Meyer S, Genty B
Groupe Photosynthse et Environnement, Laboratoire d'Ecophysiologie Vgtale, Bt. 362, Centre National de la Recherche Scientifique URA 2154, Universit Paris Sud, Orsay 91405, France.
Plant Physiol. 1998 Mar;116(3):947-57. doi: 10.1104/pp.116.3.947.
Imaging of photochemical yield of photosystem II (PSII) computed from leaf chlorophyll fluorescence images and gas-exchange measurements were performed on Rosa rubiginosa leaflets during abscisic acid (ABA) addition. In air ABA induced a decrease of both the net CO2 assimilation (An) and the stomatal water vapor conductance (gs). After ABA treatment, imaging in transient nonphotorespiratory conditions (0.1% O2) revealed a heterogeneous decrease of PSII photochemical yield. This decline was fully reversed by a transient high CO2 concentration (7400 mol mol-1) in the leaf atmosphere. It was concluded that ABA primarily affected An by decreasing the CO2 supply at ribulose-1,5-bisphosphate carboxylase/oxygenase. Therefore, the An versus intercellular mole fraction (Ci) relationship was assumed not to be affected by ABA, and images of Ci and gs were constructed from images of PSII photochemical yield under nonphotorespiratory conditions. The distribution of gs remained unimodal following ABA treatment. A comparison of calculations of Ci from images and gas exchange in ABA-treated leaves showed that the overestimation of Ci estimated from gas exchange was only partly due to heterogeneity. This overestimation was also attributed to the cuticular transpiration, which largely affects the calculation of the leaf conductance to CO2, when leaf conductance to water is low.
在添加脱落酸(ABA)期间,对多花蔷薇小叶进行了从叶片叶绿素荧光图像计算得到的光系统II(PSII)光化学产量的成像以及气体交换测量。在空气中,ABA导致净二氧化碳同化量(An)和气孔水汽导度(gs)均下降。ABA处理后,在瞬态非光呼吸条件(0.1% O2)下的成像显示PSII光化学产量存在异质性下降。叶片大气中瞬态高二氧化碳浓度(7400 μmol mol-1)可使这种下降完全逆转。得出的结论是,ABA主要通过降低核酮糖-1,5-二磷酸羧化酶/加氧酶处的二氧化碳供应来影响An。因此,假定An与细胞间摩尔分数(Ci)的关系不受ABA影响,并在非光呼吸条件下根据PSII光化学产量图像构建了Ci和gs图像。ABA处理后,gs的分布仍保持单峰。对ABA处理叶片中从图像计算得到的Ci与气体交换的比较表明,从气体交换估算的Ci的高估仅部分归因于异质性。这种高估还归因于角质层蒸腾,当叶片对水的导度较低时,角质层蒸腾会极大地影响叶片对二氧化碳的导度计算。