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Limitations of Photosynthesis in Pinus taeda L. (Loblolly Pine) at Low Soil Temperatures

机译:低土壤温度下火炬松(光油松)光合作用的局限性

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摘要

The relative importance of stomatal and nonstomatal limitations to net photosynthesis (A) and possible signals responsible for stomatal limitations were investigated in unhardened Pinus taeda seedlings at low soil temperatures. After 2 days at soil temperatures between 13 and 7°C, A was reduced by 20 to 50%, respectively. The reduction in A at these moderate root-chilling conditions appeared to be the result of stomatal limitations, based on the decrease in intercellular CO2 concentrations (ci). This conclusion was supported by A versus ci analysis and measurements of O2 evolution at saturating CO2, which suggested increases in stomatal but not biochemical limitations at these soil temperatures. Nonuniform stomatal apertures, which were demonstrated with abscisic acid, were not apparent 2 days after root chilling, and results of our A versus ci analysis appear valid. Bulk shoot water potential (ψ) declined as soil temperature dropped below 16°C. When half the root system of seedlings was chilled, shoot ψ and gas-exchange rates did not decline. Thus, nonhydraulic root-shoot signals were not implicated in stomatal limitations. The initial decrease in leaf conductance to water vapor after root chilling appeared to precede any detectable decrease in bulk fascicle ψ, but may be in response to a decrease in turgor of epidermal cells. These reductions in leaf conductance to water vapor, which occurred within 30 minutes of root chilling, could be delayed and temporarily reversed by reducing the leaf-to-air vapor-pressure deficit, suggesting that hydraulic signals may be involved in initiating stomatal closure. By independently manipulating the leaf-to-air vapor-pressure deficit of individual fascicles, we could induce uptake of water vapor through stomata, suggesting that nonsaturated conditions occur in the intercellular airspaces. There was an anomaly in our results on seedlings maintained for 2 days at soil temperatures below 7°C. Lower A appeared primarily the result of nonstomatal limitations, based on large increases in calculated ci and A versus ci analysis. In contrast, measurements of O2 evolution at saturating CO2 concentrations implied nonstomatal limitations per se did not increase at these temperatures. One explanation for this paradox is that calculations of ci are unreliable at very low gas-exchange rates because of inadequate measurement resolution, and limitations of A are predominantly stomatal. An alternative interpretation is that increases in ci are real and the results from O2-evolution measurements are in error. The high CO2 concentration used in O2-evolution measurements (15%) may have overcome nonstomatal limitations by enzymes that were down-regulated by a feedback mechanism. In this scenario, carbohydrate feedback limitations may be responsible for nonstomatal reductions in A after 2 days at soil temperatures below 7°C.
机译:在土壤温度低的情况下,在未硬化的针田松幼苗中研究了气孔和非气孔限制对净光合作用的相对重要性(A)以及可能引起气孔限制的信号。在13至7°C的土壤温度下放置2天后,A分别降低了20%至50%。在这些中等根部低温条件下,A的减少似乎是气孔限制的结果,这是基于细胞间CO2浓度(ci)的降低。 A对ci分析和饱和CO2下O2的测量结果支持了这一结论,这表明在这些土壤温度下气孔的增加而不是生化限制。根冷后两天,脱落酸证明气孔孔径不均匀,我们的A vs ci分析结果似乎是有效的。随着土壤温度降至16°C以下,大头枝水势(ψ)下降。将幼苗的一半根系冷却后,芽shoot和气体交换率不会降低。因此,非液压根射信号不涉及气孔限制。根部冷害后,叶片对水蒸气的电导率的最初下降似乎先于体束ψ的任何可检测到的下降,但可能是由于表皮细胞的膨胀降低所致。根部冷害后30分钟内发生的这些叶片对水蒸气的电导降低可以通过减少叶片对空气的蒸气压亏缺而被延迟和暂时逆转,表明水力信号可能参与了气孔的闭合。通过独立地操纵单个束的叶对空气的蒸气压不足,我们可以诱导气孔吸收水蒸气,这表明非饱和条件发生在细胞间空域中。在低于7°C的土壤温度下维持2天的幼苗,我们的结果存在异常。较低的A主要表现为非气孔限制的结果,这是基于计算出的ci和A与ci分析相比大幅增加所致。相反,在饱和CO2浓度下测量O2的逸出量暗示着在这些温度下非气孔限制本身并未增加。这种悖论的一种解释是,由于测量分辨率不足,在极低的气体交换率下,ci的计算不可靠,而A的局限性主要是气孔。另一种解释是,ci的增加是真实的,而O2演变测量的结果是错误的。 O2排放测量中使用的高CO2浓度(15%)可能已经克服了由反馈机制下调的酶对非气孔的限制。在这种情况下,碳水化合物反馈的限制可能是造成土壤温度低于7°C 2天后非气孔A减少的原因。

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