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SIMPLE EXPLANATION OF THE MISSES IN THE COOPERATION OF CHARGES IN PHOTOSYNTHETIC O2 EVOLUTION
Authors:Marie-Jose  Delrieu
Institution:Centre National de la Recherche Scientifique, Laboratoire de Photosynthèse, 91-Gif-sur-Yvette, France
Abstract:Abstract —In the model of Forbush et at. (1971) the observed damping of the flash yield sequence of photosynthetic O2 evolution was related to a certain percentage of ‘misses’ (α; i.e. centers not converted). The possibility of a miss was supposed to be equal for all states S0.1,2,3. We propose a new model and a new recurrence law that gives better quantitative agreement with the O2 yield oscillations observed in Chlorella during a sequence of flashes. We find a better fit with all experimental results by assuming very unequal misses; the misses occur nearly exclusively on S2 (and also sometimes on S3). In the simpler case of only one miss on one state, half of S2 exists as an inactive form S2+- because it is in apparent equilibrium with pool A. The active form of S2 is converted to S3 in a flash and the unchanged inactive form S2+- explains the miss: S 1 hvS2+-=S2hvS3 (S2+- is a transition state between S1 to S2 associated with Q-). In the dark, the apparent equilibrium constant KA between pool A and Q (i.e. S0, S1 in the dark) is very large; this explains why there is no miss on these states. In light, the experimental value of KA between pool A and Q (i.e. S2, S3 in the light) is 1, and this explains why the misses are large for states S2, S3; i.e., S2+-/S2- 1 and sometimes S3+-/S3?0–1. This new model predicts that the total number of active states ΣSi=S0+S1+S2+S3 is an oscillating function of the flash number. This sum 2S, is also the number of trapping centers for excitons. As fluorescence is proportional to excitons that are not trapped, our model explains why the fluorescence oscillates as a function of the flash number. We find also that the initial rates of O2 evolution after (n - 1) flashes vs the 02 yield of the nth flash are not exactly on a straight line, which also favors our model.
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