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理解在人工酶的支架中负电荷在 CO 加氢催化作用中的作用。

Understanding the role of negative charge in the scaffold of an artificial enzyme for CO hydrogenation on catalysis.

机构信息

Pacific Northwest National Laboratory, 902 Battelle Boulevard, MSIN J7-10, PO Box 999, Richland, WA, 99352, USA.

Admiral Instruments, Tempe, AZ, 85281, USA.

出版信息

J Biol Inorg Chem. 2024 Sep;29(6):625-638. doi: 10.1007/s00775-024-02070-0. Epub 2024 Aug 29.

DOI:10.1007/s00775-024-02070-0
PMID:39207604
Abstract

We have approached the construction of an artificial enzyme by employing a robust protein scaffold, lactococcal multidrug resistance regulator, LmrR, providing a structured secondary and outer coordination spheres around a molecular rhodium complex, [Rh(PNP)]. Previously, we demonstrated a 2-3 fold increase in activity for one Rh-LmrR construct by introducing positive charge in the secondary coordination sphere. In this study, a series of variants was made through site-directed mutagenesis where the negative charge is located in the secondary sphere or outer coordination sphere, with additional variants made with increasingly negative charge in the outer coordination sphere while keeping a positive charge in the secondary sphere. Placing a negative charge in the secondary or outer coordination sphere demonstrates decreased activity by a factor of two compared to the wild-type Rh-LmrR. Interestingly, addition of positive charge in the secondary sphere, with the negatively charged outer coordination sphere restores activity. Vibrational and NMR spectroscopy suggest minimal changes to the electronic density at the rhodium center, regardless of inclusion of a negative or positive charge in the secondary sphere, suggesting another mechanism is impacting catalytic activity, explored in the discussion.

摘要

我们通过使用坚固的蛋白质支架乳球菌多药耐药调节剂 LmrR 来构建人工酶,在分子铑配合物 [Rh(PNP)] 周围提供了结构化的二级和外部配位球。以前,我们通过在二级配位球中引入正电荷,证明了一种 Rh-LmrR 构建体的活性提高了 2-3 倍。在这项研究中,通过定点突变产生了一系列变体,其中负电荷位于二级或外部配位球中,并且在保持二级球中正电荷的同时,在外部配位球中产生了越来越多的负电荷。与野生型 Rh-LmrR 相比,在二级或外部配位球中放置负电荷会导致活性降低两倍。有趣的是,在外部配位球带负电荷的情况下,在二级球中添加正电荷可恢复活性。振动和 NMR 光谱表明,无论在二级球中是否包含负电荷或正电荷,铑中心的电子密度都几乎没有变化,这表明另一种机制正在影响催化活性,这在讨论中进行了探讨。

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本文引用的文献

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