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Structure and Function of the α-Hydroxylation Bimodule of the Mupirocin Polyketide Synthase.
Winter, Ashley J; Khanizeman, R Nisha; Barker-Mountford, Abigail M C; Devine, Andrew J; Wang, Luoyi; Song, Zhongshu; Davies, Jonathan A; Race, Paul R; Williams, Christopher; Simpson, Thomas J; Willis, Christine L; Crump, Matthew P.
Afiliação
  • Winter AJ; School of Chemistry University of Bristol Bristol BS8 1TS UK.
  • Khanizeman RN; School of Chemistry University of Bristol Bristol BS8 1TS UK.
  • Barker-Mountford AMC; School of Chemistry University of Bristol Bristol BS8 1TS UK.
  • Devine AJ; School of Chemistry University of Bristol Bristol BS8 1TS UK.
  • Wang L; Institute of Microbiology Chinese Academy of Sciences Beijing 100101 China.
  • Song Z; School of Chemistry University of Bristol Bristol BS8 1TS UK.
  • Davies JA; School of Chemistry University of Bristol Bristol BS8 1TS UK.
  • Race PR; School of Biochemistry University of Bristol Bristol BS8 1TD UK.
  • Williams C; current address School of Natural and Environmental Sciences Newcastle University Newcastle upon Tyne NE1 7RU UK.
  • Simpson TJ; School of Chemistry University of Bristol Bristol BS8 1TS UK.
  • Willis CL; School of Chemistry University of Bristol Bristol BS8 1TS UK.
  • Crump MP; School of Chemistry University of Bristol Bristol BS8 1TS UK.
Angew Chem Weinheim Bergstr Ger ; 135(47): e202312514, 2023 Nov 20.
Article em En | MEDLINE | ID: mdl-38515435
ABSTRACT
Mupirocin is a clinically important antibiotic produced by a trans-AT Type I polyketide synthase (PKS) in Pseudomonas fluorescens. The major bioactive metabolite, pseudomonic acid A (PA-A), is assembled on a tetrasubstituted tetrahydropyran (THP) core incorporating a 6-hydroxy group proposed to be introduced by α-hydroxylation of the thioester of the acyl carrier protein (ACP) bound polyketide chain. Herein, we describe an in vitro approach combining purified enzyme components, chemical synthesis, isotopic labelling, mass spectrometry and NMR in conjunction with in vivo studies leading to the first characterisation of the α-hydroxylation bimodule of the mupirocin biosynthetic pathway. These studies reveal the precise timing of hydroxylation by MupA, substrate specificity and the ACP dependency of the enzyme components that comprise this α-hydroxylation bimodule. Furthermore, using purified enzyme, it is shown that the MmpA KS0 shows relaxed substrate specificity, suggesting precise spatiotemporal control of in trans MupA recruitment in the context of the PKS. Finally, the detection of multiple intermodular MupA/ACP interactions suggests these bimodules may integrate MupA into their assembly.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article