Extracellular nucleotides inhibit oxalate transport by human intestinal Caco-2-BBe cells through PKC-δ activation

Ruhul Amin1, Sapna Sharma, Sireesha Ratakonda

  • 1Department of Medicine, University of Chicago, Chicago, IL 60637, USA.

Insights

Purinergic signaling, including ATP and UTP, inhibits intestinal oxalate transport by reducing SLC26A6 surface expression. This finding is crucial for understanding and managing hyperoxaluria and kidney stone formation.

Area of Science:

  • Nephrology
  • Gastroenterology
  • Cell Biology

Background:

  • Nephrolithiasis (kidney stones) is a significant health issue, with calcium oxalate stones being the most common.
  • Intestinal oxalate secretion via the SLC26A6 transporter is vital for preventing hyperoxaluria.
  • Purinergic signaling, involving pathways like protein kinase C (PKC), influences intestinal functions.

Purpose of the Study:

  • To investigate the effect of purinergic stimulation (ATP and UTP) on oxalate transport in human intestinal cells.
  • To elucidate the specific signaling pathways and molecular mechanisms involved in this regulation.

Main Methods:

  • Utilized Caco-2-BBe (C2) cells to model human intestinal oxalate transport.
  • Measured [¹⁴C]oxalate uptake to assess Cl⁻/oxalate exchange activity mediated by SLC26A6.
  • Employed pharmacological inhibitors, agonists, antagonists, and PKC-δ knockdown, along with biotinylation studies.

Main Results:

  • ATP and UTP significantly inhibited oxalate transport in C2 cells.
  • The inhibitory effect was blocked by a PKC inhibitor, implicating PKC activation.
  • ATP-induced inhibition involved the P2Y₂ receptor, phospholipase C (PLC), and PKC-δ.
  • ATP reduced oxalate transport by decreasing SLC26A6 surface expression.

Conclusions:

  • ATP and UTP inhibit intestinal oxalate transport by reducing SLC26A6 surface expression via the P2Y₂ receptor, PLC, and PKC-δ signaling pathway.
  • These findings have implications for hyperoxaluria associated with inflammatory bowel disease, where elevated ATP/UTP and P2Y₂ receptor expression occur.
  • Understanding these mechanisms is critical for developing therapeutic strategies for hyperoxaluria and calcium oxalate nephrolithiasis.

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