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Crop Root Behavior Coordinates Phosphorus Status and Neighbors: From Field Studies to Three-Dimensional in Situ Reconstruction of Root System Architecture1[W][OA]

机译:作物根系行为协调磷的状态和邻域:从田间研究到根系体系结构的三维原位重建1 [W] [OA]

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摘要

Root is a primary organ to respond to environmental stimuli and percept signals from neighboring plants. In this study, root responses in maize (Zea mays)/soybean (Glycine max) intercropping systems recognized soil phosphorus (P) status and neighboring plants in the field. Compared to self culture, the maize variety GZ1 intercropping with soybean HX3 grew much better on low P, but not in another maize variety, NE1. This genotypic response decreased with increasing distance between plants, suggesting that root interactions were important. We further conducted a detailed and quantitative study of root behavior in situ using a gel system to reconstruct the three-dimensional root architecture. The results showed that plant roots could integrate information on P status and root behavior of neighboring plants. When intercropped with its kin, maize or soybean roots grew close to each other. However, when maize GZ1 was grown with soybean HX3, the roots on each plant tended to avoid each other and became shallower on stratified P supply, but not found with maize NE1. Furthermore, root behavior in gel was highly correlated to shoot biomass and P content for field-grown plants grown in close proximity. This study provides new insights into the dynamics and complexity of root behavior and kin recognition among crop species in response to nutrient status and neighboring plants. These findings also indicate that root behavior not only depends on neighbor recognition but also on a coordinated response to soil P status, which could be the underlying cause for the different growth responses in the field.
机译:根是响应环境刺激和感知邻近植物信号的主要器官。在这项研究中,玉米(Zea mays)/大豆(Glycine max)间作系统中的根系反应识别了土壤磷(P)的状态以及田间的邻近植物。与自耕相比,在低磷条件下,玉米品种GZ1和大豆HX3间作的生长要好得多,但在另一个玉米品种NE1上却没有。这种基因型反应随着植物之间距离的增加而降低,表明根际相互作用很重要。我们还使用凝胶系统对三维根系结构进行了重建,对根系行为进行了详细的定量研究。结果表明,植物根系可以整合邻近植物的磷状况和根系行为信息。套种时,玉米或大豆的根系彼此靠近生长。然而,当玉米GZ1与大豆HX3一起生长时,每棵植物的根部趋于彼此避开,并且在分层磷供应下变得更浅,而玉米NE1则没有。此外,凝胶的根系行为与紧密相邻田间生长的植物的茎生物量和磷含量高度相关。这项研究提供了新的见解,以了解根系行为的动态性和复杂性,以及作物对营养状况和邻近植物的亲缘关系认识。这些发现还表明,根系行为不仅取决于邻居的识别,而且还取决于对土壤P状况的协调响应,这可能是造成田间不同生长响应的根本原因。

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