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田间种植大豆在高蒸发梯度下气孔关闭的生理权衡

Physiological trade-offs of stomatal closure under high evaporative gradients in field grown soybean.

作者信息

Medina Viviana, Gilbert Matthew E

机构信息

Department of Plant Sciences, One Shields Avenue, Davis, CA 95 616, USA.

出版信息

Funct Plant Biol. 2015 Feb;43(1):40-51. doi: 10.1071/FP15304.

Abstract

Limited rainfall is the main constraint to agriculture, making agricultural research to understand plant behaviour that leads to avoidance of soil water deficit a matter of priority. One focus has screened for crop varieties that decrease stomatal conductance under high vapour pressure deficit (VPD), a proxy for the leaf evaporative gradient. However, the link between stomatal closure and physiological consequences in field environments is not yet clear. A field experiment on soybeans demonstrated that considerable variation in leaf temperature relative to air temperature occurred, leading to evaporative gradients differing substantially from VPD. Thus, transpiration is decreased by stomatal closure at high VPD, but to compensate, transpiration is somewhat increased due to higher leaf temperatures. Soil water deficit led to lower stomatal conductance, particularly under low evaporative conditions, not just under hot conditions. Non-stomatal photosynthetic limitations were observed due to combined occurrence of stomatal closure and high temperature under high VPD. Although leaves reached temperatures higher than the threshold for a decrease in maximum photochemical efficiency, and displayed non-stomatal photosynthetic limitations, no photoinhibition or damage was observed by night-time. The results demonstrate that more understanding of physiological strategies for achieving altered water use is needed to avoid trade-offs and heat stress.

摘要

降雨有限是农业的主要制约因素,因此开展农业研究以了解植物避免土壤水分亏缺的行为成为当务之急。一个研究重点是筛选在高蒸汽压亏缺(VPD,一种叶片蒸发梯度指标)下气孔导度降低的作物品种。然而,在田间环境中,气孔关闭与生理后果之间的联系尚不清楚。一项针对大豆的田间试验表明,叶片温度相对于气温存在显著差异,导致蒸发梯度与VPD有很大不同。因此,在高VPD条件下,气孔关闭会降低蒸腾作用,但作为补偿,较高的叶片温度会使蒸腾作用有所增加。土壤水分亏缺会导致气孔导度降低,特别是在低蒸发条件下,而不仅仅是在炎热条件下。在高VPD条件下,由于气孔关闭和高温共同作用,观察到了非气孔光合限制。尽管叶片温度高于最大光化学效率降低的阈值,并表现出非气孔光合限制,但夜间未观察到光抑制或损伤现象。结果表明,为避免权衡和热应激,需要更深入地了解实现水分利用变化的生理策略。

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