The mechanical origin of the radial shape in distichous phyllotaxy grass plants

IF 2.6 Q1 AGRONOMY in silico Plants Pub Date : 2021-07-01 DOI:10.1093/INSILICOPLANTS/DIAB019
Yoshiki Tokuyama, Y. Koide, K. Onishi, Kiwamu Hikichi, Miku Omachi, I. Takamure, Y. Kishima
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Abstract

Three-dimensional plant shapes are influenced by their phyllotaxy, which plays a significant role in their environmental adaptation. Grasses with distichous phyllotaxy have linearly aligned culms and usually have vertical fan-like shapes. Counterintuitively, some distichous phyllotaxy grasses have radial shapes. Here, we investigate the organ-level mechanism underlying radial shape development in the distichous phyllotactic wild rice species (Oryza rufipogon). Detailed time-course phenotyping and three-dimensional micro-computed tomography showed that changes in the elevation angle in the main culm and azimuth angle in the primary tillers contribute to radial shape development. To infer the mechanical basis of the shape change, we simulated the movements of culms controlled by different kinematic factors. The computational models predicted that the combination of movements, including that controlled by negative gravitropism, produces the overall radial shape. This prediction was experimentally assessed. The analysis using a near-isogenic line of the gene, PROG1 for prostrate growth and the gravitropic mutant (lazy1) showed an association between genes and our model parameters. Our findings provide a simple, yet substantial, kinematic model for how the shape in distichous phyllotaxy plants changes as part of their adaptation to the surrounding environment.
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二元叶蜡草径向形态的力学成因
三维植物形态受其叶性的影响,叶性在其环境适应中起着重要作用。具有二列叶序的草具有线性排列的秆,通常具有垂直的扇形。与直觉相反,一些二元叶蜡草具有放射状。在这里,我们研究了二元叶序野生稻(Oryza rufipogon)径向形状发育的器官水平机制。详细的时程表型和三维显微计算机断层扫描显示,主茎仰角和主分蘖方位角的变化有助于径向形状的发育。为了推断形状变化的力学基础,我们模拟了不同运动学因素控制的杆的运动。计算模型预测,运动的组合,包括由负向重力控制的运动,会产生整体的径向形状。对这一预测进行了实验评估。使用该基因的近等基因系PROG1(用于匍匐生长)和重力突变体(lazy1)进行的分析表明,基因与我们的模型参数之间存在关联。我们的研究结果提供了一个简单但实质性的运动学模型,用于描述二元叶序植物的形状如何在适应周围环境的过程中发生变化。
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来源期刊
in silico Plants
in silico Plants Agricultural and Biological Sciences-Agronomy and Crop Science
CiteScore
4.70
自引率
9.70%
发文量
21
审稿时长
10 weeks
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