Exploring the Molecular Mechanisms by Which DEHP Promotes the Occurrence and Progression of Kidney Stones Based on Network Toxicology and Experimental Validation.

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Abstract

BackgroundThe global burden of kidney stones is increasing, while di(2-ethylhexyl) phthalate (DEHP), a widespread plasticizer and endocrine-disrupting pollutant, has been implicated as a potential environmental risk factor. This study investigated the mechanisms by which DEHP may aggravate calcium oxalate kidney stones through network toxicology, computational analyses, and experimental validation.MethodsDEHP- and kidney stone-related targets were retrieved from six databases. Shared targets were analyzed using protein-protein interaction networks and Gene Ontology and Kyoto Encyclopedia of Genes and Genomes enrichment analyses. Molecular docking and 100-ns molecular dynamics simulations were performed to evaluate interactions between DEHP and hub proteins. A glyoxylic acid-induced mouse model and calcium oxalate monohydrate (COM)-challenged HK-2 cells were used to assess the effects of DEHP on crystal deposition, renal injury, apoptosis, and autophagy.ResultsA total of 457 shared targets were identified, with CTNNB1, SRC, HSP90AA1, EP300, EGFR, and TP53 emerging as hub genes. Computational analyses suggested stable interactions between DEHP and these proteins and highlighted cell fate-related pathways, including PI3K-Akt signaling, autophagy, and apoptosis. In vivo, DEHP increased blood urea nitrogen and serum creatinine levels, aggravated tubular injury, and enhanced calcium oxalate crystal deposition. Consistent effects were observed in COM-treated HK-2 cells, accompanied by dysregulation of apoptosis- and autophagy-related markers.ConclusionDEHP aggravates calcium oxalate crystal-induced renal injury and promotes kidney stones, potentially by disrupting apoptosis-autophagy homeostasis in renal tubular epithelial cells. These findings provide mechanistic evidence linking DEHP exposure to kidney stone pathogenesis.

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SciLite annotations

chemicals 69
hydrogen di(2-nonyl) phthalate calcium oxalate urea nitrogen creatinine calcium oxalate glyoxylic acid calcium oxalate diphenyl phthalate mono(2-ethylhexyl) phthalate phthalate 2-methylbutyl 2-methylpropanoate phthalate water water sodium chloride glyoxylic acid glyoxylic acid glyoxylic acid glyoxylic acid pentobarbital sodium haematoxylin urea nitrogen creatinine haematoxylin peroxide haematoxylin water haematoxylin xylene ethanol water calcium oxalate water oxalate 2-methylene-3-methylsuccinate(2-) hydrogen amino acid hydrogen lipid calcium oxalate calcium oxalate calcium calcium oxalate creatinine di(2-nonyl) phthalate water calcium oxalate glyoxylic acid urea nitrogen creatinine +9 more
organisms 34
transgenic mice rodents human human human human human human rodents rodents rodents rodents rodents mus sp. rodents mus sp. rodents mus sp. mus sp. zea saccharata mus sp. transgenic mice multicellular animals multicellular animals mus sp. naine d'afrique de l'ouest human humans human mus sp. mus sp. mus sp. rodents human

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last seen: 2026-09-13T09:25:22.628771+00:00
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