首页> 外文期刊>Plant physiology >DETERMINING PHOTOSYNTHETIC PARAMETERS FROM LEAF CO2 EXCHANGE AND CHLOROPHYLL FLUORESCENCE - RIBULOSE-1,5-BISPHOSPHATE CARBOXYLASE OXYGENASE SPECIFICITY FACTOR, DARK RESPIRATION IN THE LIGHT, EXCITATION DISTRIBUTION BETWEEN PHOTOSYSTEMS, ALTERNATIVE E
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DETERMINING PHOTOSYNTHETIC PARAMETERS FROM LEAF CO2 EXCHANGE AND CHLOROPHYLL FLUORESCENCE - RIBULOSE-1,5-BISPHOSPHATE CARBOXYLASE OXYGENASE SPECIFICITY FACTOR, DARK RESPIRATION IN THE LIGHT, EXCITATION DISTRIBUTION BETWEEN PHOTOSYSTEMS, ALTERNATIVE E

机译:从叶片CO2交换和叶绿素荧光测定光合参数-核糖1,5-双磷酸羧化酶氧合酶的特异性因子,光线下的暗呼吸,光系统,交替电子之间的激发分布

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摘要

Using simultaneous measurements of leaf gas exchange and chlorophyll fluorescence, we determined the excitation partitioning to photosystem II (PSII), the CO2/O-2, specificity of ribulose-1,5-bisphosphate carboxylase/oxygenase, the dark respiration in the light, and the alternative electron transport rate to accepters other than bisphosphoglycerate, and the transport resistance for CO2 in the mesophyll cells for individual leaves of herbaceous and tree species. The specificity of ribulose-1,5-bisphosphate carboxylase/oxygenase for CO2 was determined from the slope of the O-2 dependence of the CO2 compensation point between 1.5 and 21% O-2. Its value, on the basis of dissolved CO2 and O-2 concentrations at 25.5 degrees C, varied between 86 and 89. Dark respiration in the light, estimated from the difference between the CO2 compensation point and the CO2 photocompensation point, was about 20 to 50% of the respiration rate in the dark. The excitation distribution to PSII was estimated from the extrapolation of the dependence of the PSII quantum yield on F/F-m to F = 0, where F is steady-state and F-m is pulse-saturated fluorescence, and varied between 0.45 and 0.6. The alternative electron transport rate was found as the difference between the electron transport rates calculated from fluorescence and from gas exchange, and at low CO2 concentrations and 10 to 21% O-2, it was 25 to 30% of the maximum electron transport. The calculated mesophyll diffusion resistance accounted for about 20 to 30% of the total mesophyll resistance, which also includes carboxylation resistance. Whole-leaf photosynthesis is limited by gas phase, mesophyll diffusion, and carboxylation resistances in nearly the same proportion in both herbaceous species and trees. [References: 46]
机译:通过同时测量叶片气体交换和叶绿素荧光,我们确定了激发分配到光系统II(PSII),CO2 / O-2,核糖-1,5-双磷酸羧化酶/加氧酶的特异性,光照下的暗呼吸,以及除双磷酸甘油酸酯以外的其他电子向受体的替代电子传输速率,以及草本植物和树木物种的单个叶在叶肉细胞中对CO2的传输阻力。从1.5和21%O-2之间的CO2补偿点的O-2依赖性斜率确定核糖-1,5-双磷酸羧化酶/加氧酶对CO2的特异性。根据25.5摄氏度时溶解的CO2和O-2浓度,其值在86到89之间变化。根据CO2补偿点和CO2光补偿点之间的差值估算,光中的暗呼吸约为20到20℃。在黑暗中呼吸速率达到50%。通过将PSII量子产率对F / F-m的依赖关系外推至F = 0来估算PSII的激发分布,其中F为稳态,F-m为脉冲饱和荧光,且在0.45至0.6之间变化。发现替代电子传输速率是由荧光和气体交换计算得出的电子传输速率之间的差,并且在低CO2浓度和10%至21%的O-2下,它是最大电子传输速率的25%至30%。计算得出的叶肉抗扩散性约占总叶肉抗性的20%至30%,其中也包括羧化抗性。整个叶片的光合作用都受到气相,叶肉扩散和抗羧化性的限制,而无论是草本物种还是树木,其比例都几乎相同。 [参考:46]

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