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Open access Aug 2026

Metabolic Engineering of Probiotic Saccharomyces boulardii Enables Intestinal 3-Hydroxybutyrate Delivery and Alters Short-Chain Fatty Acid Profiles in Mice

3-Hydroxybutyric acid (3-HB) is a bioactive ketone body involved in the regulation of intestinal inflammation and metabolic homeostasis. Although engineered bacterial probiotics have been developed for localized 3-HB delivery, their susceptibility to antibacterial antibiotics may limit their use during concurrent antibiotic treatment. The probiotic yeast Saccharomyces boulardii offers an alternative host for intestinal 3-HB delivery because of its compatibility with antibacterial antibiotics and the availability of well-established genetic engineering tools. Here, we engineered S. boulardii for 3-HB production using Cas9-mediated genome editing. A heterologous 3-HB biosynthetic pathway was introduced into S. boulardii MYA-797, and endogenous acetyl-CoA and ethanol metabolism was subsequently rewired by overexpressing ACS1, deleting ADH1, and overexpressing ADH7. The optimized strain, SbDY02, produced 1.7 g/L 3-HB under microaerobic conditions. Oral administration of SbDY02 to C57BL/6J mice increased fecal 3-HB and short-chain fatty acid (SCFA) concentrations by 1.89-fold and 1.68-fold, respectively, compared with mice receiving the parental strain. Repeated administration also increased fecal acetate and circulating total SCFAs, butyrate, and propionate. In human colonic epithelial cells, purified 3-HB attenuated lipopolysaccharide-induced p38 MAPK phosphorylation, supporting its direct activity toward inflammation-associated epithelial signaling. To our knowledge, this study provides the first demonstration of a 3-HB-producing probiotic yeast and links central metabolic engineering of S. boulardii with increased 3-HB availability, altered SCFA profiles, and a host-relevant epithelial response.

Deokyeol Jeong, Tongkewn Yoo, Jieun Woo et al. · 0 citations
Review Open access Sep 2026

Recent Advances in Sustainable Yeast-Based Single-Cell Protein Production from Renewable Substrates Using Engineering Approaches

Yeast-based single-cell protein (SCP) has emerged as a promising sustainable protein source due to its high protein content, favorable nutritional profile, and ability to utilize renewable feedstocks. The conversion of food-processing wastes, agricultural by-products, and one-carbon substrates into protein-rich biomass supports waste valorization and circular bioeconomy strategies. However, efficient utilization of these diverse feedstocks remains challenging due to variations in substrate composition and microbial metabolic capacity. Recent advances in metabolic engineering, cell wall engineering, adaptive laboratory evolution, random mutagenesis, and fermentation optimization have improved substrate utilization, biomass formation, and protein accumulation in yeasts. These developments have expanded the potential applications of yeast-based SCP in protein supplements, meat products, flavoring agents, and animal feed. This review provides a comprehensive overview of yeast species for SCP production, renewable feedstock utilization, engineering approaches for enhancing biomass and protein accumulation, and the emerging applications of yeast-based SCP in sustainable food and feed systems.

Ely Yosriah, G. Evelina, Dian Shofinita et al. · 0 citations

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