ArticleDaru : journal of Faculty of Pharmacy, Tehran University of Medical Sciences2026
Aloin attenuates high-glucose-induced oxidative and inflammatory damage in renal cells via AMPK/Nrf2 signaling.
Article in Daru : journal of Faculty of Pharmacy, Tehran University of Medical Sciences, 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
backgroundDiabetic nephropathy (DN) is a leading cause of end-stage renal disease, with proximal tubular injury and oxidative stress playing pivotal roles in its progression. The AMPK-Nrf2 signaling axis is a key regulator of antioxidant defense, but its modulation by Aloin in DN-relevant renal models remains insufficiently characterized. Aloin, a natural anthraquinone glycoside from Aloe species, exhibits antioxidant, anti-inflammatory, and anti-fibrotic properties in non-renal systems. This study investigated whether Aloin protects renal cells from high-glucose-induced injury and whether AMPK and Nrf2 contribute to these protective responses.
methodsHuman renal proximal tubular epithelial cells (HK-2) and human renal glomerular endothelial cells (HRGECs) were exposed to high glucose (HG, 30 mM) for 48 h with or without Aloin (25 or 50 µM). Functional assays included CCK-8 cell viability, colony formation, and wound healing migration analysis. mRNA expression of oxidative stress-related, inflammatory, fibrotic, and phenotype-associated markers, including VIM and CDH1, was quantified by reverse transcription-quantitative polymerase chain reaction (RT-qPCR). siRNA-mediated knockdown of PRKAA1 (AMPK) or NFE2L2 (Nrf2) was performed to assess mechanistic involvement, with gene silencing confirmed by RT-qPCR and Western blotting. For exploratory in vivo validation, male db/db mice received oral Aloin at 25 mg/kg/day for 8 weeks, while age-matched db/m and db/db mice received vehicle (n = 6 per group).
resultsHG exposure reduced proliferation and clonogenic capacity while increasing wound closure under serum-free conditions in both HK-2 cells and HRGECs, accompanied by upregulation of TNF, CCL2, TGFB1, COL1A1, and VIM, and downregulation of NFE2L2, SOD1, PRKAA1, and CDH1. Aloin treatment dose-dependently restored proliferation, reduced migration, and normalized gene expression patterns, with 50 µM producing near-complete reversal toward normal glucose controls. PRKAA1 knockdown in HK-2 cells and NFE2L2 knockdown in HRGECs substantially attenuated Aloin-associated protective responses, supporting the functional involvement of AMPK and Nrf2 in these cell-specific effects.
conclusionAloin attenuated high-glucose-induced injury in cultured renal tubular epithelial and glomerular endothelial cells, with loss-of-function experiments supporting the involvement of AMPK and Nrf2 in these responses. Exploratory validation in db/db mice further showed reductions in albuminuria, serum creatinine, and mesangial matrix expansion, accompanied by restoration of renal AMPK-Nrf2 signaling. However, the 25 and 50 µM concentrations used in vitro cannot be directly equated with the 25 mg/kg/day oral dose used in mice, and plasma exposure, renal tissue concentrations, pharmacokinetics, and systemic safety were not determined. Additional pharmacokinetic, dose-ranging, and toxicological studies are required before the therapeutic relevance of Aloin can be established.
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