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Published on: May 2, 2025
Protective Cellular Mechanism of Estrogen Against Kidney Stone Formation: A Proteomics Approach and Functional
Paleerath Peerapen1, Visith Thongboonkerd1
1Medical Proteomics Unit, Office for Research and Development, Faculty of Medicine Siriraj Hospital, Mahidol University, Bangkok, 10700, Thailand.
Abstract:
Females have less incidence/prevalence of kidney stone disease than males. Estrogen thus may serve as the protective factor but with unclear mechanism. This study explores cellular mechanism underlying such stone preventive mechanism of estrogen. Madin darby canine kidney (MDCK) renal tubular cells are incubated with or without 20 nm 17β-estradiol for 7 days. Comparative proteomics reveals 58 differentially expressed proteins in estrogen-treated versus control cells that are successfully identified by nanoLC-ESI-Q-TOF-MS/MS. Interestingly, these altered proteins are involved mainly in "binding and receptor," "metabolic process," and "migration and healing" networks. Functional investigations demonstrate reduction of calcium oxalate (CaOx) crystal-binding capability of the estrogen-treated cells consistent with the decreased levels of annexin A1 and α-enolase (the known CaOx crystal-binding receptors) on the cell surface. High-calcium and high-oxalate challenge initially enhances surface expression of annexin A1 and α-enolase, respectively, both of which return to their basal levels by estrogen. Additionally, estrogen reduces intracellular ATP level and promotes cell migration and tissue healing. Taken together, estrogen causes changes in cellular proteome of renal tubular cells that lead to decreased surface expression of CaOx crystal receptors, reduced intracellular metabolism, and enhanced cell proliferation and tissue healing, all of which may contribute, at least in part, to stone prevention.
Insights
Estrogen may protect against kidney stones by reducing calcium oxalate crystal binding to renal cells. This involves altering cell surface proteins, lowering metabolism, and promoting healing, contributing to stone prevention.
Area of Science:
- Nephrology
- Endocrinology
- Proteomics
Background:
- Kidney stone disease is less common in females than males, suggesting a protective role for estrogen.
- The precise cellular mechanisms behind estrogen's protective effect against kidney stones remain unclear.
Purpose of the Study:
- To investigate the cellular mechanisms by which estrogen may prevent kidney stone formation.
- To identify specific protein changes in renal tubular cells influenced by estrogen.
Main Methods:
- Madin Darby Canine Kidney (MDCK) cells were treated with 17β-estradiol for 7 days.
- Comparative proteomics using nanoLC-ESI-Q-TOF-MS/MS identified differentially expressed proteins.
- Functional assays assessed calcium oxalate (CaOx) crystal binding, intracellular ATP levels, and cell migration.
Main Results:
- Estrogen treatment altered 58 proteins involved in binding, metabolism, and cell migration/healing.
- Estrogen-treated cells showed reduced CaOx crystal binding due to decreased surface annexin A1 and α-enolase.
- Estrogen lowered intracellular ATP levels and enhanced cell migration and tissue healing.
Conclusions:
- Estrogen modifies the renal tubular cell proteome, reducing CaOx crystal receptor expression on the cell surface.
- Estrogen's effects on metabolism, cell proliferation, and tissue healing contribute to its kidney stone preventive properties.
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