Structure and Mechanisms of Assembly-Line Polyketide Synthases

Author:

Soohoo Alexander M.12,Cogan Dillon P.34,Brodsky Krystal L.4,Khosla Chaitan142

Affiliation:

1. 3Sarafan ChEM-H, Stanford University, Stanford, California, USA

2. 1Department of Chemical Engineering, Stanford University, Stanford, California, USA; email: khosla@stanford.edu

3. 4Current affiliation: Department of Pharmacology and Pharmaceutical Sciences, University of Southern California, Los Angeles, California, USA

4. 2Department of Chemistry, Stanford University, Stanford, California, USA

Abstract

Three decades of studies on the multifunctional 6-deoxyerythronolide B synthase have laid a foundation for understanding the chemistry and evolution of polyketide antibiotic biosynthesis by a large family of versatile enzymatic assembly lines. Recent progress in applying chemical and structural biology tools to this prototypical assembly-line polyketide synthase (PKS) and related systems has highlighted several features of their catalytic cycles and associated protein dynamics. There is compelling evidence that multiple mechanisms have evolved in this enzyme family to channel growing polyketide chains along uniquely defined sequences of 10–100 active sites, each of which is used only once in the overall catalytic cycle of an assembly-line PKS. Looking forward, one anticipates major advances in our understanding of the mechanisms by which the free energy of a repetitive Claisen-like reaction is harnessed to guide the growing polyketide chain along the assembly line in a manner that is kinetically robust yet evolutionarily adaptable.

Publisher

Annual Reviews

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