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抗霉素A与叶绿体F1 - ATP合酶结合的动力学分析。过度激活过程的模型。

Kinetic analysis of tentoxin binding to chloroplast F1-ATPase. A model for the overactivation process.

作者信息

Santolini J, Haraux F, Sigalat C, Moal G, André F

机构信息

Section de Bioénergétique, Département de Biologie Cellulaire et Moléculaire, Commissariat à l'Energie Atomique-Saclay, F-91191 Gif-sur-Yvette Cedex, France.

出版信息

J Biol Chem. 1999 Jan 8;274(2):849-58. doi: 10.1074/jbc.274.2.849.

Abstract

The mechanism of action of tentoxin on the soluble part (chloroplast F1 H+-ATPase; CF1) of chloroplast ATP synthase was analyzed in the light of new kinetic and equilibrium experiments. Investigations were done regarding the functional state of the enzyme (activation, bound nucleotide, catalytic turnover). Dialysis and binding data, obtained with 14C-tentoxin, fully confirmed the existence of two tentoxin binding sites of distinct dissociation constants consistent with the observed Kinhibition and Koveractivation. This strongly supports a two-site model of tentoxin action on CF1. Kinetic and thermodynamic parameters of tentoxin binding to the first site (Ki = 10 nM; kon = 4.7 x 10(4) s-1.M-1) were determined from time-resolved activity assays. Tentoxin binding to the high affinity site was found independent on the catalytic state of the enzyme. The analysis of the kinetics of tentoxin binding on the low affinity site of the enzyme showed strong evidence for an interaction between this site and the nucleotide binding sites and revealed a complex relationship between the catalytic state and the reactivation process. New catalytic states of CF1 devoid of epsilon-subunit were detected: a transient overstimulated state, and a dead end complex unable to bind a second tentoxin molecule. Our experiments led to a kinetic model for the reactivation phenomenon for which rate constants were determined. The implications of this model are discussed in relation to the previous mechanistic hypotheses on the effect of tentoxin.

摘要

根据新的动力学和平衡实验,分析了细交链孢菌酮酸对叶绿体ATP合酶可溶性部分(叶绿体F1 H⁺-ATP酶;CF1)的作用机制。针对该酶的功能状态(激活、结合核苷酸、催化周转)进行了研究。用¹⁴C-细交链孢菌酮酸获得的透析和结合数据,充分证实了存在两个具有不同解离常数的细交链孢菌酮酸结合位点,这与观察到的抑制常数(Kinhibition)和过度激活常数(Koveractivation)一致。这有力地支持了细交链孢菌酮酸对CF1作用的双位点模型。通过时间分辨活性测定法确定了细交链孢菌酮酸与第一个位点结合的动力学和热力学参数(Ki = 10 nM;kon = 4.7×10⁴ s⁻¹·M⁻¹)。发现细交链孢菌酮酸与高亲和力位点的结合与酶的催化状态无关。对细交链孢菌酮酸在酶的低亲和力位点上结合动力学的分析表明,该位点与核苷酸结合位点之间存在相互作用的有力证据,并揭示了催化状态与再激活过程之间的复杂关系。检测到了缺乏ε亚基的CF1的新催化状态:一种短暂的过度刺激状态,以及一种无法结合第二个细交链孢菌酮酸分子的终产物复合物。我们的实验得出了一个再激活现象的动力学模型,并确定了速率常数。结合之前关于细交链孢菌酮酸作用的机制假说,讨论了该模型的意义。

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