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Characterization of a soybean (Glycine max L. Merr.) germplasm collection for root traits

机译:大豆(Glycine max L. Merr。)种质集合根部性状的表征

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摘要

Root systems that improve resource uptake and penetrate compacted soil (hardpan) are important for improving soybean (Glycine max L. Merr.) productivity in optimal and sub-optimal environments. The objectives of this research were to evaluate a soybean germplasm collection of 49 genotypes for root traits, determine whether root traits are related with plant height, shoot dry weight, chlorophyll index, and seed size, and identify genotypes that can penetrate a hardpan. Plants were maintained under optimal growth conditions in a greenhouse. Single plants were grown in mesocosms, constructed of two stacked columns (top and bottom columns had 25 and 46 cm height, respectively, and 15 cm inside diameter) with a 2-cm thick wax layer (synthetic hardpan; penetration resistance, 1.5 MPa at 30°C) in between. Plants were harvested at 42 days after planting. Significant genetic variability was observed for root traits in the soybean germplasm collection, and genotypes that penetrated the synthetic hardpan were identified. Genotypes NTCPR94-5157, NMS4-1-83, and N09-13128 were ranked high and PI 424007 and R01-581F were ranked low for most root traits. Shoot dry weight and chlorophyll index were positively related with total root length, surface area, and volume, and fine root length (Correlation coefficient, r ≥ 0.60 and P-value < 0.0001 for shoot dry weight and r ≥ 0.37 and P-value < 0.01 for chlorophyll index]. Plant height was negatively correlated with total root surface area, total root volume, and average root diameter (|r| ≥ 0.29, P-value < 0.05). Seed size was not correlated with any root traits. The genetic variability identified in this research for root traits and penetration are critical for soybean improvement programs in choosing genotypes with improved root characteristics to increase yield in stressful or optimum environments.
机译:改善资源吸收并渗透压实土壤(硬盘)的根系对于在最佳和次优环境下提高大豆(Glycine max L. Merr。)的生产力非常重要。这项研究的目的是评估49种基因型的大豆种质的根性状,确定根性状是否与株高,枝干重,叶绿素指数和种子大小有关,并确定可以穿透硬penetrate的基因型。将植物保持在温室中的最佳生长条件下。单株植物在中观世界中生长,由两根堆叠的柱子构成(顶部和底部的柱子分别具有25和46 cm的高度,内径为15 cm)和2 cm厚的蜡层(合成硬盘;耐穿透性,在1.5 MPa下) 30°C之间)。种植后第42天收获植物。在大豆种质资源中观察到根性状具有显着的遗传变异性,并鉴定出可穿透合成硬pan的基因型。对于大多数根系性状,基因型NTCPR94-5157,NMS4-1-83和N09-13128排名较高,而PI 424007和R01-581F排名较低。茎干重量和叶绿素指数与总根长,表面积和体积以及细根长度呈正相关(相关系数,茎干重量的r≥0.60和P值<0.0001,r≥0.37和P值<叶绿素指数为0.01]。株高与总根表面积,总根体积和平均根直径呈负相关(| r |≥0.29,P值<0.05)。种子大小与任何根系性状均不相关。在这项研究中确定的根系性状和穿透性的遗传变异性对于选择改良根系特征的基因型以提高在压力或最佳环境下的产量的大豆改良计划至关重要。

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