12-23 Online:2025-05-16 Published:2025-05-21
  • Contact: WANG XueMin, LIU WenHui

Abstract:

【Objective】 To identify and evaluate the drought resistance of alfalfa germplasm resources, screen out different drought-resistant alfalfa germplasm materials, and lay a foundation for further development of drought-resistant alfalfa resources creation and breeding utilization. 【Method】 In this study, A total of 111 alfalfa germplasm resources were used as experimental materials, and drought stress conditions were simulated using a 13% PEG-6000 solution. Two treatments were established: drought stress (13% PEG-6000) and a control (distilled water). Drought tolerance at germination stage were comprehensively evaluated by the comprehensive drought resistance coefficient (CDC value) and drought resistance coefficient (D value) using nine indicators, including germination potential, germination rate, germination index, vitality index, promptness index, root length, bud length, fresh weight and dry weight. Meanwhile, single drought tolerance coefficients, correlation analysis, principal component analysis and stepwise regression analysis were conducted to identify the key indicators influencing drought resistance during germination. 【Result】 Analysis of the single drought tolerance coefficients for the nine indicators showed that vitality index, fresh weight, and promptness index were key indicators for screening drought resistance at the germination stage. The single drought tolerance coefficients of the indicators had the highest correlation among germination index and promptness index, germination rate, vitality index, with coefficients of 0.9838, 0.9495 and 0.9338, respectively. Principal component analysis transformed the nine indicators into three principal components with a cumulative contribution of 87.287%. Drought resistance of alfalfa at germination stage was identified using two methods with CDC value and D value, and it was found that the evaluation results of the two methods were highly consistent; however, the D value method was more comprehensive, reliable, and accurate, as it used the weighting coefficients to reflect the degree of influence of each indicator to the overall drought resistance of the varieties. Based on the D value, the 111 alfalfa germplasm resources were clustered into five categories: ClassⅠ(strongest drought resistance, 1 accession), Class Ⅱ (strong drought resistance, 5 accessions), Class Ⅲ (moderate drought resistance, 55 accessions), Class Ⅳ (weak drought resistance, 37 accessions), and Class Ⅴ (drought-sensitive, 13 accessions). 【Conclusion】 The D value evaluation method was found to be the most reliable for assessing drought resistance in alfalfa during the germination stage; The study identified AG37 as the strongest drought resistance germplasm, along with five strong drought resistance accessions, including AG19, AG5, AG13 and other. Vitality index and promptness index were determined to be the most suitable indicators for evaluating drought resistance in alfalfa at the germination stage.

Key words: Medicago sativa L., germination stage, germplasm resources, drought resistance, comprehensive assessment

Table 1

Descriptive statistics for DC values of indicator"

指标 Index 范围 Range 均值 Mean 均方 Mean square 变异系数 CV (%)
相对发芽势RGE 0.00-2.20 0.72 0.2914 40.22
相对发芽率RGR 0.42-2.50 0.93 0.2621 28.24
相对发芽指数RGI 0.25-2.38 0.67 0.2580 38.38
相对活力指数RVI 0.13-1.57 0.43 0.1778 41.08
相对萌发指数RPI 0.13-2.40 0.65 0.2667 41.19
相对根长RRL 0.72-2.01 1.14 0.2510 22.09
相对芽长RBL 0.48-0.90 0.73 0.0751 10.28
相对鲜重RFW 0.45-1.43 0.64 0.1120 17.44
相对干重RDW 0.71-2.65 1.13 0.2533 22.51

Fig.1

Correlation analysis of drought tolerance coefficients of alfalfa indicators * and ** indicate that each index have significant correlation at P≤0.05, P≤0.01 levels, respectively"

Table 2

KMO test and Bartlett spherical test"

Kaiser-Meyer-Olkin度量值 Kaiser-Meyer-Olkin measurement value Bartlett球形度检验 Bartlett’s sphericity test
0.717 近似卡方Approximate Chi-squared value 1461.741
自由度Degrees freedom 36
显著性Significance 0.000

Table 3

Eigenvectors and contribution values of nine indexes principal components"

指标
Index
主成分Principal component
第1主成分PC1 第2主成分PC2 第3主成分PC3
相对发芽势RGE 0.857 -0.142 0.258
相对发芽率RGR 0.936 -0.058 -0.182
相对发芽指数RGI 0.984 -0.070 -0.095
相对活力指数RVI 0.962 0.203 0.077
相对萌发指数RPI 0.978 -0.108 0.011
相对根长RRL 0.659 0.042 -0.430
相对芽长RBL 0.218 -0.265 0.836
相对鲜重RFW 0.156 0.832 0.427
相对干重RDW 0.061 0.919 -0.121
特征值Eigenvalues 4.969 1.691 1.195
贡献率Contribution rate (%) 55.216 18.789 13.282
累计贡献率Cumulative contribution (%) 55.216 74.005 87.287

Table 4

Top 10 alfalfa germplasm resources in terms of CDC values and D values"

编号 Number CDC值 CDC values 编号 Number D D values
AG37 1.6950 AG37 0.6986
AG19 1.2631 AG19 0.4767
AG5 1.1567 AG5 0.4696
AG13 1.1415 AG13 0.4415
AG23 1.0490 AG26 0.4225
AG16 1.0418 AG111 0.4182
AG14 1.0338 AG10 0.3969
AG15 0.9978 AG8 0.3933
AG10 0.9768 AG16 0.3922
AG11 0.9758 AG88 0.3733

Fig. 2

Cluster analysis of alfalfa germplasm resources"

[1]
MA Q L, XU X, WANG W J, ZHAO L J, MA D M, XIE Y Z. Comparative analysis of alfalfa (Medicago sativa L.) seedling transcriptomes reveals genotype-specific drought tolerance mechanisms. Plant Physiology and Biochemistry, 2021, 166: 203-214.
[2]
QIU Z B, YUAN M M, HE Y Y, LI Y F, ZHANG L. Physiological and transcriptome analysis of He-Ne laser pretreated wheat seedlings in response to drought stress. Scientific Reports, 2017, 7(1): 6108.

doi: 10.1038/s41598-017-06518-z pmid: 28733678
[3]
HAN Y S, YANG H, WU M Y, YI H L. Enhanced drought tolerance of foxtail millet seedlings by sulfur dioxide fumigation. Ecotoxicology and Environmental Safety, 2019, 178: 9-16.

doi: S0147-6513(19)30419-1 pmid: 30980964
[4]
ZHANG T J, KESOJU S, GREENE S L, FRANSEN S, HU J G, YU L X. Genetic diversity and phenotypic variation for drought resistance in alfalfa (Medicago sativa L.) germplasm collected for drought tolerance. Genetic Resources and Crop Evolution, 2018, 65(2): 471-484.
[5]
董舒超, 洪骏, 凌嘉怡, 谢紫欣, 张胜军, 赵丽萍, 宋刘霞, 王银磊, 赵统敏. 番茄抗旱性的全基因组关联分析. 园艺学报, 2024, 51(2): 229-238.
DONG S C, HONG J, LING J Y, XIE Z X, ZHANG S J, ZHAO L P, SONG L X, WANG Y L, ZHAO T M. Genome-wide association studies of drought tolerance in tomato. Acta Horticulturae Sinica, 2024, 51(2): 229-238. (in Chinese)

doi: 10.16420/j.issn.0513-353x.2023-0694
[6]
ERICE G, LOUAHLIA S, IRIGOYEN J J, SANCHEZ-DIAZ M, AVICE J C. Biomass partitioning, morphology and water status of four alfalfa genotypes submitted to progressive drought and subsequent recovery. Journal of Plant Physiology, 2010, 167(2): 114-120.

doi: 10.1016/j.jplph.2009.07.016 pmid: 19744745
[7]
MAGHSOODI M, RAZMJOO J, GHEYSARI M. Application of biochemical markers for the assessment of drought tolerance in alfalfa (Medicago sativa L.) cultivars. Grassland Science, 2017, 63(1): 3-14.
[8]
张翠梅, 师尚礼, 吴芳. 干旱胁迫对不同抗旱性苜蓿品种根系生长及生理特性影响. 中国农业科学, 2018, 51(5): 868-882. doi: 10.3864/j.issn.0578-1752.2018.05.006.
ZHANG C M, SHI S L, WU F. Effects of drought stress on root and physiological responses of different drought-tolerant alfalfa varieties. Scientia Agricultura Sinica, 2018, 51(5): 868-882. doi: 10.3864/j.issn.0578-1752.2018.05.006. (in Chinese)
[9]
BOYER J S. Plant productivity and environment. Science, 1982, 218(4571): 443-448.

doi: 10.1126/science.218.4571.443 pmid: 17808529
[10]
BASBAG M, AYDIN A, SAKIROGLU M. Evaluating agronomic performance and investigating molecular structure of drought and heat tolerant wild alfalfa (Medicago sativa L.) collection from the southeastern Turkey. Biochemical Genetics, 2017, 55(1): 63-76.
[11]
摆福红, 王凯彬, 马小红, 王晓敏, 程国新, 郭猛, 高艳明, 李建设, 伏小刚. 不同萝卜品种种子萌发期抗旱性综合评价及抗旱指标筛选. 西北农林科技大学学报(自然科学版), 2024, 52(8): 70-81, 90.
BAI F H, WANG K B, MA X H, WANG X M, CHENG G X, GUO M, GAO Y M, LI J S, FU X G. Comprehensive evaluation of drought resistance of different radish varieties at seed germination stage and screening of drought resistance indexes. Journal of Northwest A & F University (Natural Science Edition), 2024, 52(8): 70-81, 90. (in Chinese)
[12]
王志恒, 黄思麒, 李成虎, 周吴艳, 胡韩, 徐中伟, 马维亮, 魏玉清. 13种藜麦萌发期抗逆性综合评价. 西北农林科技大学学报(自然科学版), 2021, 49(1): 25-36.
WANG Z H, HUANG S Q, LI C H, ZHOU W Y, HU H, XU Z W, MA W L, WEI Y Q. Comprehensive evaluation of stress resistance during germination of 13 quinoa species. Journal of Northwest A&F University (Natural Science Edition), 2021, 49(1): 25-36. (in Chinese)
[13]
OBANOR F O, WALTER M, JONES E E, JASPERS M V. Effect of temperature, relative humidity, leaf wetness and leaf age on Spilocaea oleagina conidium germination on olive leaves. European Journal of Plant Pathology, 2008, 120(3): 211-222.
[14]
GUO Y, WANG R, TONG Z J, LIU X P, ZHANG J Q. Dynamic evaluation and regionalization of maize drought vulnerability in the Midwest of Jilin Province. Sustainability, 2019, 11(15): 4234.
[15]
曹敏, 张瑞, 钟婷, 虞道耿, 陈银华, 骆凯. 几种环境因子对崖州硬皮豆种子萌发的影响. 草业科学, 2019, 36(12): 3085-3092.
CAO M, ZHANG R, ZHONG T, YU D G, CHEN Y H, LUO K. Effects of several environmental factors on seed germination of Macrotyloma uniflorum ‘Yazhou’. Pratacultural Science, 2019, 36(12): 3085-3092. (in Chinese)
[16]
王亚楠, 赵思明, 曹兵. PEG-6000模拟干旱胁迫下10种草本植物萌发期抗旱性比较. 草地学报, 2020, 28(4): 983-989.

doi: 10.11733/j.issn.1007-0435.2020.04.015
WANG Y N, ZHAO S M, CAO B. Study on drought resistance of ten herbaceous plants under PEG-6000 simulated drought stress. Acta Agrestia Sinica, 2020, 28(4): 983-989. (in Chinese)
[17]
周洁仪, 赵文武, 杨杨, 谢文辉, 赵丽丽. 2种狼尾草属牧草萌发期和苗期抗旱性综合评价. 中国草地学报, 2023, 45(8): 50-59.
ZHOU J Y, ZHAO W W, YANG Y, XIE W H, ZHAO L L. Comprehensive evaluation of drought resistance of two different Pennisetum species during seed germination and seedling growth stages. Chinese Journal of Grassland, 2023, 45(8): 50-59. (in Chinese)
[18]
罗冬, 王明玖, 李元恒, 陈海军, 杨勇. 四种豆科牧草种子萌发和幼苗生长对干旱的响应及抗旱性评价. 生态环境学报, 2015, 24(2): 224-230.

doi: 10.16258/j.cnki.1674-5906.2015.02.007
LUO D, WANG M J, LI Y H, CHEN H J, YANG Y. Four legumes response to simulated drought in the stages of seed germination and seedling growth and drought resistance assessment. Ecology and Environmental Sciences, 2015, 24(2): 224-230. (in Chinese)
[19]
张艳福, 姚卫杰, 郭其强, 边巴多吉, 李慧娥. 干旱胁迫对砂生槐种子萌发和幼苗生长的影响. 西北农林科技大学学报(自然科学版), 2015, 43(10): 45-56.
ZHANG Y F, YAO W J, GUO Q Q, BIANBA D J, LI H E. Effect of drought stress on seed germination and seedling growth of Sophora moorcroftiana, Journal of Northwest A & F University (Natural Science Edition), 2015, 43(10): 45-56. (in Chinese)
[20]
YU A L, ZHAO J F, WANG Z H, CHENG K, ZHANG P, TIAN G, LIU X, GUO E H, DU Y W, WANG Y W. Transcriptome and metabolite analysis reveal the drought tolerance of foxtail millet significantly correlated with phenylpropanoids-related pathways during germination process under PEG stress. BMC Plant Biology, 2020, 20(1): 274.

doi: 10.1186/s12870-020-02483-4 pmid: 32539796
[21]
王焱. 紫花苜蓿种质资源表型性状鉴定及抗旱性评价[D]. 银川: 宁夏大学, 2018.
WANG Y. Identification of phenotypic traits and evaluation of drought resistance of alfalfa germplasm resources[D]. Yinchuan: Ningxia University, 2018. (in Chinese)
[22]
高立杰, 李运起, 张洪杰, 敖特根白音. 14种紫花苜蓿萌发期抗旱性比较试验. 黑龙江畜牧兽医, 2017(15): 6-11, 283.
GAO L J, LI Y Q, ZHANG H J, AO T. Drought resistance comparison test for fourteen varieties of Medicago sativa in germination period. Heilongjiang Animal Science and Veterinary Medicine, 2017(15): 6-11, 283. (in Chinese)
[23]
朱志明, 杨晓婉, 李健荣, 周兴隆, 郭军成. 干旱胁迫对不同玉米自交系种子萌发的影响及种质的抗旱性比较. 宁夏大学学报(自然科学版), 2019, 40(4): 375-382, 387.
ZHU Z M, YANG X W, LI J R, ZHOU X L, GUO J C. Effects of drought stress on seed germination of different maize inbred lines and comparison of drought resistance of germplasm. Journal of Ningxia University (Natural Science Edition), 2019, 40(4): 375-382, 387. (in Chinese)
[24]
郭效龙, 宋希云, 裴玉贺, 郭新梅. 玉米自交系萌发期和苗期抗旱性指标的筛选. 植物生理学报, 2018, 54(11): 1719-1726.
GUO X L, SONG X Y, PEI Y H, GUO X M. Screening of drought resistance indexes of maize inbred lines. Plant Physiology Journal, 2018, 54(11): 1719-1726. (in Chinese)
[25]
洪越, 徐文伊, 王嘉杰, 刘瑞, 王婷, 晏迪, 连艺佳, 岳焕芳, 王晔, 段留生, 李润枝. 不同玉米品种萌发期抗旱性综合评价. 北京农学院学报, 2023, 38(3): 1-7.
HONG Y, XU W Y, WANG J J, LIU R, WANG T, YAN D, LIAN Y J, YUE H F, WANG Y, DUAN L S, LI R Z. Comprehensive evaluation of drought tolerance of different maize varieties at germination stage. Journal of Beijing University of Agriculture, 2023, 38(3): 1-7. (in Chinese)
[26]
杨子光, 张灿军, 冀天会, 郭军伟, 孟丽梅, 张珂. 小麦抗旱性鉴定方法及评价指标研究Ⅴ苗期抗旱指标的比较研究. 中国农学通报, 2008, 24(1): 156-159.
YANG Z G, ZHANG C J, JI T H, GUO J W, MENG L M, ZHANG K. Study on resistance drought identify method and evaluation index of wheat Ⅴ the comparative study on resistance drought index of wheat in seedling. Chinese Agricultural Science Bulletin, 2008, 24(1): 156-159. (in Chinese)
[27]
黄爱花, 邹成林, 苏义成, 翟瑞宁, 莫润秀, 黄开健, 谭华. 玉米种子萌发特性对不同浓度PEG-6000的响应. 西南农业学报, 2021, 34(12): 2628-2633.
HUANG A H, ZOU C L, SU Y C, ZHAI R N, MO R X, HUANG K J, TAN H. Response of maize seed germination characteristics to different concentrations PEG-6000. Southwest China Journal of Agricultural Sciences, 2021, 34(12): 2628-2633. (in Chinese)
[28]
TYSHCHENKO O, TYSHCHENKO A, PILIARSKA O, KUTS H, LYKHOVYD P. Evaluation of drought tolerance in alfalfa (Medicago sativa) genotypes in the conditions of osmotic stress. AgroLife Scientific Journal, 2020, 9(2): 352-358.
[29]
刘佳月. 紫花苜蓿与黄花苜蓿抗旱转录组学研究[D]. 北京: 中国农业科学院, 2018.
LIU J Y. Study on drought-resistant transcriptomics of alfalfa and Medicago sativa[D]. Beijing: Chinese Academy of Agricultural Sciences, 2018. (in Chinese)
[30]
MA Q L, KANG J M, LONG R C, ZHANG T J, XIONG J B, ZHANG K, WANG T H, YANG Q C, SUN Y. Comparative proteomic analysis of alfalfa revealed new salt and drought stress-related factors involved in seed germination. Molecular Biology Reports, 2017, 44(3): 261-272.

doi: 10.1007/s11033-017-4104-5 pmid: 28597411
[31]
WANG W B, KIM Y H, LEE H S, KIM K Y, DENG X P, KWAK S S. Analysis of antioxidant enzyme activity during germination of alfalfa under salt and drought stresses. Plant Physiology and Biochemistry, 2009, 47(7): 570-577.
[32]
TILAKI G D, BEHTARI B, BEHTARI B. Effect of salt and water stress on the germination of alfalfa (Medicago sativa L.) seed. Environmental Science, 2009: 1-7.
[33]
杨姝, 杜桂娟, 马凤江. 27份紫花苜蓿种质资源萌发期抗旱性评价. 辽宁农业科学, 2019(3): 7-12.
YANG S, DU G J, MA F J. Evaluation of drought resistance for 27 alfalfa germplasm resources at seed germination stage. Liaoning Agricultural Sciences, 2019(3): 7-12. (in Chinese)
[34]
王赞, 李源, 吴欣明, 高洪文, 孙桂芝. PEG渗透胁迫下鸭茅种子萌发特性及抗旱性鉴定. 中国草地学报, 2008, 30(1): 50-55.
WANG Z, LI Y, WU X M, GAO H W, SUN G Z. Study on germination characteristics and drought-resistance evaluation of Dactylis glomerata L. under osmotic stress. Chinese Journal of Grassland, 2008, 30(1): 50-55. (in Chinese)
[35]
刘佳月, 杜建材, 王照兰, 崔乐乐, 赵彦慧. 紫花苜蓿和黄花苜蓿种子萌发期对PEG模拟干旱胁迫的响应. 中国草地学报, 2018, 40(3): 27-34, 61.
LIU J Y, DU J C, WANG Z L, CUI L L, ZHAO Y H. Response of Medicago sativa L. and M. falcata L. to pegdrought stress in seed germination period. Chinese Journal of Grassland, 2018, 40(3): 27-34, 61. (in Chinese)
[36]
王江银, 徐婉宁, 苏洋, 张博. PEG-6000模拟干旱胁迫下5份苜蓿材料萌发期抗旱性鉴定与比较. 畜牧与饲料科学, 2023, 44(2): 81-91.
WANG J Y, XU W N, SU Y, ZHANG B. Characterization and comparison of drought resistance of five alfalfa varieties during germination period under PEG-6000 simulated drought stress. Animal Husbandry and Feed Science, 2023, 44(2): 81-91. (in Chinese)
[37]
惠雅佞, 罗永忠. 4个紫花苜蓿品种萌发期抗旱性比较. 草原与草坪, 2021, 41(6): 111-118.
HUI Y N, LUO Y Z. Comparison of drought resistance among four alfalfa cultivars during germination. Grassland and Turf, 2021, 41(6): 111-118. (in Chinese)
[38]
张辰昊, 热孜亚·艾力, 晁跃辉, 申玉华, 张铁军. 21份杂花苜蓿种质萌发期抗旱性评价. 中国草地学报, 2022, 44(3): 58-65.
ZHANG C H, AILI R Z Y, CHAO Y H, SHEN Y H, ZHANG T J. Evaluation of drought resistance of 21 variegated alfalfa cultivars during germination. Chinese Journal of Grassland, 2022, 44(3): 58-65. (in Chinese)
[39]
高志昊, 李雪颖, 兰剑, 胡海英. 干旱胁迫条件下不同饲用燕麦品种种子萌发指标比较与评价. 草地学报, 2022, 30(5): 1210-1218.

doi: 10.11733/j.issn.1007-0435.2022.05.023
GAO Z H, LI X Y, LAN J, HU H Y. Comparison and evaluation of seed germination indexes of different forage-type oat cultivars under PEG-6000 stress. Acta Agrestia Sinica, 2022, 30(5): 1210-1218. (in Chinese)
[40]
樊瑀, 董淑琦, 原向阳, 杨雪萍, 姚翔, 郭平毅, 杨雪芳. 谷子种质资源萌发期抗旱性综合评价及抗旱指标筛选. 中国农业大学学报, 2022, 27(6): 42-54.
FAN Y, DONG S Q, YUAN X Y, YANG X P, YAO X, GUO P Y, YANG X F. Comprehensive evaluation of drought resistance of foxtail millet germplasm resources during germination period and drought resistance index screening. Journal of China Agricultural University, 2022, 27(6): 42-54. (in Chinese)
[41]
罗俊杰, 欧巧明, 叶春雷, 王方, 王镛臻, 陈玉梁. 重要胡麻栽培品种的抗旱性综合评价及指标筛选. 作物学报, 2014, 40(7): 1259-1273.
LUO J J, OU Q M, YE C L, WANG F, WANG Y Z, CHEN Y L. Comprehensive valuation of drought resistance and screening of indices of important flax cultivars. Acta Agronomica Sinica, 2014, 40(7): 1259-1273. (in Chinese)
[42]
朱丽丽, 张发玉, 安宁, 陈志国. 116份藜麦种质资源萌发期抗旱性综合评价. 干旱地区农业研究, 2024, 42(1): 23-31.
ZHU L L, ZHANG F Y, AN N, CHEN Z G. Comprehensive evaluation of drought resistance of 116 quinoa germplasm resources during germination. Agricultural Research in the Arid Areas, 2024, 42(1): 23-31. (in Chinese)
[43]
陈碧云, 许鲲, 高桂珍, 闫贵欣, 李俊, 伍晓明. 中国白菜型油菜种质表型多样性分析. 中国油料作物学报, 2012, 34(1): 25-32.
CHEN B Y, XU K, GAO G Z, YAN G X, LI J, WU X M. Analysis of phenotypic diversity in Chinese collection of Brassica rapa L. Chinese Journal of Oil Crop Sciences, 2012, 34(1): 25-32. (in Chinese)
[44]
王倩, 董孔军, 薛亚鹏, 刘少雄, 王若楠, 杨佳琪, 陆平, 王瑞云, 杨天育, 刘敏轩. 糜子核心种质成株期抗旱性鉴定评价与抗旱种质筛选. 中国农业科学, 2023, 56(21): 4163-4174. doi: 10.3864/j.issn.0578-1752.2023.21.003.
WANG Q, DONG K J, XUE Y P, LIU S X, WANG R N, YANG J Q, LU P, WANG R Y, YANG T Y, LIU M X. Identification and evaluation of drought tolerance and screening of drought-tolerant germplasm for core germplasms in proso millet at adult stage. Scientia Agricultura Sinica, 2023, 56(21): 4163-4174. doi: 10.3864/j.issn.0578-1752.2023.21.003. (in Chinese)
[45]
任毅, 颜安, 张芳, 夏先春, 谢磊, 耿洪伟. 国内外301份小麦品种(系)种子萌发期抗旱性鉴定及评价. 干旱地区农业研究, 2019, 37(3): 1-14.
REN Y, YAN A, ZHANG F, XIA X C, XIE L, GENG H W. Identification and evaluation of drought tolerance of 301 wheat varieties (lines) at germination stage. Agricultural Research in the Arid Areas, 2019, 37(3): 1-14. (in Chinese)
[46]
汪灿, 周棱波, 张国兵, 张立异, 徐燕, 高旭, 姜讷, 邵明波. 薏苡种质资源萌发期抗旱性鉴定及抗旱指标筛选. 植物遗传资源学报, 2017, 18(5): 846-859.

doi: 10.13430/j.cnki.jpgr.2017.05.006
WANG C, ZHOU L B, ZHANG G B, ZHANG L Y, XU Y, GAO X, JIANG N, SHAO M B. Identification and indices screening of drought resistance in Job’s tears germplasm resources at germination stage. Journal of Plant Genetic Resources, 2017, 18(5): 846-859. (in Chinese)

doi: 10.13430/j.cnki.jpgr.2017.05.006
[47]
白金顺, 王雪翠, 王艳秋. 箭筈豌豆种质资源萌发期抗旱指标筛选及抗旱性评价. 植物营养与肥料学报, 2020, 26(12): 2253-2263.
BAI J S, WANG X C, WANG Y Q. Screening of drought-resistance index and drought-resistance evaluation of common vetch (Vicia sativa L.) germplasms at germination stage. Plant Nutrition and Fertilizer Science, 2020, 26(12): 2253-2263. (in Chinese)
[48]
李欣勇, 张靖雪, 王文强, 盛伟, 虞道耿. 9种莎草科植物种子萌发期抗旱性评价. 草业科学, 2022, 39(6): 1208-1216.
LI X Y, ZHANG J X, WANG W Q, SHENG W, YU D G. Evaluation of drought resistance of nine Cyperaceae species seeds during germination. Pratacultural Science, 2022, 39(6): 1208-1216. (in Chinese)
[49]
郝俊峰, 张玉霞, 贾玉山, 格根图, 田永雷, 李宇宇. PEG-6000胁迫下苜蓿萌发期抗旱性鉴定与评价. 西北农林科技大学学报(自然科学版), 2020, 48(11): 23-32.
HAO J F, ZHANG Y X, JIA Y S, GE G T, TIAN Y L, LI Y Y. Identification and evaluation of drought resistance of alfalfa at germination stage under PEG-6000 stress. Journal of Northwest A & F University (Natural Science Edition), 2020, 48(11): 23-32. (in Chinese)
[50]
安欣慧, 陈桂顺, 鞠晓影, 赵勇, 张树华, 杨学举. 不同小麦品种种子萌发期的抗旱性分析. 江苏农业科学, 2017, 45(14): 54-58.
AN X H, CHEN G S, JU X Y, ZHAO Y, ZHANG S H, YANG X J. Analysis on drought resistance of different wheat varieties at germination stage. Jiangsu Agricultural Sciences, 2017, 45(14): 54-58. (in Chinese)
[51]
王永刚, 张胜军, 刘亚丽, 樊艳星, 郭彩琴, 马艳明. 新疆冬小麦品种资源萌发期耐旱性鉴定与筛选. 新疆农业科学, 2021, 58(11): 2024-2034.

doi: 10.6048/j.issn.1001-4330.2021.11.007
WANG Y G, ZHANG S J, LIU Y L, FAN Y X, GUO C Q, MA Y M. Identification and screening of drought tolerance in winter wheat cultivars in Xinjiang during germination period. Xinjiang Agricultural Sciences, 2021, 58(11): 2024-2034. (in Chinese)

doi: 10.6048/j.issn.1001-4330.2021.11.007
[52]
王艺陶, 周宇飞, 李丰先, 依兵, 白薇, 闫彤, 许文娟, 高明超, 黄瑞冬. 基于主成分和SOM聚类分析的高粱品种萌发期抗旱性鉴定与分类. 作物学报, 2014, 40(1): 110-121.
WANG Y T, ZHOU Y F, LI F X, YI B, BAI W, YAN T, XU W J, GAO M C, HUANG R D. Identification and classification of Sorghum cultivars for drought resistance during germination stage based on principal components analysis and self organizing map cluster analysis. Acta Agronomica Sinica, 2014, 40(1): 110-121. (in Chinese)
[1] LÜ Tao, SUN GuoQing, GUO DongCai, CHEN QuanJia, CAI YongSheng, FAN BiaoXing, QU YanYing, ZHENG Kai. Development and Effectiveness Evaluation of InDel Molecular Markers Closely Linked to Fiber Strength QTL in Gossypium barbadense [J]. Scientia Agricultura Sinica, 2025, 58(9): 1684-1701.
[2] CHEN YongXian, CHEN RuiJiang, DU YiZhi, ZHU JunJie, CHEN WanXia, ZHAO ZiHan, WANG JiChun, DU Kang, ZHANG Kai. Screening and Identification of Drought-Tolerant Sweet Potato Germplasm Resources [J]. Scientia Agricultura Sinica, 2025, 58(2): 214-237.
[3] ZHANG YuZhou, WANG YiZhao, GAO RuXi, LIU YiFan. Research Progress on Root System Architecture and Drought Resistance in Wheat [J]. Scientia Agricultura Sinica, 2024, 57(9): 1633-1645.
[4] ZHOU Quan, LU QiuMei, ZHAO ZhangChen, WU ChenRan, FU XiaoGe, ZHAO YuJiao, HAN Yong, LIN HuaiLong, CHEN WeiLin, MOU LiMing, LI XingMao, WANG ChangHai, HU YinGang, CHEN Liang. Identification of Drought Resistance of 244 Spring Wheat Varieties at Seedling Stage [J]. Scientia Agricultura Sinica, 2024, 57(9): 1646-1657.
[5] YAN Wen, JIN XiuLiang, LI Long, XU ZiHan, SU Yue, ZHANG YueQiang, JING RuiLian, MAO XinGuo, SUN DaiZhen. Drought Resistance Evaluation of Synthetic Wheat at Grain Filling Using UAV-Based Multi-Source Imagery Data [J]. Scientia Agricultura Sinica, 2024, 57(9): 1674-1686.
[6] NI ShuHui, SHI DongMei, PAN LiDong, YE Qing, WU JunHao. Response of Cultivated-Layer Water-Holding and Drought Resistance Performance and Productivity to Erosion Degree in Purple Soil Sloping Farmland [J]. Scientia Agricultura Sinica, 2024, 57(7): 1350-1362.
[7] ZHU ChunTao, REN DanDan, LIU ZhengCen, LIU ChangChuang, LIU RuiQi, ZHENG HongJian, HU ErLiang, LIN HaiJian, LI JingWei, LU YanLi, WANG QingJun. Combining Ability Analysis on Quality Traits and Breeding Potential Evaluation of 23 Waxy Maize Lines from Laos [J]. Scientia Agricultura Sinica, 2024, 57(15): 2931-2945.
[8] WANG Shuai, ZHANG RuYang, WANG RongHuan, SONG Wei, ZHAO JiuRan. Research Progress of Southern Corn Rust and Resistance Breeding [J]. Scientia Agricultura Sinica, 2024, 57(14): 2732-2743.
[9] CAO LiRu, YE FeiYu, KU LiXia, MA ChenChen, PANG YunYun, LIANG XiaoHan, ZHANG Xin, LU XiaoMin. Analysis of Maize Phenylalanine Ammonia-Lyase (PAL) Family Genes and Functional Study of ZmPAL5 [J]. Scientia Agricultura Sinica, 2024, 57(12): 2265-2281.
[10] LI ShengYou, WANG ChangLing, YAN ChunJuan, ZHANG LiJun, SUN XuGang, CAO YongQiang, WANG WenBin, SONG ShuHong. Evaluation of Drought Resistance in Soybean Germplasm and Identification of Candidate Drought-Resistant Genes [J]. Scientia Agricultura Sinica, 2024, 57(10): 1857-1869.
[11] LUO ZhengYing, HU Xin, LIU XinLong, WU CaiWen, WU ZhuanDi, LIU JiaYong, ZENG QianChun. Application of Trehalose Enhances Drought Resistance in Sugarcane Seedlings and Promotes Plant Growth [J]. Scientia Agricultura Sinica, 2023, 56(21): 4208-4218.
[12] LI Yan, TAO KeYu, HU Yue, LI YongXiang, ZHANG DengFeng, LI ChunHui, HE GuanHua, SONG YanChun, SHI YunSu, LI Yu, WANG TianYu, ZOU HuaWen, LIU XuYang. Function of Maize ZCN7 in Regulating Drought Resistance at Flowering Stage [J]. Scientia Agricultura Sinica, 2023, 56(16): 3051-3061.
[13] LI Huan, YAN XiaoQing, YANG ZhanLie, TAN JinYu, LI XiaoBing, CHEN NengGang, WU RongJu, CHEN HuiCha, RUAN RenChao. Analysis and Comprehensive Evaluation of Phenotype Genetic Diversity in Kam Sweet Rice Germplasm Resources in Guizhou [J]. Scientia Agricultura Sinica, 2023, 56(11): 2035-2046.
[14] WANG XiuXiu,XING AiShuang,YANG Ru,HE ShouPu,JIA YinHua,PAN ZhaoE,WANG LiRu,DU XiongMing,SONG XianLiang. Comprehensive Evaluation of Phenotypic Characters of Nature Population in Upland Cotton [J]. Scientia Agricultura Sinica, 2022, 55(6): 1082-1094.
[15] YingLing WAN,MengTing ZHU,AiQing LIU,YiJia JIN,Yan LIU. Phenotypic Diversity Analysis of Chinese Ornamental Herbaceous Peonies and Its Germplasm Resource Evaluation [J]. Scientia Agricultura Sinica, 2022, 55(18): 3629-3639.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!