菱形蛋白酶GlpG活性位点氢键网络的相互作用能较弱。

The Journal of General Physiology Pub Date : 2019-03-04 Epub Date: 2018-11-12 DOI:10.1085/jgp.201812047
Kristen A Gaffney, Heedeok Hong
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引用次数: 2

摘要

膜内菱形蛋白酶特别令人感兴趣,因为它们具有水解埋在膜中的底物的肽键的功能。细菌菱形蛋白酶GlpG的晶体结构揭示了一个催化二联体(Ser201- his254)和一个氧阴离子孔(His150/Asn154/ Ser201的主酰胺)被蛋白质基质包围并与一个狭窄的水通道相连。虽然已经解决了多个晶体结构,但对GlpG的催化机理还不完全了解。由于它是一种丝氨酸蛋白酶,活性位点残基之间的氢键相互作用被认为在催化循环中起着关键作用。在这里,我们剖析了大肠杆菌GlpG的活性位点残基His254, Ser201和Asn154之间的相互作用能,它们形成了一个氢键网络。我们结合了双突变周期分析和稳定性测量使用空间诱捕。在温和洗涤剂中,活性位点残基与His254和Ser201之间的-1.4 kcal/mol和Ser201和Asn154之间的-0.2 kcal/mol的相互作用能(ΔΔG Inter)弱耦合。此外,通过分析活性位点残基单突变的传播,我们发现这些残基不仅对GlpG的功能很重要,而且对其折叠协同性也很重要。与其他典型丝氨酸蛋白酶相比,GlpG的蛋白水解异常缓慢,部分原因可能是催化二联体中Ser和His之间的弱相互作用。我们的研究结果表明,活性部位的弱氢键足以实现菱形蛋白酶的蛋白水解功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The rhomboid protease GlpG has weak interaction energies in its active site hydrogen bond network.

The rhomboid protease GlpG has weak interaction energies in its active site hydrogen bond network.

The rhomboid protease GlpG has weak interaction energies in its active site hydrogen bond network.

The rhomboid protease GlpG has weak interaction energies in its active site hydrogen bond network.

Intramembrane rhomboid proteases are of particular interest because of their function to hydrolyze a peptide bond of a substrate buried in the membrane. Crystal structures of the bacterial rhomboid protease GlpG have revealed a catalytic dyad (Ser201-His254) and oxyanion hole (His150/Asn154/the backbone amide of Ser201) surrounded by the protein matrix and contacting a narrow water channel. Although multiple crystal structures have been solved, the catalytic mechanism of GlpG is not completely understood. Because it is a serine protease, hydrogen bonding interactions between the active site residues are thought to play a critical role in the catalytic cycle. Here, we dissect the interaction energies among the active site residues His254, Ser201, and Asn154 of Escherichia coli GlpG, which form a hydrogen bonding network. We combine double mutant cycle analysis with stability measurements using steric trapping. In mild detergent, the active site residues are weakly coupled with interaction energies (ΔΔG Inter) of ‒1.4 kcal/mol between His254 and Ser201 and ‒0.2 kcal/mol between Ser201 and Asn154. Further, by analyzing the propagation of single mutations of the active site residues, we find that these residues are important not only for function but also for the folding cooperativity of GlpG. The weak interaction between Ser and His in the catalytic dyad may partly explain the unusually slow proteolysis by GlpG compared with other canonical serine proteases. Our result suggests that the weak hydrogen bonds in the active site are sufficient to carry out the proteolytic function of rhomboid proteases.

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