Integrated 13C Metabolic Flux and Multi-Omics Analyses Reveal Central Carbon and Redox Constraints in a Salt-Sensitive Chromochloris zofingiensis Mutant
Zhixiong Li, Yuanyuan Ren, Xiaozhen Huang, Shufang Yang, Jia Wang, Lei Qin, Xue Lu, Han SunSaline cultivation can reduce freshwater demand and reshape the production physiology of high-value microalgae, yet the metabolic basis of strain-specific salinity tolerance remains unclear. Here, the astaxanthin-producing green microalga Chromochloris zofingiensis was examined by comparing the wild type (Cz-WT) with a cGMP-dependent protein kinase (PKG)-deficient mutant (Cz-pkg) under 100 mM NaCl. Physiological measurements were integrated with parallel 13C-glucose tracing, 13C metabolic flux analysis, LC–MS metabolomics, and time-series RNA sequencing. Relative to Cz-pkg, Cz-WT showed higher normalized fluxes from phosphoenolpyruvate to pyruvate and oxaloacetate, greater pyruvate-to-acetyl-CoA conversion, and enhanced tricarboxylic acid (TCA)-cycle activity, suggesting a greater potential to support energy and reducing-equivalent metabolism. Cz-pkg exhibited lower glucose-6-phosphate and 6-phosphogluconate levels, early NADH depletion, and reduced pools of several amino-acid- and nucleotide-related metabolites. At 24 h, 141 genes were co-upregulated and 228 co-downregulated in both strains, involving photosynthetic electron transport, antioxidant metabolism, glycolysis/gluconeogenesis, amino-acid metabolism, and terpenoid biosynthesis. Phosphatidylglycerophosphate synthase was upregulated in both strains, supporting membrane-lipid remodeling. Overall, the data provide flux-level evidence that the salt-sensitive mutant is constrained in glycolysis–TCA cycle coupling and energy–redox homeostasis during salinity acclimation. Direct PKG substrates and causal phosphorylation events were not examined in this study.