Metabolic engineering of yeast for the synthesis of fatty acid and polyketide-based chemicals

Polyketides and fatty acids are of critical importance as biorenewable chemical precursors, biofuels, and pharmaceuticals. Both are synthesized via complex polyketide or fatty acid synthases, with many using acetyl-CoA and malonyl-CoA as starter and extender units. We have engineered and combined mu...

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Main Author: Silva, Nancy Da
Format: Text
Language:unknown
Published: ECI Digital Archives 2017
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DML
Online Access:https://dc.engconfintl.org/biochem_xx/78
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spelling fteci:oai:dc.engconfintl.org:biochem_xx-1060 2023-05-15T16:02:08+02:00 Metabolic engineering of yeast for the synthesis of fatty acid and polyketide-based chemicals Silva, Nancy Da 2017-07-19T07:00:00Z https://dc.engconfintl.org/biochem_xx/78 unknown ECI Digital Archives https://dc.engconfintl.org/biochem_xx/78 Biochemical and Molecular Engineering XX Engineering text 2017 fteci 2022-12-27T14:48:07Z Polyketides and fatty acids are of critical importance as biorenewable chemical precursors, biofuels, and pharmaceuticals. Both are synthesized via complex polyketide or fatty acid synthases, with many using acetyl-CoA and malonyl-CoA as starter and extender units. We have engineered and combined multiple pathways in the yeast Saccharomyces cerevisiae for the production of these valuable compounds and to allow the synthesis of novel variants. We have combined enzyme engineering (of the pathway and synthase enzymes), extensive metabolic pathway engineering for increased cofactor and precursor pools, and cultivation strategies to substantially increase titers and yields of a variety of products, including 6-methylsalicylic acid (6-MSA), dihydromonocolin L (DML; precursor to lovastatin), fatty acids (FAs) of varying lengths, and triacetic acid lactone (TAL). S. cerevisiae was engineered for the high-level production of TAL by overexpression of native and variant Gerbera hybrida 2-pyrone synthase (2-PS), engineering of the yeast metabolic pathways, and implementation of various cultivation strategies. These interventions increased TAL titer from 0.07 g/L to 10.5 g/L and yield from <1% to 44% of theoretical yield. Recent work has modified mitochondrial transport mechanisms and implemented cofactor-based driving forces as methods to enhance polyketide synthesis. Fatty acids are also of interest as both biofuel and chemical precursors. We have introduced heterologous fatty acid synthases into S. cerevisiae to allow the synthesis of short/medium chain free fatty acids (C6C12), and have done extensive pathway engineering to increase the levels and secretion of these and long-chain free fatty acids (C16-C18) to the culture medium. Pathway engineering approaches have focused on increasing carbon flux from glucose into the fatty acid and neutral lipid forming pathways, and preventing degradation and re-activation of these fatty acids. A unique combination of gene knockouts and gene overexpression resulted in ... Text DML Engineering Conferences International: ECI Digital Archives
institution Open Polar
collection Engineering Conferences International: ECI Digital Archives
op_collection_id fteci
language unknown
topic Engineering
spellingShingle Engineering
Silva, Nancy Da
Metabolic engineering of yeast for the synthesis of fatty acid and polyketide-based chemicals
topic_facet Engineering
description Polyketides and fatty acids are of critical importance as biorenewable chemical precursors, biofuels, and pharmaceuticals. Both are synthesized via complex polyketide or fatty acid synthases, with many using acetyl-CoA and malonyl-CoA as starter and extender units. We have engineered and combined multiple pathways in the yeast Saccharomyces cerevisiae for the production of these valuable compounds and to allow the synthesis of novel variants. We have combined enzyme engineering (of the pathway and synthase enzymes), extensive metabolic pathway engineering for increased cofactor and precursor pools, and cultivation strategies to substantially increase titers and yields of a variety of products, including 6-methylsalicylic acid (6-MSA), dihydromonocolin L (DML; precursor to lovastatin), fatty acids (FAs) of varying lengths, and triacetic acid lactone (TAL). S. cerevisiae was engineered for the high-level production of TAL by overexpression of native and variant Gerbera hybrida 2-pyrone synthase (2-PS), engineering of the yeast metabolic pathways, and implementation of various cultivation strategies. These interventions increased TAL titer from 0.07 g/L to 10.5 g/L and yield from <1% to 44% of theoretical yield. Recent work has modified mitochondrial transport mechanisms and implemented cofactor-based driving forces as methods to enhance polyketide synthesis. Fatty acids are also of interest as both biofuel and chemical precursors. We have introduced heterologous fatty acid synthases into S. cerevisiae to allow the synthesis of short/medium chain free fatty acids (C6C12), and have done extensive pathway engineering to increase the levels and secretion of these and long-chain free fatty acids (C16-C18) to the culture medium. Pathway engineering approaches have focused on increasing carbon flux from glucose into the fatty acid and neutral lipid forming pathways, and preventing degradation and re-activation of these fatty acids. A unique combination of gene knockouts and gene overexpression resulted in ...
format Text
author Silva, Nancy Da
author_facet Silva, Nancy Da
author_sort Silva, Nancy Da
title Metabolic engineering of yeast for the synthesis of fatty acid and polyketide-based chemicals
title_short Metabolic engineering of yeast for the synthesis of fatty acid and polyketide-based chemicals
title_full Metabolic engineering of yeast for the synthesis of fatty acid and polyketide-based chemicals
title_fullStr Metabolic engineering of yeast for the synthesis of fatty acid and polyketide-based chemicals
title_full_unstemmed Metabolic engineering of yeast for the synthesis of fatty acid and polyketide-based chemicals
title_sort metabolic engineering of yeast for the synthesis of fatty acid and polyketide-based chemicals
publisher ECI Digital Archives
publishDate 2017
url https://dc.engconfintl.org/biochem_xx/78
genre DML
genre_facet DML
op_source Biochemical and Molecular Engineering XX
op_relation https://dc.engconfintl.org/biochem_xx/78
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