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一种稳定的脱水酶复合物催化V类羊毛硫肽中脱水氨基酸的形成。

A Stable Dehydratase Complex Catalyzes the Formation of Dehydrated Amino Acids in a Class V Lanthipeptide.

作者信息

Randall George T, Grant-Mackie Emily S, Chunkath Shayhan, Williams Elyse T, Middleditch Martin J, Tao Meifeng, Harris Paul W R, Brimble Margaret A, Bashiri Ghader

机构信息

School of Biological Sciences, The University of Auckland, Private Bag 92019, Auckland 1142, New Zealand.

School of Chemical Sciences, The University of Auckland, Private Bag 92019, Auckland 1142, New Zealand.

出版信息

ACS Chem Biol. 2024 Dec 20;19(12):2548-2556. doi: 10.1021/acschembio.4c00637. Epub 2024 Nov 25.

Abstract

Lanthipeptides are ribosomally synthesized and post-translationally modified peptides that bear the characteristic lanthionine (Lan) or methyllanthionine (MeLan) thioether linkages. (Me)Lan moieties bestow lanthipeptides with robust stability and diverse antimicrobial, anticancer, and antiallodynic activities. Installation of (Me)Lan requires dehydration of serine and threonine residues to 2,3-dehydroalanine (Dha) and ()-2,3-dehydrobutyrine (Dhb), respectively. LxmK and LxmY enzymes comprise the biosynthetic machinery of a newly discovered class V lanthipeptide, lexapeptide, and are proposed to catalyze the dehydration of serine and threonine residues in the precursor peptide. We demonstrate that LxmK and LxmY form a stable dehydratase complex to dehydrate precursor peptides. In addition, we present crystal structures of the LxmKY heterodimer, revealing structural and mechanistic features that enable iterative phosphorylation and elimination by the LxmKY complex. These findings provide molecular insights into class V lanthionine synthetases and lay the foundation for their applications as enzymatic tools in the biosynthesis of exquisitely modified peptides.

摘要

羊毛硫肽是核糖体合成并经翻译后修饰的肽,带有特征性的羊毛硫氨酸(Lan)或甲基羊毛硫氨酸(MeLan)硫醚键。(甲基)羊毛硫氨酸部分赋予羊毛硫肽强大的稳定性以及多样的抗菌、抗癌和抗痛觉过敏活性。(甲基)羊毛硫氨酸的形成需要丝氨酸和苏氨酸残基分别脱水生成2,3-脱氢丙氨酸(Dha)和()-2,3-脱氢丁氨酸(Dhb)。LxmK和LxmY酶构成了新发现的V类羊毛硫肽(lexapeptide)的生物合成机制,并被认为可催化前体肽中丝氨酸和苏氨酸残基的脱水反应。我们证明LxmK和LxmY形成了一个稳定的脱水酶复合物来使前体肽脱水。此外,我们展示了LxmKY异二聚体的晶体结构,揭示了使LxmKY复合物能够进行迭代磷酸化和消除反应的结构和机制特征。这些发现为V类羊毛硫氨酸合成酶提供了分子层面的见解,并为其作为酶工具应用于精细修饰肽的生物合成奠定了基础。

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