BACKGROUND
High salinity restricts microbial growth during brine-based food fermentation. Although exogenous unsaturated fatty acids improve the salt tolerance of Zygosaccharomyces rouxii, the associated transcriptional mechanisms remain unclear. This study investigated the transcriptomic response of Z. rouxii CGMCC 3791 to palmitoleic acid (C16:1) under high salt conditions.
RESULTS
Cells were cultured in yeast extract peptone dextrose (YPD) containing 120 g L-1 NaCl, with or without 20 μg mL-1 C16:1. They were analyzed by RNA sequencing. Principal component analysis clearly separated the two treatments. Using q < 0.05 and |log2 fold change| > 1, 23 differentially expressed genes were identified - three upregulated and 20 downregulated. INO1, MLS1, POX1, MEP2, and SOD5 were among the major responsive genes. Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) analyses indicated that peroxisome-associated functions, lipid metabolism, oxidative stress responses, nitrogen utilization, and mitogen-activated protein kinase (MAPK) signaling were the principal C16:1-responsive processes.
CONCLUSION
Exogenous C16:1 elicited a focused transcriptional adjustment rather than broad transcriptome-wide reprogramming in salt-stressed Z. rouxii. The results indicated that peroxisome-linked lipid processes and redox regulation were candidate mechanisms underlying fatty-acid-associated halotolerance and provided targets for improving the robustness of high-salt food fermentation. © 2026 Society of Chemical Industry.
Dingkang Wang, Lerong Liu, Wen Liu et al.
· The Journal of the Science o... · 0 citations
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Jul 2026
The strain Planococcus halotolerans SCU63T can survive under extreme conditions of 15% NaCl and 0 °C and provides a promising microbial resource for the remediation of saline soils in winter and high-salt as well as low-temperature industrial wastewater.
Yichun Zhang, Longzhan Gan, Jialong He et al.
· Microbiology Research · 0 citations
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Jun 2026
It is suggested that palmitoleic acid may contribute to salt-stress adaptation in Z. rouxii by modulating energy and nucleotide turnover, while helping maintain redox balance and metabolic flexibility.
Dingkang Wang, Yu Jiang, Longzhan Gan et al.
· Journal of Agricultural and... · 0 citations
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Jul 2026
Under severe stress, GO and KEGG enrichment consistently revealed the reinforcement of central carbon and energy metabolism, peroxisome-associated fatty acid turnover, oxidoreductase/redox activities, and translation and nucleotide metabolic pathways.
Dingkang Wang, Li Wang, Yue Xiao et al.
· Journal of Proteome Research · 0 citations
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