Scientia Agricultura Sinica ›› 2025, Vol. 58 ›› Issue (19): 3825-3836.doi: 10.3864/j.issn.0578-1752.2025.19.003

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

Evaluation of 111 Alfalfa Germplasm Resources for Seedling Phenotypic Drought Tolerance Characterization

BAO MingFang1,2(), QIN Yan1(), CHEN CaiJin1,2(), ZHANG ShangPei2, ZHANG GuoHui2, SHA XiaoDi2   

  1. 1 Academy of Animal and Veterinary Sciences, Qinghai University (Qinghai Academy of Animal Science and Veterinary Medicine)/ Key Laboratory of Qinghai Province for Utilization of Excellent Forage Germplasm Resources on the Qinghai-Tibet Plateau, Xining 810016
    2 Guyuan Branch, Ningxia Academy of Agricultural and Forestry Sciences, Guyuan 756000, Ningxia
  • Received:2025-04-07 Accepted:2025-06-27 Online:2025-10-01 Published:2025-10-10
  • Contact: QIN Yan, CHEN CaiJin

Abstract:

【Objective】To explore the ideal traits and methods that can characterize the drought resistance of the core germplasm population of alfalfa at the seedling stage, and to mine excellent drought-resistant germplasm, so as to provide technical support and material basis for the identification of drought resistance of alfalfa at the seedling stage, germplasm innovation and breeding.【Method】Using 111 core germplasms of alfalfa as materials, the single drought resistance coefficients of six traits, namely plant height (PH), shoot fresh weight (SFW), shoot dry weight (SDW), main root length (MRL), root fresh weight (RFW), and root dry weight (RDW), were determined under natural drought stress and normal water supply (control). Combining the analysis methods such as the single drought resistance coefficient, correlation, principal component, membership function, linear stepwise regression, and clustering of each trait of alfalfa, the response differences of each alfalfa germplasm to drought stress were evaluated, the traits and methods for identifying drought resistance at the seedling stage were screened, and the excellent resources of drought resistance at the seedling stage of alfalfa were explored.【Result】The analysis of the single drought resistance coefficient indicated that drought stress significantly inhibited all six traits of alfalfa at the seedling stage. The results of trait correlation showed that there was a positive correlation among the six traits. The principal component results indicated that the six individual drought-resistant traits of alfalfa could be combined into four comprehensive drought-resistant traits, and the cumulative contribution rate reached 86.885%. The methods such as single drought resistance coefficient, correlation, principal component and linear stepwise regression were comprehensively evaluated to determine that SFW, SDW, RFW and RDW were the ideal traits for evaluating alfalfa materials at the seedling stage. Using the classification methods of CDC value and D value, the drought resistance of 111 core germplasm populations of alfalfa at the seedling stage was classified. It was found that there were only subtle differences in the classification of drought resistance of various germplasm by the two drought resistance classification methods. The D values of 111 alfalfa core germplasms were clustered and classified. The various germplasms were divided into 5 categories, which belonged to strongly drought-resistant, moderately drought-resistant, moderately drought-resistant and drought-sensitive germplasms respectively.【Conclusion】Determine that SFW, SDW, RFW and RDW are the best traits for drought resistance evaluation of alfalfa at the seedling stage; The number of highly drought-resistant and relatively drought-resistant materials of alfalfa at the seedling stage excavated was 6 and 25 respectively.

Key words: alfalfa, germplasm resources, seedling stage, drought stress, comprehensive assessment

Table 1

Descriptive statistics of DC values for alfalfa traits"

相对性状 Relative trait 范围Realm (%) 均值 Average value 均方 Mean square 变异系数 Coefficient of variation (%)
相对株高RPH 0.44-4.37 0.9123 0.4292 47.04
地上部相对鲜重RSFW 0.10-1.83 0.4765 0.3062 64.26
地上部相对干重RSDW 0.09-3.33 0.6545 0.4474 68.36
相对主根长RMRL 0.26-1.74 0.9999 0.2903 29.04
相对根鲜重RRFW 0.02-1.64 0.4821 0.3790 78.60
相对根干重RRDW 0.06-3.00 0.7446 0.5204 69.89

Table 2

Alfalfa correlation analysis table for each trait"

相对性状 Relative trait 地上部相对鲜重 RSFW 地上部相对干重RSDW 相对主根长RMRL 相对根鲜重RRFW 相对根干重RRDW
相对株高RPH 0.1947* 0.0478 0.3040** 0.3215** 0.2529**
地上部相对鲜重 RSFW 0.4491** 0.1389 0.4862** 0.5091**
地上部相对干重 RSDW 0.0997 0.5079** 0.5744**
相对主根长 RMRL 0.3207** 0.1993*
相对根鲜重 RRFW 0.5699**

Fig. 1

Correlation plots for six traits in alfalfa"

Table 3

KMO and Bartlett's test of sphericity for drought tolerance coefficients of alfalfa indicators"

Kaiser-Meyer-Olkin度量值
Kaiser-Meyer-Olkin measurement value
Bartlett球形度检验
Bartlett’s sphericity test
0.785 近似卡方Approximate Chi-squared value 174.066
自由度Degrees freedom 15
显著性Significance 0.000

Table 4

Characteristic vectors and contribution values of six traits at seedling stage of alfalfa core germplasm population"

相对性状
Relative trait
主成分Principal component
第1主成分PC1 第2主成分PC2 第3主成分PC3 第4主成分PC4
相对株高RPH 0.157 0.577 -0.770 -0.256
地上部相对鲜重RSFW 0.260 -0.183 -0.245 1.140
地上部相对干重RSDW 0.259 -0.371 0.234 -0.493
相对主根长RMRL 0.149 0.575 0.828 0.231
相对根鲜重RRFW 0.299 0.036 0.062 -0.215
相对根干重RRDW 0.297 -0.145 -0.060 -0.333
特征值Eigenvalues 2.782 1.167 0.714 0.550
贡献率Contribution rate (%) 46.374 19.449 11.901 9.161
累计贡献率Cumulative contribution (%) 46.374 65.822 77.724 86.885

Table 5

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

资源序号 Resource number CDC值 CDC values 资源序号 Resource number DD-values
AG60 1.7251 AG110 0.6961
AG25 1.5020 AG60 0.6699
AG5 1.3396 AG51 0.6222
AG49 1.3300 AG5 0.6163
AG110 1.2412 AG25 0.6042
AG51 1.2238 AG49 0.5780
AG89 1.1856 AG87 0.5414
AG6 1.1262 AG6 0.5263
AG42 1.1114 AG67 0.5159
AG87 1.0959 AG89 0.5028

Fig. 2

Cluster analysis of alfalfa germplasm resources"

Fig. 3

Phenotypic maps of drought-resistant germplasm and drought-sensitive germplasm CK: Control; D: Drought stress treatment"

Table 6

Correlation analysis between DC and D values of drought tolerance for each indicator"

指标Index DD-values
相对株高RPH 0.5289**
地上部相对鲜重RSFW 0.6706**
地上部相对干重RSDW 0.6989**
相对主根长RMRL 0.4552**
相对根鲜重RRFW 0.8050**
相对根干重RRDW 0.8231**
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