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Effects of Water-Deficit Stress on Photosynthesis, Its Components and Component Limitations, and on Water Use Efficiency in Wheat (Triticum aestivum L.) 1

机译:缺水胁迫对小麦光合特性,组成和组成限制以及水分利用效率的影响1

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摘要

It is of theoretical as well as practical interest to identify the components of the photosynthetic machinery that govern variability in photosynthesis rate (A) and water-use efficiency (WUE), and to define the extent by which the component processes limit A and WUE during developing water-deficit stress. For that purpose, leaf exchange of CO2 and H2O was determined in two growth-chamber-grown wheat cultivars (Triticum aestivum L. cv TAM W-101 and cv Sturdy), and the capacity of A was determined and broken down into carboxylation efficiency (c.e.), light- and CO2-saturated A, and stomatal conductance (gs) components. The limitations on A measured at ambient CO2 concentration (A350) were estimated. No cultivar difference was observed when A350 was plotted versus leaf water potential (Ψw). Light- and CO2-saturated A, c.e., and gs decreased with decreasing leaf Ψw, but of the corresponding photosynthesis limitations only those caused by insufficient c.e. and gs increased. Thus, reduced stomatal aperture and Calvin cycle activity, but not electron transport/photophosphorylation, appeared to be major reasons for drought stress-induced inhibition of A350. WUE measured as A350/gs first increased with stomatal closure down to a gs of about 0.25 mol H2O m−2 s−1 (Ψw = −1.6 MPa). However, it was predicted that A350/gs would decrease with more severe stress due to inhibition of c.e.
机译:确定控制光合作用速率(A)和水分利用效率(WUE)的可变性的光合作用机械的组件,并确定组件过程在多大程度上限制A和WUE的程度,具有理论和实践意义出现缺水胁迫。为此,在两个生长室生长的小麦品种(Triticum aestivum L.cv TAM W-101和cv Sturdy)中确定了CO2和H2O的叶片交换,并确定了A的能力并将其分解为羧化效率( ce),光和CO2饱和的A,以及气孔电导(gs)组件。估算了在环境CO2浓度(A350)下测得的A限制。当绘制A350对叶水势(Ψw)时,没有观察到品种差异。光和CO2饱和的A,c.e和gs随叶片Ψw的减少而降低,但相应的光合作用限制仅是由c.e.不足引起的。和gs增加。因此,降低的气孔孔径和Calvin循环活性,而不是电子传递/光磷酸化作用,似乎是干旱胁迫诱导的A350抑制的主要原因。 WUE的测量值为A350 / gs,首先随着气孔关闭而下降至gs约为0.25 mol H2O m-2 s-1(Ψw= -1.6 MPa)。然而,据预测,由于抑制ce.e,A350 / gs将随着更严重的压力而降低。

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