Chemistry Division, Argonne National Laboratory, Argonne, Illinois 60439.
Proc Natl Acad Sci U S A. 1981 May;78(5):2957-61. doi: 10.1073/pnas.78.5.2957.
The chlorophyll a (Chl a) special-pair model of the primary donor of photosystem I (P700) does not account in a completely adequate fashion for the magnetic resonance properties observed for P700(+). Moreover, P700 is at least 420 mV easier to oxidize than is Chl a in vitro. Neither Chl a dimer formation nor selective ligation of Chl a can account for this potential difference. Enolization of the Chl a ring V beta-keto ester results in a very different pi electronic structure. The Chl a enol can be trapped as a silyl enol ether. In addition, the enol analog 9-desoxo-9,10-dehydro-Chl a can be prepared. Both the trapped enol and its 9-H analog are approximately 350 mV easier to oxidize than Chl a. The ESR spectrum of the cation radical consists of a single 6.1-G gaussian line that is line narrowed relative to that of Chl a(+) in a manner similar to P700(+). Electron-nuclear double resonance (ENDOR) spectroscopy resolves only a 3.5-MHz hyperfine splitting for the 3-methyl-group. The remaining splittings are all less than 3.5 MHz. The second moment of the ESR line of fully (13)C-enriched 9-desoxo-9,10-dehydro-Chl a(+) agrees with that of [(13)C]P700(+) to within 10%. Application of the special-pair model to the [(13)C]P700(+) second-moment data yields a 100% error. Ab initio molecular orbital calculations on ethyl chlorophyllide a enol cation bear out the ESR and ENDOR data. We conclude that a monomeric Chl a enol model provides a better description of the magnetic resonance parameters and oxidation potential of P700 than a Chl a special-pair model.
叶绿素 a (Chl a) 作为光系统 I (P700) 的原初电子供体的特殊对模型,不能完全充分地解释 P700(+)观察到的磁共振性质。此外,P700在体外比 Chl a 至少更容易被氧化 420 mV。Chl a 二聚体的形成或 Chl a 的选择性配位都不能解释这种电位差。Chl a 环 Vβ-酮酯的烯醇化导致完全不同的π电子结构。Chl a 烯醇可以被捕获为硅烷基烯醇醚。此外,可以制备出烯醇类似物 9-去氧-9,10-去氢-Chl a。被捕获的烯醇及其 9-H 类似物都比 Chl a 更容易被氧化约 350 mV。阳离子自由基的 ESR 谱由单个 6.1-G 高斯线组成,与 Chl a(+)的谱线相比,其线宽窄,类似于 P700(+)。电子-核双共振 (ENDOR) 光谱仅解析出 3-甲基的 3.5-MHz 超精细分裂。其余分裂均小于 3.5 MHz。完全 (13)C 富集的 9-去氧-9,10-去氢-Chl a(+)的 ESR 线的第二矩与 [(13)C]P700(+)的第二矩一致,误差在 10%以内。将特殊对模型应用于 [(13)C]P700(+)的第二矩数据会导致 100%的误差。对乙基叶绿素 a 烯醇阳离子的从头算分子轨道计算证实了 ESR 和 ENDOR 数据。我们得出结论,单体 Chl a 烯醇模型比 Chl a 特殊对模型更能描述 P700 的磁共振参数和氧化电位。