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Assembly Line Polyketide Synthases: Mechanistic Insights and Unsolved Problems

[Image: see text] Two hallmarks of assembly line polyketide synthases have motivated an interest in these unusual multienzyme systems, their stereospecificity and their capacity for directional biosynthesis. In this review, we summarize the state of knowledge regarding the mechanistic origins of the...

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Autores principales: Khosla, Chaitan, Herschlag, Daniel, Cane, David E., Walsh, Christopher T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4020578/
https://www.ncbi.nlm.nih.gov/pubmed/24779441
http://dx.doi.org/10.1021/bi500290t
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author Khosla, Chaitan
Herschlag, Daniel
Cane, David E.
Walsh, Christopher T.
author_facet Khosla, Chaitan
Herschlag, Daniel
Cane, David E.
Walsh, Christopher T.
author_sort Khosla, Chaitan
collection PubMed
description [Image: see text] Two hallmarks of assembly line polyketide synthases have motivated an interest in these unusual multienzyme systems, their stereospecificity and their capacity for directional biosynthesis. In this review, we summarize the state of knowledge regarding the mechanistic origins of these two remarkable features, using the 6-deoxyerythronolide B synthase as a prototype. Of the 10 stereocenters in 6-deoxyerythronolide B, the stereochemistry of nine carbon atoms is directly set by ketoreductase domains, which catalyze epimerization and/or diastereospecific reduction reactions. The 10th stereocenter is established by the sequential action of three enzymatic domains. Thus, the problem has been reduced to a challenge in mainstream enzymology, where fundamental gaps remain in our understanding of the structural basis for this exquisite stereochemical control by relatively well-defined active sites. In contrast, testable mechanistic hypotheses for the phenomenon of vectorial biosynthesis are only just beginning to emerge. Starting from an elegant theoretical framework for understanding coupled vectorial processes in biology [Jencks, W. P. (1980) Adv. Enzymol. Relat. Areas Mol. Biol. 51, 75–106], we present a simple model that can explain assembly line polyketide biosynthesis as a coupled vectorial process. Our model, which highlights the important role of domain–domain interactions, not only is consistent with recent observations but also is amenable to further experimental verification and refinement. Ultimately, a definitive view of the coordinated motions within and between polyketide synthase modules will require a combination of structural, kinetic, spectroscopic, and computational tools and could be one of the most exciting frontiers in 21st Century enzymology.
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spelling pubmed-40205782015-04-29 Assembly Line Polyketide Synthases: Mechanistic Insights and Unsolved Problems Khosla, Chaitan Herschlag, Daniel Cane, David E. Walsh, Christopher T. Biochemistry [Image: see text] Two hallmarks of assembly line polyketide synthases have motivated an interest in these unusual multienzyme systems, their stereospecificity and their capacity for directional biosynthesis. In this review, we summarize the state of knowledge regarding the mechanistic origins of these two remarkable features, using the 6-deoxyerythronolide B synthase as a prototype. Of the 10 stereocenters in 6-deoxyerythronolide B, the stereochemistry of nine carbon atoms is directly set by ketoreductase domains, which catalyze epimerization and/or diastereospecific reduction reactions. The 10th stereocenter is established by the sequential action of three enzymatic domains. Thus, the problem has been reduced to a challenge in mainstream enzymology, where fundamental gaps remain in our understanding of the structural basis for this exquisite stereochemical control by relatively well-defined active sites. In contrast, testable mechanistic hypotheses for the phenomenon of vectorial biosynthesis are only just beginning to emerge. Starting from an elegant theoretical framework for understanding coupled vectorial processes in biology [Jencks, W. P. (1980) Adv. Enzymol. Relat. Areas Mol. Biol. 51, 75–106], we present a simple model that can explain assembly line polyketide biosynthesis as a coupled vectorial process. Our model, which highlights the important role of domain–domain interactions, not only is consistent with recent observations but also is amenable to further experimental verification and refinement. Ultimately, a definitive view of the coordinated motions within and between polyketide synthase modules will require a combination of structural, kinetic, spectroscopic, and computational tools and could be one of the most exciting frontiers in 21st Century enzymology. American Chemical Society 2014-04-29 2014-05-13 /pmc/articles/PMC4020578/ /pubmed/24779441 http://dx.doi.org/10.1021/bi500290t Text en Copyright © 2014 American Chemical Society
spellingShingle Khosla, Chaitan
Herschlag, Daniel
Cane, David E.
Walsh, Christopher T.
Assembly Line Polyketide Synthases: Mechanistic Insights and Unsolved Problems
title Assembly Line Polyketide Synthases: Mechanistic Insights and Unsolved Problems
title_full Assembly Line Polyketide Synthases: Mechanistic Insights and Unsolved Problems
title_fullStr Assembly Line Polyketide Synthases: Mechanistic Insights and Unsolved Problems
title_full_unstemmed Assembly Line Polyketide Synthases: Mechanistic Insights and Unsolved Problems
title_short Assembly Line Polyketide Synthases: Mechanistic Insights and Unsolved Problems
title_sort assembly line polyketide synthases: mechanistic insights and unsolved problems
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4020578/
https://www.ncbi.nlm.nih.gov/pubmed/24779441
http://dx.doi.org/10.1021/bi500290t
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