Phenotyping cowpea accessions at the seedling stage for drought tolerance in controlled environments

被引:6
作者
Nkomo, Gabriel, V [1 ]
Sedibe, Moosa M. [1 ]
Mofokeng, Maletsema A. [2 ]
机构
[1] Cent Univ Technol Free State, Dept Agr, Bloemfontein, South Africa
[2] Agr Res Council Grain Crops, Dept Plant Breeding, Potchefstroom, South Africa
关键词
accessions; cowpea; drought tolerance; phenotype; screen houses; CULTIVARS; STRESS;
D O I
10.1515/opag-2022-0093
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
One of the most important screening techniques used in cowpea selection for drought tolerance is screening at the seedling stage. The objective of this study was to phenotype 60 cowpea genotypes for seedling drought tolerance in screen houses (glasshouse and greenhouse). Principal component analysis revealed that of the 14 variables, the first 4 expressed more than 1 eigenvalue. Data showed that PC1, PC2, and PC3 contributed 39.3, 15.2, and 10%, respectively, with 64.68% total variation. A PCA plot and biplot showed that the number of pods (NP), seeds per pod (SP), survival count (SC), pod weight (PWT), and stem wilting in week 1 (WWK1) had the most significant contributions to genetic variability to drought tolerance and to yield after stress imposition based on the PCA, biplot, and cluster plot, the accessions IT 07-292-10, IT 07-274-2-9, IT90K-59, 835-911, RV 343, and IT 95K-2017-15 had the maximum variability in terms of NP, SP, SC, PWT, and WWK1 after drought imposition. Cowpea accessions 835-911, IT 07-292-10, RV 344, Kangorongondo, and IT 90K-59 were the major individuals that contributed mainly to domain information model (DIM) 1 and 2. The accessions that contributed the least were IT 89KD288, Chibundi mavara, and TVU12746. Thirty-six cowpea accessions from both screen houses were tolerant to drought, 15 were moderately tolerant, while 23 were susceptible. The findings of the study provided a useful tool for screening and determining drought-tolerant and susceptible accessions at the seedling stage.
引用
收藏
页码:433 / 444
页数:12
相关论文
共 22 条
[11]  
Gomes A., 2019, Legume crops-Characterization and Breeding for Improved Food Security, P626, DOI DOI 10.5772/INTECHOPEN.84985
[12]  
Gull M., 2018, INT J AGR ENV BIOTEC, V11, P863, DOI [10.30954/0974-1712.12.2018.7, DOI 10.30954/0974-1712.12.2018.7]
[13]   Development of cowpea cultivars and germplasm by the Bean/Cowpea CRSP [J].
Hall, AE ;
Cisse, N ;
Thiaw, S ;
Elawad, HOA ;
Ehlers, JD ;
Ismail, AM ;
Fery, RL ;
Roberts, PA ;
Kitch, LW ;
Murdock, LL ;
Boukar, O ;
Phillips, RD ;
McWatters, KH .
FIELD CROPS RESEARCH, 2003, 82 (2-3) :103-134
[14]   Growth and Yield Responses of Cowpea to Inoculation and Phosphorus Fertilization in Different Environments [J].
Kyei-Boahen, Stephen ;
Savala, Canon E. N. ;
Chikoye, David ;
Abaidoo, Robert .
FRONTIERS IN PLANT SCIENCE, 2017, 8
[15]  
Martins Celia M., 2014, South African Journal of Plant and Soil, V31, P87, DOI 10.1080/02571862.2014.907453
[16]   Seedling stage drought-induced phenotypes and drought-responsive genes in diverse cowpea genotypes [J].
Muchero, Wellington ;
Ehlers, Jeffrey D. ;
Roberts, Philip A. .
CROP SCIENCE, 2008, 48 (02) :541-552
[17]  
Muhammad I., 2015, J BIOL NAT, V5, P31
[18]   Relationship between stress tolerance and grain yield stability in cowpea [J].
Padi, FK .
JOURNAL OF AGRICULTURAL SCIENCE, 2004, 142 :431-443
[19]   A new phenotyping technique for screening for drought tolerance in lentil (Lens culinaris Medik.) [J].
Singh, Dharmendra ;
Dikshit, Harsh K. ;
Singh, Rajendra .
PLANT BREEDING, 2013, 132 (02) :185-190
[20]   Cowpea (Vigna unguiculata [L.] Walp.) genotypes response to multiple abiotic stresses [J].
Singh, Shardendu K. ;
Kakani, Vijaya Gopal ;
Surabhi, Giridara-Kumar ;
Reddy, K. Raja .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY B-BIOLOGY, 2010, 100 (03) :135-146