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Background: Diabetic kidney disease (DKD) is a common and serious complication of diabetes, affecting approximately 40% of patients with the condition. The pathogenesis of DKD is complex, involving multiple processes such as metabolism, inflammation, and fibrosis. Given its increasing incidence and associated mortality, there is an urgent need to identify novel pathogenic genes and therapeutic targets.
Methods: This study systematically identified hub DKD-associated genes and their potential molecular mechanisms through bioinformatic analysis. Gene expression datasets from DKD patients and healthy controls were obtained from the GEO database. Hub genes were screened using differential expression analysis, weighted gene co-expression network analysis (WGCNA), LASSO regression, random forest (RF) algorithms, and consensus clustering for DKD patient classification. Additionally, immune cell infiltration analysis was performed on differentially expressed genes to explore the relationship between hub genes and the immune microenvironment. Potential drugs targeting LPL were predicted based on gene-drug interaction analysis. Immunohistochemistry was used to verify the expression of LPL and TNF-α in kidney tissues from patients with varying degrees of DKD severity, as well as their relationship with kidney function impairment.
Results: This study revealed that LPL, a lipoprotein metabolism gene, plays a crucial role in DKD, participating in cholesterol and glycerolipid metabolism as well as PPAR signaling. LPL expression was negatively correlated with pro-inflammatory M1 macrophages and various subsets of T cells, including naïve CD4 T cells and gamma delta T cells, while positively correlated with follicular helper T cells, suggesting its immune-regulation effects in DKD progression. Potential LPL-targeting drugs, such as Ibrolipim, anabolic steroid, and acarbose, might mitigate DKD. LPL expression was decreased with DKD severity and was correlated with TNF-α and kidney dysfunction markers, indicating its key role in DKD progression.
Conclusion: LPL is a pivotal regulator of lipid metabolism and immune inflammation in DKD. Potential drugs targeting LPL offer new candidates for precision treatment of DKD. These findings lay a theoretical foundation for understanding the molecular mechanisms of DKD and developing LPL-based therapeutic strategies.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC12310451 | PMC |
http://dx.doi.org/10.3389/fendo.2025.1620032 | DOI Listing |
Ren Fail
December 2025
Department of Nephrology, China-Japan Friendship Hospital, Beijing, China.
Objectives: In this study, we explored the mechanism by which DDIT4 influences the polarization phenotypic transformation of macrophages and inflammation through the regulation of mTOR signaling pathway, providing a new mechanism and target for the treatment of diabetic nephropathy.
Methods: The degree of inflammation and injury in renal tissues of diabetic kidney disease (DKD) animal model was evaluated using biochemical assays, renal pathology examinations, and Western blot tests. Podocytes and macrophages were isolated from renal tissues to observe the extent of podocyte injury and the quantity and polarization phenotype of macrophage infiltration.
Nanomedicine
September 2025
The Second Hospital & Clinical Medical School, Lanzhou University, Lanzhou, 730000, Gansu, People's Republic of China; Department of Nephrology, The Second Hospital & Clinical Medical School, Lanzhou University, Lanzhou, 730030, Gansu, People's Republic of China; Key laboratory of nephropathy, The S
Diabetic kidney disease (DKD), a prominent microvascular complication of diabetes mellitus and the leading cause of end-stage renal disease (ESRD), was addressed through a novel nanotherapeutic approach. This study engineered folic acid-conjugated poly(lactic-co-glycolic acid) nanoparticles (FA-PLGA NPs) for the folate receptor (FR)-targeted delivery of Toll-like receptor 4 small interfering RNA (TLR4 siRNA) to treat diabetic nephropathy (DN). In a streptozotocin-induced DN murine model, administration of FA-PLGA NPs/TLR4 siRNA significantly mitigated renal injury compared to untreated DN controls.
View Article and Find Full Text PDFFront Endocrinol (Lausanne)
September 2025
Yunnan Key Laboratory of Laboratory Medicine, Kunming, China.
Background: Atherosclerotic cardiovascular disease (ASCVD) and diabetic kidney disease (DKD) are interconnected vascular complications in diabetes, with dyslipidemia playing a key role. The modifying effect of ASCVD on the lipid-DKD relationship in diabetic patients without lipid-lowering treatment remains unclear.
Methods: This retrospective study included 26,476 type 2 diabetic patients without lipid-lowering therapy.
Phytomedicine
August 2025
State Key Laboratory of Natural Medicines, Jiangsu Key Laboratory of Druggability of Biopharmaceuticals, School of Life Science and Technology, China Pharmaceutical University, Nanjing 211198, China. Electronic address:
Background: Diabetic kidney disease (DKD) represents a common microvascular complication associated with diabetes. Research suggests that lipid accumulation contributes to lipotoxicity, exacerbating kidney injury in DKD. Quercetin (QCT), a flavonoid derived from specific fruits and vegetables, has shown potential in mitigating DKD progression; however, its precise protective mechanisms remain to be explored.
View Article and Find Full Text PDFZhongguo Zhong Yao Za Zhi
July 2025
Dongzhimen Hospital, Beijing University of Chinese Medicine Beijing 100700, China.
This study employed bioinformatics to screen the feature genes related to efferocytosis in diabetic kidney disease(DKD) and explores traditional Chinese medicine(TCM) regulating these feature genes. The GSE96804 and GSE30528 datasets were integrated as the training set, and the intersection of differentially expressed genes and efferocytosis-related genes(ERGs) was identified as DKD-ERGs. Subsequently, correlation analysis, protein-protein interaction(PPI) network construction, enrichment analysis, and immune infiltration analysis were performed.
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