Department of Civil and Environmental Engineering, Tokyo Institute of Technology, Kanagawa, 226-8502, Japan.
Faculty of Systems Science and Technology, Akita Prefectural University, Akita, 015-0055, Japan.
Sci Rep. 2023 May 9;13(1):7473. doi: 10.1038/s41598-023-34025-x.
Root penetration into the soil is essential for plants to access water and nutrients, as well as to mechanically support aboveground structures. This requires a combination of healthy plant growth, adequate soil mechanical properties, and compatible plant-soil interactions. Despite the current knowledge of the static rheology driving the interactions at the root-soil interface, few theoretical approaches have attempted to describe root penetration with dynamic rheology. In this work, we experimentally showed that radish roots in contact with soil of specific density during a specific growth stage fail to penetrate the soil. To explore the mechanism of root penetration into the soil, we constructed a theoretical model to explore the relevant conditions amenable to root entry into the soil. The theory indicates that dimensionless parameters such as root growth anisotropy, static root-soil competition, and dynamic root-soil competition are important for root penetration. The consequent theoretical expectations were supported by finite element analysis, and a potential mechanism of root penetration into the soil is discussed.
根系穿透土壤对于植物获取水分和养分以及机械支撑地上结构至关重要。这需要健康的植物生长、适当的土壤力学性质和相容的植物-土壤相互作用。尽管目前已经了解了在根-土界面处驱动相互作用的静态流变学,但很少有理论方法尝试用动态流变学来描述根系穿透。在这项工作中,我们通过实验表明,在特定生长阶段接触特定密度土壤的萝卜根无法穿透土壤。为了探索根系穿透土壤的机制,我们构建了一个理论模型来探索有利于根系进入土壤的相关条件。该理论表明,根生长各向异性、静态根-土竞争和动态根-土竞争等无量纲参数对根系穿透很重要。有限元分析支持了相应的理论预期,讨论了根系穿透土壤的潜在机制。