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Am J Physiol Cell Physiol 289: C656-C664, 2005. First published April 20, 2005; doi:10.1152/ajpcell.00049.2005
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MEMBRANE TRANSPORTERS, ION CHANNELS, AND PUMPS

Cd2+-induced swelling-contraction dynamics in isolated kidney cortex mitochondria: role of Ca2+ uniporter, K+ cycling, and protonmotive force

Wing-Kee Lee,1,2 Malte Spielmann,1 Ulrich Bork,1 and Frank Thévenod1

1Department of Physiology and Pathophysiology, Faculty of Medicine, University of Witten/Herdecke, Witten, Germany; and 2Faculty of Life Sciences, University of Manchester, Manchester, United Kingdom

Submitted 7 February 2005 ; accepted in final form 12 April 2005

The nephrotoxic metal Cd2+ causes mitochondrial damage and apoptosis of kidney proximal tubule cells. A K+ cycle involving a K+ uniporter and a K+/H+ exchanger in the inner mitochondrial membrane (IMM) is thought to contribute to the maintenance of the structural and functional integrity of mitochondria. In the present study, we have investigated the effect of Cd2+ on K+ cycling in rat kidney cortex mitochondria. Cd2+ (EC50 ~19 µM) induced swelling of nonenergized mitochondria suspended in isotonic salt solutions according to the sequence KCl = NaCl > LiCl >> choline chloride. Cd2+-induced swelling of energized mitochondria had a similar EC50 value and showed the same cation dependence but was followed by a spontaneous contraction. Mitochondrial Ca2+ uniporter (MCU) blockers, but not permeability transition pore inhibitors, abolished swelling, suggesting the need for Cd2+ influx through the MCU for swelling to occur. Complete loss of mitochondrial membrane potential ({Delta}{Psi}m) induced by K+ influx did not prevent contraction, but addition of the K+/H+ exchanger blocker, quinine (1 mM), or the electroneutral protonophore nigericin (0.4 µM), abolished contraction, suggesting the mitochondrial pH gradient ({Delta}pHm) driving contraction. Accordingly, a quinine-sensitive partial dissipation of {Delta}pHm was coincident with the swelling-contraction phase. The data indicate that Cd2+ enters the matrix through the MCU to activate a K+ cycle. Initial K+ load via a Cd2+-activated K+ uniporter in the IMM causes osmotic swelling and breakdown of {Delta}{Psi}m and triggers quinine-sensitive K+/H+ exchange and contraction. Thus Cd2+-induced activation of a K+ cycle contributes to the dissipation of the mitochondrial protonmotive force.

bongkrekic acid; cyclosporin A; lanthanum; Ru360; ruthenium red



Address for reprint requests and other correspondence: F. Thévenod, Dept. of Physiology and Pathophysiology, Faculty of Medicine, Univ. of Witten/Herdecke, D-58448 Witten, Germany (e-mail: frank.thevenod{at}uni-wh.de)







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