Adenosinergic signaling inhibits oxalate transport by human intestinal Caco2-BBE cells through the A2B adenosine receptor

Author:

Jung Daniel1,Alshaikh Altayeb1,Ratakonda Sireesha1,Bashir Mohamed1,Amin Ruhul1,Jeon Sohee1,Stevens Jan1,Sharma Sapna1,Ahmed Wahaj1,Musch Mark1,Hassan Hatim1

Affiliation:

1. Department of Medicine, The University of Chicago, Chicago, Illinois

Abstract

Most kidney stones (KS) are composed of calcium oxalate, and small increases in urine oxalate affect the stone risk. Intestinal oxalate secretion mediated by anion exchanger SLC26A6 (PAT1) plays a crucial role in limiting net absorption of ingested oxalate, thereby preventing hyperoxaluria and related KS, reflecting the importance of understanding regulation of intestinal oxalate transport. We previously showed that ATP and UTP inhibit oxalate transport by human intestinal Caco2-BBE cells (C2). Since ATP is rapidly degraded to adenosine (ADO), we examined whether intestinal oxalate transport is regulated by ADO. We measured [14C]oxalate uptake in the presence of an outward Cl gradient as an assay of Cl-oxalate exchange activity, ≥49% of which is PAT1-mediated in C2 cells. We found that ADO significantly inhibited oxalate transport by C2 cells, an effect completely blocked by the nonselective ADO receptor antagonist 8- p-sulfophenyltheophylline. ADO also significantly inhibited oxalate efflux by C2 cells, which is important since PAT1 mediates oxalate efflux in vivo. Using pharmacological antagonists and A2B adenosine receptor (A2B AR) siRNA knockdown studies, we observed that ADO inhibits oxalate transport through the A2B AR, phospholipase C, and PKC. ADO inhibits oxalate transport by reducing PAT1 surface expression as shown by biotinylation studies. We conclude that ADO inhibits oxalate transport by lowering PAT1 surface expression in C2 cells through signaling pathways including the A2B AR, PKC, and phospholipase C. Given higher ADO levels and overexpression of the A2B AR in inflammatory bowel disease (IBD), our findings have potential relevance to pathophysiology of IBD-associated hyperoxaluria and related KS.

Funder

NIH

Publisher

American Physiological Society

Subject

Cell Biology,Physiology

Cited by 9 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. SLC26 family: a new insight for kidney stone disease;Frontiers in Physiology;2023-05-25

2. Neutrophil–Epithelial Crosstalk During Intestinal Inflammation;Cellular and Molecular Gastroenterology and Hepatology;2022

3. Oxalate Flux Across the Intestine: Contributions from Membrane Transporters;Comprehensive Physiology;2021-12-29

4. Extracellular ATP hydrolysis in Caco-2 human intestinal cell line;Biochimica et Biophysica Acta (BBA) - Biomembranes;2021-10

5. Pathophysiology and Management of Hyperoxaluria and Oxalate Nephropathy: A Review;American Journal of Kidney Diseases;2021-09

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