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Metabolic response to a heterologous poly-3-hydroxybutyrate
Metabolic response to a heterologous poly-3-hydroxybutyrate
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Metabolic response to a heterologous poly-3-hydroxybutyrate
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Metabolic response to a heterologous poly-3-hydroxybutyrate
Metabolic response to a heterologous poly-3-hydroxybutyrate

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Metabolic response to a heterologous poly-3-hydroxybutyrate
Metabolic response to a heterologous poly-3-hydroxybutyrate
Journal Article

Metabolic response to a heterologous poly-3-hydroxybutyrate

2024
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Overview
The marine diatom Phaeodactylum tricornutum is an emerging host for metabolic engineering, but little is known about how introduced pathways are integrated into the existing metabolic framework of the host or influence transgene expression. In this study, we expressed the heterologous poly-3-hydroxybutyrate (PHB) pathway using episomal expression, which draws on the precursor acetyl coenzyme-A (AcCoA). By experimentally perturbing cultivation conditions, we gained insight into the regulation of the endogenous metabolism in transgenic lines under various environmental scenarios, as well as on alterations in AcCoA flux within the host cell. Biosynthesis of PHB led to distinct shifts in the metabolome of the host, and further analysis revealed a condition-dependent relationship between endogenous and transgenic metabolic pathways. Under N limitation, which induced a significant increase in neutral lipid content, both metabolic and transcriptomic data suggest that AcCoA was preferably shunted into the endogenous pathway for lipid biosynthesis over the transgenic PHB pathway. In contrast, supply of organic carbon in the form of glycerol supported both fatty acid and PHB biosynthesis, suggesting cross-talk between cytosolic and plastidial AcCoA precursors. This is the first study to investigate the transcriptomic and metabolomic response of diatom cell lines expressing a heterologous multi-gene pathway under different environmental conditions, providing useful insights for future engineering attempts for pathways based on the precursor AcCoA.