The discrepancy between in situ microbial abundance and actual metabolic performance represents a critical challenge for interpreting microbial function from meta-omic data. Here, we integrated metagenomic and metatranscriptomic sequencing to investigate this decoupling between microbial abundance and cultivation-based physiological potential in Shanxi aged vinegar (SAV) solid-state fermentation. Lactobacillus acetotolerans dominated the community at both the genomic (40.89%) and transcriptomic (55.36%) levels, whereas Pediococcus acidilactici accounted for only 0.11%—a canonical rare-biosphere member. Source tracking via Sankey analysis showed that genes involved in acetate production were primarily attributed to Acetobacter pasteurianus, whereas genes involved in lactate production were predominantly associated with Lactobacillus spp. However, L. acetotolerans exhibited limited acid tolerance and lactic acid production, whereas the low-abundance P. acidilactici AAF1-5 displayed robust stress tolerance and superior lactic acid production under fermentation-relevant conditions—a striking contrast between microbial abundance and physiological performance. Metabolic interaction network analysis predicted that P. acidilactici may be co-inhibited by L. acetotolerans (Ixy = −2.737, resource competition) and A. pasteurianus (Ixy = −1.887, acid stress). To test whether ecological constraints, rather than intrinsic metabolic capacity, underlie this low abundance, we heterologously expressed the heat shock co-chaperone gene grpE from A. pasteurianus in P. acidilactici AAF1-5 as an experimental tool. The recombinant strain P. acidilactici-grpE exhibited significantly enhanced viability under acetic acid stress and, in simulated SAV fermentation, lactic acid content increased by 23.63% compared with the wild-type control. These results demonstrate that meta-omic abundance does not necessarily predict physiological performance and that low abundance may reflect ecological constraints rather than intrinsic functional deficiency. Our study provides an ecological framework for linking microbial abundance with physiological function beyond sequence-based abundance inference in complex fermentation microbiomes.
Yan-Fang Wu, Yan Li, Hanlin Chen et al.· Foods· 0 citations
Systemic inflammatory response syndrome (SIRS) carries high ICU morbidity, sepsis lacks standardized therapies, and stage-variable natural killer (NK) cell function in SIRS remains poorly defined due to insufficient single-cell evidence. Herein, we analyzed public LPS-induced SIRS peripheral blood single-cell RNA sequencing (scRNA-seq) data (GSE212092) via multiple bioinformatic algorithms to dissect NK heterogeneity, followed by in vitro functional verification using NK-92 cells with IGF1 stimulation or IGF1R knockdown. We identified distinct cell types and 6 distinct NK subpopulations (C0-C5). Pro-inflammatory C0 and proliferative C2 IGF1R⁺ expanded in early SIRS, whereas stemness-high C3-C5 accumulated during late immunosuppression. MHC-I and CCL5-CCR1 dominated NK-related intercellular crosstalk, and unique transcription regulatory modules existed across NK subpopulations. Functional assays verified IGF1/IGF1R signaling dose-dependently promotes NK inflammatory cytokine release, cytotoxic gene expression, cell viability and target cell killing. These findings delineate dynamic NK subpopulation remodeling during SIRS and validate IGF1/IGF1R as a potential key pathway governing NK effector function, providing a transcriptomic basis for identifying candidate biomarkers and potential therapeutic targets in SIRS.
Hong-Ling Jia, Hang Zhao, Yan Li et al.· Clinical and Experimental Me...· 0 citations
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