Chamorovsky S K, Remennikov S M, Kononenko A A, Venediktov P S, Rubin A B
Biochim Biophys Acta. 1976 Apr 9;430(1):62-70. doi: 10.1016/0005-2728(76)90222-x.
A method for calculating the rate constant (KA1A2) for the oxidation of the primary electron acceptor (A1) by the secondary one (A2) in the photosynthetic electron transport chain of purple bacteria is proposed. The method is based on the analysis of the dark recovery kinetics of reaction centre bacteriochlorophyll (P) following its oxidation by a short single laser pulse at a high oxidation-reduction potential of the medium. It is shown that in Ectothiorhodospira shaposhnikovii there is little difference in the value of KA1A2 obtained by this method from that measured by the method of Parson ((1969) Biochim, Biophys. Acta 189, 384-396), namely: (4.5 +/- 1.4)-10(3) s-1 and (6.9 +/- 1.2)-10(3) s-1, respectively. The proposed method has also been used for the estimation of the KA1A2 value in chromatophores of Rhodospirillum rubrum deprived of constitutive electron donors which are capable of reducing P+ at a rate exceeding this for the transfer of electron from A1 to A2. The method of Parson cannot be used in this case. The value of KA1A2 has been found to be (2.7 +/- 0.8)-10(3) s-1. The activation energies for the A1 to A2 electron transfer have also been determined. They are 12.4 kcal/mol and 9.9 kcal/mol for E. shaposhnikovii and R. rubrum, respectively.
提出了一种计算紫色细菌光合电子传递链中二级电子受体(A2)氧化一级电子受体(A1)的速率常数(KA1A2)的方法。该方法基于在介质的高氧化还原电位下,通过短单激光脉冲氧化反应中心细菌叶绿素(P)后,对其暗恢复动力学的分析。结果表明,在沙氏外硫红螺菌中,用该方法获得的KA1A2值与用帕森方法((1969) Biochim, Biophys. Acta 189, 384 - 396)测量的值差异不大,分别为:(4.5 ± 1.4)×10³ s⁻¹ 和 (6.9 ± 1.2)×10³ s⁻¹。所提出的方法还用于估计缺失组成型电子供体的深红红螺菌的载色体中的KA1A2值,这些组成型电子供体能够以超过电子从A1转移到A2的速率还原P⁺。在这种情况下不能使用帕森方法。已发现KA1A2值为(2.7 ± 0.8)×10³ s⁻¹。还确定了从A1到A2电子转移的活化能。对于沙氏外硫红螺菌和深红红螺菌,它们分别为12.4 kcal/mol和9.9 kcal/mol。