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Root-type-specific plasticity in response to localized high nitrate supply in maize (Zea mays)

机译:根系特定类型的可塑性响应于玉米(Zea mays)中局部高硝酸盐供应

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摘要

>Background and Aims Shoot-borne roots contribute to most of the nutrient uptake throughout the life cycle of maize (Zea mays). Compared with numerous studies with embryonic roots, detailed information on the phenotypic plasticity of shoot-borne roots in response to a heterogeneous nitrogen supply is scarce. The present study therefore provides a comprehensive profile of fine-scale plastic responses of distinct root types to localized high nitrate supply.>Methods Seedlings of the maize inbred line B73 were grown in split-root systems. The anatomy and morphological plasticity of the primary root and the roots initiated from the 2nd, 5th and 7th shoot nodes, and their lateral roots, were studied in response to local high nitrate supply to one side of the root system.>Key Results In contrast to the insensitivity of axial roots, local high nitrate supply increased the length of 1st-order lateral roots on the primary root and the three whorls of shoot-borne roots at different growth stages, and increased the density of 1st-order lateral roots on the 7th shoot-borne root after silking. The length and density of 2nd-order lateral roots on the three whorls of shoot-borne roots displayed a more flexible response to local high nitrate than 1st-order lateral roots. Root diameter and number, and total area and diameter of metaxylem vessels increased from the primary root to early and then later developed shoot-borne roots, which showed a positive relationship with shoot growth and N accumulation.>Conclusions Maize axial roots and lateral roots responded differently to local high nitrate, and this was related to their function. The extent of morphological plasticity of lateral roots in response to local high nitrate depended on the initiation time of the shoot-borne roots on which the lateral roots developed. Morphological plasticity was higher on 2nd-order than on 1st-order lateral roots. The results suggest that higher order lateral root branching might be a potential target for genetic improvement in future maize breeding.
机译:>背景和目的芽生根在玉米(玉米(Zea mays))的整个生命周期中贡献了大部分养分吸收。与众多有关胚根的研究相比,缺乏关于异源氮供应引起的芽生根表型可塑性的详细信息。因此,本研究提供了不同根系对局部高硝酸盐供应的细尺度塑性响应的全面概况。>方法玉米自交系B73的幼苗在分根系统中生长。响应根系一侧局部较高的硝酸盐供应,研究了初生根以及从第2,第5和第7芽节起始的根及其侧根的解剖学和形态可塑性。>关键结果与轴系根系不敏感相比,局部高硝酸盐供应增加了不同生长期的一阶侧根的长度和芽生根的三个螺纹,并增加了第一根的密度蚕丝后第7芽生根上有序侧根。与一阶侧根相比,三生芽生根上的二阶侧根的长度和密度显示出对局部高硝酸盐的更灵活的响应。结木质部根的直径和数量,以及总面积和直径从初生根增加到早期,然后发展为芽生根,这与芽生长和氮积累呈正相关。>结论玉米轴根和侧根对局部高硝酸盐的反应不同,这与其功能有关。响应于局部高硝酸盐的侧根形态可塑性的程度取决于侧根在其上发育的芽生根的起始时间。 2阶的形态可塑性高于1阶的侧根。结果表明,更高阶的侧根分枝可能是未来玉米育种中遗传改良的潜在目标。

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