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3D deformation field in growing plant roots reveals both mechanical and biological responses to axial mechanical forces

机译:植物根部的3D变形场揭示了对轴向机械力的机械和生物学响应

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摘要

Strong regions and physical barriers in soils may slow root elongation, leading to reduced water and nutrient uptake and decreased yield. In this study, the biomechanical responses of roots to axial mechanical forces were assessed by combining 3D live imaging, kinematics and a novel mechanical sensor. This system quantified Young’s elastic modulus of intact poplar roots (32MPa), a rapid <0.2 mN touch-elongation sensitivity, and the critical elongation force applied by growing roots that resulted in bending. Kinematic analysis revealed a multiphase bio-mechanical response of elongation rate and curvature in 3D. Measured critical elongation force was accurately predicted from an Euler buckling model, indicating that no biologically mediated accommodation to mechanical forces influenced bending during this short period of time. Force applied by growing roots increased more than 15-fold when buckling was prevented by lateral bracing of the root. The junction between the growing and the mature zones was identified as a zone of mechanical weakness that seemed critical to the bending process. This work identified key limiting factors for root growth and buckling under mechanical constraints. The findings are relevant to crop and soil sciences, and advance our understanding of root growth in heterogeneous structured soils.
机译:土壤中的强烈区域和物理屏障可能会减慢根的伸长,从而导致水分和养分吸收减少以及单产下降。在这项研究中,通过结合3D实时成像,运动学和新型机械传感器,评估了根对轴向机械力的生物力学响应。该系统量化了完整杨树根的杨氏弹性模量(32MPa),快速的<0.2 mN接触伸长敏感性以及生长导致弯曲的根所施加的临界伸长力。运动学分析揭示了3D延伸率和曲率的多相生物力学响应。根据欧拉屈曲模型可准确预测测得的临界伸长力,这表明在短时间内没有生物介​​导的对机械力的调节会影响弯曲。当通过根部的侧向支撑防止屈曲时,由生长的根部施加的力增加了15倍以上。生长区和成熟区之间的交界处被确定为对弯曲过程至关重要的机械薄弱区。这项工作确定了在机械约束下根系生长和屈曲的关键限制因素。这些发现与作物和土壤科学有关,并增进了我们对异质结构化土壤根系生长的理解。

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