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Updated: Mar 28, 2026

Assays for Studying the Role of Vitronectin in Bacterial Adhesion and Serum Resistance
Published on: October 16, 2018
Potential effects on the signaling network mediated by overexpression of the vitronectin gene in Hu sheep ruminal
Bingqian Zhong1, Luyu Ma1, Hua Ni1
1Key Laboratory of Biological Resources and Ecology of Pamirs Plateau in Xinjiang Uygur Autonomous Region, College of Life and Geographic Sciences, Kashi University, Kashi, China.
Abstract:
Vitronectin (VTN) is a multifunctional extracellular matrix protein involved in cell adhesion, migration, and signal transduction. In this study, we constructed and transfected a VTN overexpression vector in Hu sheep ruminal epithelial cells (RECs) and performed a multi-omics analysis integrating transcriptomics and metabolomics. Compared with controls, 495 differentially expressed genes (DEGs) were identified (241 upregulated and 254 downregulated), primarily enriched in adhesion/mechanotransduction pathways such as ECM-receptor interaction and focal adhesion, as well as amino acid transport and membrane-related complexes; in contrast, translational preparatory processes including the spliceosome and aminoacyl-tRNA biosynthesis were suppressed. Metabolomics identified 103 differential metabolites (53 upregulated and 50 downregulated), prominently involving glycerophospholipid metabolism, nucleotide sugar biosynthesis, GPI-anchor biosynthesis, autophagy, and retrograde endocannabinoid signaling, indicating reinforced membrane lipid remodeling and membrane protein targeting. Multi-omics integration indicates that VTN, by remodeling ECM and membrane lipids, is associated with enhanced integrin-focal adhesion signaling and mechanotransduction, optimizes mitochondrial ATP production and energy utilization, and directs a programmed reconfiguration of lipid metabolism; concurrently, endocannabinoid-related pathways and "neurotransmission-like" signals such as NA-GABA were upregulated, providing an inhibitory/buffering tone against inflammation and environmental stress. Overall, VTN establishes a multilayered "adhesion-metabolism-repair" regulatory network that promotes rapid renewal and injury repair of RECs, offering a mechanistic basis and potential molecular targets for enhancing rumen function and production performance in ruminants.

