Ley A C, Butler W L
Biochim Biophys Acta. 1980 Sep 5;592(2):349-63. doi: 10.1016/0005-2728(80)90195-4.
Fluorescence of Porphyridium cruentum in state I (cells equilibrated in light absorbed predominantly by Photosystem I) and in state II (cells equilibrated in light absorbed appreciably by Photosystem II) was examined to determine how the distribution of excitation energy was altered in the transitions between state I and state II. Low temperature emission spectra of cells frozen state I and state II confirmed that a larger fraction of the excitation energy is delivered to Photosystem II in state I. Low temperature measurements showed that the yield of energy transfer from Photosystem II to Photosystem I was greater in state II and calculations indicated that the photochemical rate constant for such energy transfer was approximately twice as large in state II. Measurements at low temperature also showed that the cross sections and the spectral properties of the photosystems did not change in the transitions between state I and state II. In agreement with predictions made from the parameters measured at low temperature, the action spectra for oxygen evolution measured at room temperature were found to be the same in state I and state II.
研究了处于I态(细胞在主要被光系统I吸收的光中达到平衡)和II态(细胞在明显被光系统II吸收的光中达到平衡)的紫球藻的荧光,以确定在I态和II态之间的转变过程中激发能的分布是如何改变的。处于I态和II态的冷冻细胞的低温发射光谱证实,在I态中,更大比例的激发能被传递到光系统II。低温测量表明,在II态中从光系统II到光系统I的能量转移产率更高,并且计算表明,这种能量转移的光化学速率常数在II态中大约是I态中的两倍。低温测量还表明,在I态和II态之间的转变过程中,光系统的截面和光谱特性没有变化。与从低温测量的参数得出的预测一致,发现在室温下测量的产氧作用光谱在I态和II态中是相同的。