Genetic variability for root morph-architecture traits and root growth dynamics as related to phosphorus efficiency in soybean

生物 遗传建筑学 遗传力 特质 根系 数量性状位点 基因型 侧根 遗传变异 农学 选择(遗传算法) 野外试验 词根(语言学) 植物 园艺 遗传学 基因 拟南芥 哲学 突变体 人工智能 计算机科学 语言学 程序设计语言
作者
Junhua Ao,Jiabing Fu,Jiang Tian,Xiaolong Yan,Hong Liao
出处
期刊:Functional Plant Biology [CSIRO Publishing]
卷期号:37 (4): 304-304 被引量:97
标识
DOI:10.1071/fp09215
摘要

Root morphology and architecture are believed to be important for plant phosphorus (P) efficiency, but their genetic information is relatively scarce. In the present study, a field and a specially designed minirhizotron experiments were conducted using two soybean (Glycine max L. Merr.) genotypes and their 88 recombinant inbred lines (RILs) to elucidate the genetic variability for root morph-architecture traits and root growth dynamics as related to P efficiency in soybean. The results indicated that the root morph-architecture traits were continually segregated in the RILs with a normal distribution, indicating which are possibly controlled by quantitative trait loci. Significantly positive correlations were found between root and P traits, suggesting feasibility of screening P efficient genotype through simple selection of root traits in field. Most root morph-architecture traits were closely correlated, showing a coordinating contribution to P efficiency. Furthermore, root morphological traits always had higher heritability than architecture traits, thus, could serve as more reliable index in field selection. The dynamic parameters of root growth from the minirhizotron experiment showed that the P efficient genotype established longer and larger root system with preferring distribution in surface layer and also kept more active roots, therefore, had a better growth performance in field, than the P-inefficient genotype. Taken together, this is the first report on in situ root growth dynamics and its relation to P efficiency using minirhizotron systems in crops. Our findings help to better understand the relationships between P efficiency and root traits and, thus, facilitate development of P efficient genotypes in crops.

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