ArticleNaunyn-Schmiedeberg's archives of pharmacology2026
Integrated bioinformatics, single-cell analysis, and experimental validation identify quercetin as a potential therapeutic candidate for intervertebral disc degeneration.
Article in Naunyn-Schmiedeberg's archives of pharmacology, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
Intervertebral disc degeneration (IVDD) is a major pathological basis of low back pain, but its molecular mechanisms remain incompletely understood. Identifying key genes and potential therapeutic compounds may provide new insights into the progression and treatment of IVDD. The GSE70362 bulk transcriptomic dataset was analyzed to identify 352 differentially expressed genes between IVDD and control nucleus pulposus samples. These DEGs were integrated with WGCNA, PPI network analysis, and LASSO regression to screen candidate hub genes, including ZEB2, COL6A2, CCND1, RAP1A, and GATA3. Functional enrichment, immune infiltration, and single-cell RNA-seq analyses were performed to characterize their biological relevance. Quercetin was selected as a candidate compound for molecular docking prediction and in vitro validation in LPS-induced nucleus pulposus cells. A total of 352 differentially expressed genes were identified, including 142 upregulated and 210 downregulated genes in IVDD samples. WGCNA identified five IVDD-related modules containing 454 genes, and 154 overlapping genes were obtained after intersection with differentially expressed genes. Further screening identified five hub genes: ZEB2, COL6A2, CCND1, RAP1A, and GATA3. Functional enrichment analysis indicated that these genes were mainly associated with cellular stress responses, extracellular matrix remodeling, cellular senescence, p53 signaling, focal adhesion, Rap1 signaling, and inflammatory pathways. Immune infiltration analysis showed decreased Tr1 and Th2 cells and increased macrophage infiltration in IVDD samples. Single-cell analysis revealed marked heterogeneity among nucleus pulposus cells and demonstrated that several hub genes were distributed across distinct degenerative cell states. Molecular docking provided preliminary computational evidence that quercetin may have potential binding affinities with the five hub proteins. In vitro experiments further showed that quercetin improved cell viability, reduced LPS-induced cell injury, reversed the abnormal expression of ZEB2, CCND1, RAP1A, GATA3, and partially restored COL6A2 expression. This study identified ZEB2, COL6A2, CCND1, RAP1A, and GATA3 as potential hub genes involved in IVDD progression. The integrated bioinformatics, single-cell, molecular docking, and experimental results suggest that quercetin may exert protective effects against IVDD-like nucleus pulposus cell injury, accompanied by partial reversal of abnormal hub gene expression and improvement of cell survival. These findings provide a potential molecular basis for further investigation of quercetin as a candidate therapeutic agent for IVDD.
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