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A design principle of root length distribution of plants

Authors
Jung, YeonsuPark, KeunhwanJensen, Kaare H.Kim, WonjungKim, Ho-Young
Issue Date
Dec-2019
Publisher
ROYAL SOC
Keywords
biological fluid dynamics; root length density; plant physics; flow in porous media
Citation
JOURNAL OF THE ROYAL SOCIETY INTERFACE, v.16, no.161
Journal Title
JOURNAL OF THE ROYAL SOCIETY INTERFACE
Volume
16
Number
161
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/78520
DOI
10.1098/rsif.2019.0556
ISSN
1742-5689
Abstract
Shaping a plant root into an ideal structure for water capture is increasingly important for sustainable agriculture in the era of global climate change. Although the current genetic engineering of crops favours deep-reaching roots, here we show that nature has apparently adopted a different strategy of shaping roots. We construct a mathematical model for optimal root length distribution by considering that plants seek maximal water uptake at the metabolic expenses of root growth. Our theory finds a logarithmic decrease of root length density with depth to be most beneficial for efficient water uptake, which is supported by biological data as well as our experiments using root-mimicking network systems. Our study provides a tool to gauge the relative performance of root networks in transgenic plants engineered to endure a water deficit. Moreover, we lay a fundamental framework for mechanical understanding and design of water-absorptive growing networks, such as medical and industrial fluid transport systems and soft robots, which grow in porous media including soils and biotissues.
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Engineering (기계·스마트·산업공학부(기계공학전공))
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