气孔保护细胞的胀压变化是由水的流入和细胞壁的机械反应相互作用引起的。

Hojae Yi, Yintong Chen, Charles T Anderson
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引用次数: 3

摘要

植物吸收二氧化碳进行光合作用并将水分从根部输送到茎部的能力依赖于表皮中打开气孔的保护细胞的可逆膨胀。尽管经过了几十年的实验和理论工作,气孔打开和关闭的生物力学驱动因素仍然没有得到明确的定义。我们将机械原理与越来越多的关于植物细胞膜上的水通量和植物细胞壁的生物力学特性的知识相结合,定量地测试了长期存在的假设,即由水分摄取引起的膨胀压力增加驱动气孔打开期间保护细胞的扩张。为了验证水流入是保护细胞扩张的主要动力这一假设,我们开发了一个考虑水流入的系统动力学模型。这种方法将气孔动力学与整个植物生理学联系起来,包括植物中水分状态引起的水通量值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Turgor pressure change in stomatal guard cells arises from interactions between water influx and mechanical responses of their cell walls.

Turgor pressure change in stomatal guard cells arises from interactions between water influx and mechanical responses of their cell walls.

Turgor pressure change in stomatal guard cells arises from interactions between water influx and mechanical responses of their cell walls.

Turgor pressure change in stomatal guard cells arises from interactions between water influx and mechanical responses of their cell walls.
Abstract Abstract The ability of plants to absorb CO2 for photosynthesis and transport water from root to shoot depends on the reversible swelling of guard cells that open stomatal pores in the epidermis. Despite decades of experimental and theoretical work, the biomechanical drivers of stomatal opening and closure are still not clearly defined. We combined mechanical principles with a growing body of knowledge concerning water flux across the plant cell membrane and the biomechanical properties of plant cell walls to quantitatively test the long-standing hypothesis that increasing turgor pressure resulting from water uptake drives guard cell expansion during stomatal opening. To test the alternative hypothesis that water influx is the main motive force underlying guard cell expansion, we developed a system dynamics model accounting for water influx. This approach connects stomatal kinetics to whole plant physiology by including values for water flux arising from water status in the plant .
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