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Effects of P-glycoprotein on cell volume regulation in mouse proximal tubule

Y Miyata1, Y Asano, S Muto

  • 1Department of Nephrology, Jichi Medical School, Minamikawachi, Tochigi 329-0498, Japan.

Insights

P-glycoprotein (P-gp) modulates regulatory volume increase (RVI) in mouse proximal tubules during hyperosmotic stress, but not regulatory volume decrease (RVD) during hyposmotic stress. Na+/H+ exchange partially contributes to P-gp

Area of Science:

  • Cell Physiology
  • Renal Physiology
  • Molecular Biology

Background:

  • P-glycoprotein (P-gp) is an efflux transporter implicated in various cellular processes.
  • Cell volume regulation is crucial for maintaining kidney function.
  • The specific role of P-gp in proximal tubule cell volume regulation remains unclear.

Purpose of the Study:

  • To investigate the role of P-glycoprotein (P-gp) in cell volume regulation in mouse proximal tubules.
  • To determine P-gp's involvement in regulatory volume decrease (RVD) and regulatory volume increase (RVI) under osmotic stress.
  • To elucidate the contribution of Na+/H+ exchange to P-gp-mediated volume regulation.

Main Methods:

  • Isolated nonperfused proximal tubule S2 segments from wild-type (WT) and P-gp knockout (KO) mice were used.
  • Tubules were subjected to hyposmotic (180 mosmol/kgH2O) and hyperosmotic (500 mosmol/kgH2O) conditions.
  • The effects of P-gp inhibitors (verapamil, cyclosporin A) and Na+/H+ exchange inhibitors (tetraethylammonium, EIPA) were assessed.

Main Results:

  • P-gp did not affect RVD in hyposmotic conditions in either WT or KO mice.
  • P-gp inhibitors blocked RVI in WT tubules under hyperosmotic stress.
  • KO tubules exhibited RVI under hyperosmotic stress, which was abolished by P-gp inhibitors, indicating P-gp's role in modulating RVI.

Conclusions:

  • P-glycoprotein (P-gp) modulates regulatory volume increase (RVI) in mouse proximal tubules during hyperosmotic stress.
  • P-gp does not play a significant role in regulatory volume decrease (RVD) during hyposmotic stress.
  • Basolateral Na+/H+ exchange contributes to P-gp-mediated RVI modulation under hyperosmotic conditions.

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