Combinatorial engineering approaches for improved lipid production in Saccharomyces cerevisiae

Abstract Triacylglycerols (TAGs) hold substantial medical, nutritional, and industrial value. However, environmental concerns demand more sustainable production alternatives. A promising approach is the fermentation of TAG-accumulating microbes. In this study, we engineered a previously developed high-lipid producing Saccharomyces cerevisiae strain to further increase lipid accumulation through a combinatorial approach. We obtained up to 327 mg∙gCDW − 1 of lipid content by deleting CKB1, encoding a subunit of casein kinase 2 (CK2) related to the regulation of lipid metabolism, in combination with the deletion of SEI1 encoding a seipin. The deletion of CKB1 combined with reduced expression of ERD1 and increased expression of YFT2, genes related to ER stability and lipid droplet production, respectively, led to 329 mg∙gCDW − 1 of lipid content. Notably, in the highest lipid producer, only ERD1 and YFT2 were targeted. This strain reached up to 350 mg∙gCDW − 1 of lipid content, a 41% increase in lipid accumulation. However, the strains with the highest lipid content also showed a reduction in growth rate and final biomass accumulation. The results in this study demonstrate that the outcomes of individual modifications depend on the genetic background, emphasizing the importance of identifying the appropriate combination of target genes to achieve the desired phenotype.

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Publication Details

Journal
FEMS Yeast Research
Published
2026-09-16
DOI
https://doi.org/10.1093/femsyr/foag047
Primary Topic
Lipid metabolism and biosynthesis
Type
article
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Combinatorial engineering approaches for improved lipid production in Saccharomyces cerevisiae

Cecilia Tullberg, Verena Siewers, Xin Chen, Lars Dahlgren et al.
FEMS Yeast Research
Lipid metabolism and biosynthesis
article

Combinatorial engineering approaches for improved lipid production in Saccharomyces cerevisiae

Cecilia Tullberg, Verena Siewers, Xin Chen, Lars Dahlgren, Mauro Moreno Beltrán, Andrés Castillo
article en

Abstract

Abstract Triacylglycerols (TAGs) hold substantial medical, nutritional, and industrial value. However, environmental concerns demand more sustainable production alternatives. A promising approach is the fermentation of TAG-accumulating microbes. In this study, we engineered a previously developed high-lipid producing Saccharomyces cerevisiae strain to further increase lipid accumulation through a combinatorial approach. We obtained up to 327 mg∙gCDW − 1 of lipid content by deleting CKB1, encoding a subunit of casein kinase 2 (CK2) related to the regulation of lipid metabolism, in combination with the deletion of SEI1 encoding a seipin. The deletion of CKB1 combined with reduced expression of ERD1 and increased expression of YFT2, genes related to ER stability and lipid droplet production, respectively, led to 329 mg∙gCDW − 1 of lipid content. Notably, in the highest lipid producer, only ERD1 and YFT2 were targeted. This strain reached up to 350 mg∙gCDW − 1 of lipid content, a 41% increase in lipid accumulation. However, the strains with the highest lipid content also showed a reduction in growth rate and final biomass accumulation. The results in this study demonstrate that the outcomes of individual modifications depend on the genetic background, emphasizing the importance of identifying the appropriate combination of target genes to achieve the desired phenotype.

FEMS Yeast Research
Lund University (SE), Chalmers University of Technology (SE)
Responsible consumption and production
Openalex Percentile: Top 15%
Lipid metabolism and biosynthesis
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Combinatorial engineering approaches for improved lipid production in Saccharomyces cerevisiae — Cecilia Tullberg, Verena Siewers, et al. · FEMS Yeast Research (2026) | TGRS Research Map | TGRS