Unverified paper record
Root System Architecture and Environmental Flux Analysis in Mature Crops using 3D Root Mesocosms
openRxiv · 13 Sept 2022 · 10.1101/2022.09.10.507424
Abstract
Current methods of root sampling typically only obtain small or incomplete sections of root systems and do not capture their true complexity. To facilitate the visualization and analysis of full-sized plant root systems in 3-dimensions, we developed customized mesocosm growth containers. While highly scalable, the design presented here uses an internal volume of 45 ft 3 (1.27 m 3 ), suitable for large crop and bioenergy grass root systems to grow largely unconstrained. Furthermore, they allow for the excavation and preservation of 3-dimensional RSA, and facilitate the collection of time-resolved subterranean environmental data. Sensor arrays monitoring matric potential, temperature and CO 2 levels are buried in a grid formation at various depths to assess environmental fluxes at regular intervals. Methods of 3D data visualization of fluxes were developed to allow for comparison with root system architectural traits. Following harvest, the recovered root system can be digitally reconstructed in 3D through photogrammetry, which is an inexpensive method requiring only an appropriate studio space and a digital camera. We developed a pipeline to extract features from the 3D point clouds, or from derived skeletons that include point cloud voxel number as a proxy for biomass, total root system length, volume, depth, convex hull volume and solidity as a function of depth. Ground-truthing these features with biomass measurements from manually dissected root systems showed a high correlation. We evaluated switchgrass, maize, and sorghum root systems to highlight the capability for species wide comparisons. We focused on two switchgrass ecotypes, upland (VS16) and lowland (WBC3), in identical environments to demonstrate widely different root system architectures that may be indicative of core differences in their rhizoeconomic foraging strategies. Finally, we imposed a strong physiological water stress and manipulated the growth medium to demonstrate whole root system plasticity in response to environmental stimuli. Hence, these new “3D Root Mesocosms” and accompanying computational analysis provides a new paradigm for study of mature crop systems and the environmental fluxes that shape them.
Plant phenotyping relevance
大型作物の根系を3Dで取得・再構築し、根系形質を抽出するメソッドとメソコスム基盤を開発・検証しており、植物フェノタイピング手法が中心である。
abstractTo facilitate the visualization and analysis of full-sized plant root systems in 3-dimensions, we developed customized mesocosm growth containers.
abstractFollowing harvest, the recovered root system can be digitally reconstructed in 3D through photogrammetry
abstractWe developed a pipeline to extract features from the 3D point clouds, or from derived skeletons that include point cloud voxel number as a proxy for biomass, total root system length, volume, depth, convex hull volume and solidity as a function of depth.
abstractGround-truthing these features with biomass measurements from manually dissected root systems showed a high correlation.
Code and data availability
The supplied blocks describe the paper's mesocosm phenotyping, photogrammetry, and MATLAB point-cloud analysis pipeline, but contain no author-deposited public dataset, image collection, code repository, or supplement with such assets. The only URL mentioned (OpenCV tutorial) is a generic third-party library reference,
No evidence-backed public reproduction asset is currently recorded.
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