内源脱落酸调节蓝莓果实碳和水通量的综合过程模型

Quantitative plant biology Pub Date : 2025-06-30 eCollection Date: 2025-01-01 DOI:10.1017/qpb.2025.10011
Sun Woo Chung, Kyungdahm Yun, Soo-Hyung Kim
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引用次数: 0

摘要

果实的生长是由环境信号和植物激素信号的相互作用所驱动的。生物物理模型捕捉到了果实生长的总体趋势,但往往忽略了植物激素的调节作用。本研究将生物物理框架与果实内源脱落酸(ABA)的定量响应相结合。ABA动态作为成熟信号,影响糖摄取、呼吸、水力传导和蒸腾过程。该模型主要在蓝莓上进行了测试,蓝莓是一种具有良好特征的ABA反应的水果。模拟结果表明,在不同的气候条件下,果实质量具有较好的预测精度和解释能力。值得注意的是,该模型有效地模拟了热、冷和干旱等环境胁迫的影响,捕捉了由此导致的水果生长生理延迟。我们的研究强调了将植物激素反应整合到生物物理模型中的潜力,为研究果实生长动态提供了关键见解,并为在日益增加的气候不确定性下优化作物管理提供了实践指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An integrative process-based model of fruit growth as a function of carbon and water fluxes modulated by endogenous abscisic acid in blueberry fruit.

Fruit growth is driven by the interaction of environmental cues and phytohormonal signals. Biophysical models have captured the general trend of fruit growth but often overlook the regulatory role of phytohormones. This study integrates a biophysical framework with the quantitative response of endogenous abscisic acid (ABA) in fruit. ABA dynamics are incorporated as a ripening signal, influencing sugar uptake, respiration, hydraulic conductance and transpiration processes. The model has been primarily tested on blueberries, a fruit with well-characterised ABA responses. Simulations show predictive accuracy and explanatory capability for fruit mass under variable climatic conditions. Notably, the model effectively simulates the impacts of environmental stresses such as heat, cold and drought, capturing the resulting physiological delays in fruit growth. Our research underscores the potential of integrating phytohormonal responses into biophysical models, providing key insights into fruit growth dynamics and practical guidance for optimising crop management under increasing climate uncertainties.

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