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April 7, 2026International Journal of Molecular Sciences2 citationsOpen Access

Multi-Omics and Functional Validation Identify a Quercetin-SLC15A2 Axis That Mediates the Anti-Fibrotic Effect of Shen-Kang Recipe in Diabetic Kidney Disease

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AZAnna ZuoSLShuyu D. LiJXJiarun Xie

Key Points

  • This research aims to investigate the therapeutic mechanisms of the Shen-Kang Recipe in diabetic kidney disease, focusing on the quercetin-SLC15A2 axis.
  • Utilized db/db mice to evaluate the effects of Shen-Kang Recipe on renal function.
  • Employed wide-target metabolomics and quantitative proteomics to assess metabolic and proteomic disturbances.
  • Conducted molecular docking and dynamics simulations to analyze interactions between quercetin and SLC15A2.
  • Performed TGF-β1 stimulation in HK-2 cells and siRNA knockdown for SLC15A2 to demonstrate functional necessity.
  • Shen-Kang Recipe significantly improved renal function and reduced glomerulosclerosis in db/db mice.
  • The SKR reversed metabolic disturbances associated with diabetic kidney disease, particularly in energy and amino acid metabolic pathways.
  • Identified SLC15A2 as a key protein restored by SKR treatment, with quercetin showing direct binding to SLC15A2.
  • Quercetin treatment inhibited epithelial-mesenchymal transition in HK-2 cells, confirmed by restored E-cadherin levels.

Abstract

Diabetic kidney disease (DKD) is a leading cause of end-stage renal disease. The Shen-Kang Recipe (SKR) is a traditional Chinese medicine formula used clinically to slow DKD progression, but its bioactive constituents and molecular targets remain unclear. Solute carrier family 15 member 2 (SLC15A2/PEPT2), a high-affinity peptide transporter expressed in renal proximal tubules, has been implicated in kidney pathophysiology, yet its potential role in mediating the therapeutic effects of the SKR has not been explored. Here, we evaluated the effects of the SKR in db/db mice and found that SKR treatment significantly improved renal function, attenuated glomerulosclerosis, and reduced interstitial collagen deposition. Wide-target metabolomics and quantitative proteomics revealed that the SKR broadly reversed DKD-associated metabolic and proteomic disturbances, particularly in pathways related to energy and amino acid metabolism. Proteomic analysis identified SLC15A2 as a key proximal tubule protein downregulated in DKD and selectively restored by the SKR. UPLC-Q-TOF/MS-based serum pharmacochemistry and network pharmacology highlighted quercetin as a principal bioactive component of the SKR. Molecular docking, molecular dynamics simulations, and surface plasmon resonance (SPR) confirmed direct, high-affinity binding between quercetin and SLC15A2 (KD = 7.5 µM). In TGF-β1-stimulated HK-2 cells, quercetin suppressed epithelial-mesenchymal transition (EMT), as evidenced by restored E-cadherin and reduced N-cadherin, vimentin, and α-SMA expression; this effect was abrogated by siRNA-mediated SLC15A2 knockdown, demonstrating the functional necessity of this axis. Collectively, these findings identify a quercetin-SLC15A2 axis through which the SKR inhibits EMT and alleviates renal fibrosis in DKD, providing a mechanistic basis for its clinical application and nominating SLC15A2 as a potential therapeutic target.

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Cite This Study

Zuo et al. (2026) studied this question.

synapsesocial.com/papers/69d49f44b33cc4c35a227b88https://doi.org/10.3390/ijms27073291
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