SLCO4A1 Governs PGE2-Mediated Natriuresis in the Kidney

Background: Renal sodium retention is a central driver of hypertension and fluid overload. Prostaglandin E 2 (PGE 2 ) has long been identified as a potent natriuretic and diuretic factor. However, the mechanisms governing intrarenal PGE 2 signaling and tubular sodium transport remain incompletely understood. Methods: Global and renal tubule-specific Slco4a1 knockout mouse, as well as renal tubule-specific Slco4a1 overexpressing mice, were generated to investigate the role of SLCO4A1 in renal sodium and water homeostasis. Computational docking, cellular studies, and in vivo functional analyses were performed to evaluate the role of SLCO4A1in intrarenal distribution of PGE 2 and its impact on tubular sodium transport. Results: SLCO4A1 was predominantly localized to the basolateral membrane of multiple renal tubular epithelial cells. Global and renal tubule-specific Slco4a1 gene deletion increased urine output and sodium excretion and reduced sodium reabsorption across multiple nephron segments in mice. This was accompanied by downregulation of key sodium transporters and channels including SGLT2, NHE3, NKCC2, NCC and ENaC. In contrast, renal tubule-specific overexpression of Slco4a1 displayed an opposite effect. Mechanistically, Slco4a1 deficiency led to accumulation of PGE 2 in the kidney interstitum, which suppressed the expression of sodium transporter and channels via the EP receptors. Specifically, EP 1 mediated the PGE 2 -induced suppression of NKCC2, α-ENaC, and β-ENaC. EP 2 was responsible for the suppression of NCC, while EP 3 was involved in suppressing SGLT2, NHE3 and γ-ENaC. Conclusions: Collectively, these findings uncovered a previously unrecognized role of SLCO4A1 in regulating intrarenal PGE 2 distribution and identified SLCO4A1-PGE 2 -EP receptor axis in fine-tuning renal tubular sodium transport.

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Journal
Journal of the American Society of Nephrology
Published
2026-09-15
DOI
https://doi.org/10.1681/asn.0000001258
Primary Topic
Ion Transport and Channel Regulation
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article
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article

SLCO4A1 Governs PGE2-Mediated Natriuresis in the Kidney

Hu Xu, 江载芳, Youfei Guan, Yanlin Guo et al.
Journal of the American Society of Nephrology
Ion Transport and Channel Regulation
article

SLCO4A1 Governs PGE2-Mediated Natriuresis in the Kidney

Hu Xu, 江载芳, Youfei Guan, Yanlin Guo, 黄莹芝, Feng Zheng, Chunxiu Du, Guixiang Xie, Xiaoyan Zhang, Bin Li, Yulong Li, Fang Ye, Lihong Chen, Caichao Ye, Beibei Ma, Jin Zhong, Taotao Luo, Ruifen Li, Jie Sun, Lei Wang, Xiaowan Sun, Hui Zhou, Yulong Lin
article en

Abstract

Background: Renal sodium retention is a central driver of hypertension and fluid overload. Prostaglandin E 2 (PGE 2 ) has long been identified as a potent natriuretic and diuretic factor. However, the mechanisms governing intrarenal PGE 2 signaling and tubular sodium transport remain incompletely understood. Methods: Global and renal tubule-specific Slco4a1 knockout mouse, as well as renal tubule-specific Slco4a1 overexpressing mice, were generated to investigate the role of SLCO4A1 in renal sodium and water homeostasis. Computational docking, cellular studies, and in vivo functional analyses were performed to evaluate the role of SLCO4A1in intrarenal distribution of PGE 2 and its impact on tubular sodium transport. Results: SLCO4A1 was predominantly localized to the basolateral membrane of multiple renal tubular epithelial cells. Global and renal tubule-specific Slco4a1 gene deletion increased urine output and sodium excretion and reduced sodium reabsorption across multiple nephron segments in mice. This was accompanied by downregulation of key sodium transporters and channels including SGLT2, NHE3, NKCC2, NCC and ENaC. In contrast, renal tubule-specific overexpression of Slco4a1 displayed an opposite effect. Mechanistically, Slco4a1 deficiency led to accumulation of PGE 2 in the kidney interstitum, which suppressed the expression of sodium transporter and channels via the EP receptors. Specifically, EP 1 mediated the PGE 2 -induced suppression of NKCC2, α-ENaC, and β-ENaC. EP 2 was responsible for the suppression of NCC, while EP 3 was involved in suppressing SGLT2, NHE3 and γ-ENaC. Conclusions: Collectively, these findings uncovered a previously unrecognized role of SLCO4A1 in regulating intrarenal PGE 2 distribution and identified SLCO4A1-PGE 2 -EP receptor axis in fine-tuning renal tubular sodium transport.

Journal of the American Society of Nephrology
Shanxi Medical University (CN), Shenzhen University (CN), Shanxi University (CN), Dalian Medical University (CN), Peking University (CN), Southern University of Science and Technology (CN), National Institute of Biological Sciences, Beijing (CN), East China Normal University (CN), Tsinghua University (CN)
Clean water and sanitation
Openalex Percentile: Top 18%
Ion Transport and Channel Regulation
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