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合成催化孔道

Synthetic catalytic pores.

作者信息

Sakai Naomi, Sordé Nathalie, Matile Stefan

机构信息

Department of Organic Chemistry, University of Geneva, CH-1211 Geneva, Switzerland.

出版信息

J Am Chem Soc. 2003 Jul 2;125(26):7776-7. doi: 10.1021/ja029845w.

Abstract

Catalytic activity of a synthetic multifunctional pore is studied in large unilamellar vesicles under conditions where substrate and synthetic catalytic pore (SCP) approach the membrane either from the same side (cis catalysis) or from opposite sides (trans catalysis). A synthetic supramolecular rigid-rod beta-barrel with excellent ion channel characteristics is identified as SCP using 8-acetoxypyrene-1,3,6-trisulfonate (AcPTS) as model substrate. The key finding is that application of supportive membrane potentials increases the initial velocity of AcPTS esterolysis (v0). This results in an increase of Vmax beyond experimental error (+30%), whereas KM increases less significantly. Long-range electrostatic steering by the membrane potential, possibly guiding substrates into the transmembrane catalyst and, more importantly, accelerating product release (foff = 1.3) is discussed as one possible explanation of this global reduction of catalyst saturation. Control experiments show, inter alia, that similarly strong changes do not occur with opposing membrane potentials.

摘要

在底物和合成催化孔(SCP)从同一侧(顺式催化)或相对两侧(反式催化)接近膜的条件下,研究了合成多功能孔在大单层囊泡中的催化活性。使用8-乙酰氧基芘-1,3,6-三磺酸盐(AcPTS)作为模型底物,将具有优异离子通道特性的合成超分子刚性棒状β-桶鉴定为SCP。关键发现是施加支持性膜电位会增加AcPTS酯解的初始速度(v0)。这导致Vmax增加超过实验误差(+30%),而KM增加不太显著。膜电位的远程静电引导,可能将底物引导至跨膜催化剂中,更重要的是加速产物释放(foff = 1.3),被讨论为这种催化剂饱和度整体降低的一种可能解释。对照实验尤其表明,相反的膜电位不会发生类似的强烈变化。

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