Yin Xinyou, van der Putten Peter E L, Driever Steven M, Struik Paul C
Centre for Crop Systems Analysis, Department of Plant Sciences, Wageningen University, PO Box 430, 6700 AK Wageningen, The Netherlands
Centre for Crop Systems Analysis, Department of Plant Sciences, Wageningen University, PO Box 430, 6700 AK Wageningen, The Netherlands.
J Exp Bot. 2016 Apr;67(9):2699-714. doi: 10.1093/jxb/erw104. Epub 2016 Mar 11.
A small bundle-sheath conductance (g bs) is essential for the C4 CO2-concentrating mechanism to suppress photorespiration effectively. To predict the productivity of C4 crops accurately under global warming, it is necessary to examine whether and how g bs responds to temperature. We investigated the temperature response of g bs in maize by fitting a C4 photosynthesis model to combined gas exchange and chlorophyll fluorescence measurements of irradiance and CO2 response curves at 21% and 2% O2 within the range of 13.5-39 °C. The analysis was based on reported kinetic constants of C4 Rubisco and phosphoenolpyruvate carboxylase and temperature responses of C3 mesophyll conductance (g m). The estimates of g bs varied greatly with leaf temperature. The temperature response of g bs was well described by the peaked Arrhenius equation, with the optimum temperature being ~34 °C. The assumed temperature responses of g m had only a slight impact on the temperature response of g bs In contrast, using extreme values of some enzyme kinetic constants changed the shape of the response, from the peaked optimum response to the non-peaked Arrhenius pattern. Further studies are needed to confirm such an Arrhenius response pattern from independent measurement techniques and to assess whether it is common across C4 species.
较小的维管束鞘导度(gbs)对于C4二氧化碳浓缩机制有效抑制光呼吸至关重要。为了准确预测全球变暖条件下C4作物的生产力,有必要研究gbs是否以及如何对温度作出响应。我们通过将C4光合作用模型拟合到在13.5 - 39°C范围内21%和2% O2条件下辐照度和CO2响应曲线的气体交换与叶绿素荧光联合测量结果,研究了玉米中gbs的温度响应。该分析基于已报道的C4核酮糖-1,5-二磷酸羧化酶(Rubisco)和磷酸烯醇式丙酮酸羧化酶的动力学常数以及C3叶肉导度(gm)的温度响应。gbs的估计值随叶片温度变化很大。gbs的温度响应能用峰值阿累尼乌斯方程很好地描述,最适温度约为34°C。假设的gm温度响应对gbs的温度响应影响很小。相反,使用某些酶动力学常数的极值会改变响应的形状,从峰值最优响应变为非峰值阿累尼乌斯模式。需要进一步研究以通过独立测量技术确认这种阿累尼乌斯响应模式,并评估其是否在C4物种中普遍存在。