Related Experiment Video
Updated: Aug 30, 2025

Comparative Proteomic Analysis of Whole Kidney, Medulla, and Cortical Tubules in Diabetic Pathogenesis of Kidney Injury in Mice
Published on: May 2, 2025
Identification of novel key genes and potential candidate small molecule drugs in diabetic kidney disease using
Bin Li1,2, Siyang Ye1,2, Yuting Fan1,2
1Department of Nephrology, The First Affiliated Hospital, Sun Yat-sen University, Guangzhou, China.
Abstract:
Objective: The currently established diagnostic and prognostic tools for diabetic kidney disease (DKD) have limitations, which demands the necessity to find new genes and pathways associated with diagnosis and treatment. Our study aims to reveal the gene expression alteration and discover critical genes involved in the development of DKD, thus providing novel diagnostic molecular markers and therapeutic targets. Materials and methods: The differences of infiltrating immune cells within kidney were compared between healthy living donors and DKD patients. Besides, differentially expressed genes (DEGs) within kidney from healthy living donor, early stage DKD and advanced stage DKD samples were detected. Furthermore, the weighted co-expressed network (WGCNA) and protein-protein interaction (PPI) network were constructed, followed by recognition of core hub genes and module analysis. Receiver operating characteristic (ROC) curve analysis was implemented to determine the diagnostic value of hub genes, correlation analysis was employed to explore the association between hub genes and infiltrating immune cells, and certain hub genes was validated by quantitative real-time PCR and immunohistochemistry staining in cultured tubule cells and diabetic mice kidney. Finally, the candidate small molecules as potential drugs to treat DKD were anticipated through utilizing virtual screening and molecular docking investigation. Results: Our study revealed significantly higher proportion of infiltrating immune cells within kidney from DKD patients via probing the immune landscape by single-cell transcriptomics. Besides, 126 commonly shared DEGs identified among three group samples were enriched in immune biological process. In addition, the ROC curve analysis demonstrated the strong diagnostic accuracy of recognized hub genes (NFKB1, DYRK2, ATAD2, YAP1, and CHD3) from PPI network. Correlation analysis further confirmed the positive association between these hub genes with infiltrating natural killer cells. More importantly, the mRNA transcripts and protein abundance of YAP1 were significantly higher in high glucose-treated renal tubule cells and diabetic mice kidney, and the small molecules exhibiting the best binding affinities with YAP1 were predicted and acquired. Conclusion: Our findings for the first time indicate that NFKB1, DYRK2, ATAD2, YAP1, and CHD3 might be potential novel biomarkers and therapeutic targets for DKD, providing insights into the molecular mechanisms underlying the pathogenesis of DKD.
Insights
New research identifies five key genes (NFKB1, DYRK2, ATAD2, YAP1, CHD3) as potential diagnostic markers and therapeutic targets for diabetic kidney disease (DKD). This study offers insights into DKD
Area of Science:
- Nephrology
- Genomics
- Immunology
Background:
- Established diagnostic and prognostic tools for diabetic kidney disease (DKD) have limitations.
- There is a need for novel molecular markers and therapeutic targets for DKD.
Purpose of the Study:
- To identify critical genes and pathways involved in DKD development.
- To discover novel diagnostic molecular markers and therapeutic targets for DKD.
Main Methods:
- Single-cell transcriptomics to analyze kidney immune cell infiltration.
- Weighted gene co-expression network (WGCNA) and protein-protein interaction (PPI) network construction.
- Validation of hub genes using quantitative real-time PCR and immunohistochemistry, and virtual screening for drug candidates.
Main Results:
- DKD patients exhibit significantly higher kidney immune cell infiltration.
- 126 differentially expressed genes (DEGs) enriched in immune biological processes were identified.
- Five hub genes (NFKB1, DYRK2, ATAD2, YAP1, CHD3) showed strong diagnostic accuracy and correlated with natural killer cells; YAP1 was validated.
Conclusions:
- NFKB1, DYRK2, ATAD2, YAP1, and CHD3 are potential novel biomarkers and therapeutic targets for DKD.
- These findings provide insights into the molecular mechanisms of DKD pathogenesis.
- Small molecules targeting YAP1 were identified as potential therapeutic agents.

