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Am J Physiol Cell Physiol 292: C1854-C1866, 2007. First published January 17, 2007; doi:10.1152/ajpcell.00474.2006
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MEMBRANE TRANSPORTERS, ION CHANNELS, AND PUMPS

Shrinkage insensitivity of NKCC1 in myosin II-depleted cytoplasts from Ehrlich ascites tumor cells

Else K. Hoffmann and Stine F. Pedersen

Department of Molecular Biology, University of Copenhagen, Copenhagen, Denmark

Submitted 1 September 2006 ; accepted in final form 11 January 2007

Protein phosphorylation/dephosphorylation and cytoskeletal reorganization regulate the Na+-K+-2Cl cotransporter (NKCC1) during osmotic shrinkage; however, the mechanisms involved are unclear. We show that in cytoplasts, plasma membrane vesicles detached from Ehrlich ascites tumor cells (EATC) by cytochalasin treatment, NKCC1 activity evaluated as bumetanide-sensitive 86Rb influx was increased compared with the basal level in intact cells yet could not be further increased by osmotic shrinkage. Accordingly, cytoplasts exhibited no regulatory volume increase after shrinkage. In cytoplasts, cortical F-actin organization was disrupted, and myosin II, which in shrunken EATC translocates to the cortical region, was absent. Moreover, NKCC1 activity was essentially insensitive to the myosin light chain kinase (MLCK) inhibitor ML-7, a potent blocker of shrinkage-induced NKCC1 activity in intact EATC. Cytoplast NKCC1 activity was potentiated by the Ser/Thr protein phosphatase inhibitor calyculin A, partially inhibited by the protein kinase A inhibitor H89, and blocked by the broad protein kinase inhibitor staurosporine. Cytoplasts exhibited increased protein levels of NKCC1, Ste20-related proline- and alanine-rich kinase (SPAK), and oxidative stress response kinase 1, yet they lacked the shrinkage-induced plasma membrane translocation of SPAK observed in intact cells. The basal phosphorylation of p38 mitogen-activated protein kinase (p38 MAPK) was increased in cytoplasts compared with intact cells, yet in contrast to the substantial activation in shrunken intact cells, p38 MAPK could not be further activated by shrinkage of the cytoplasts. Together these findings indicate that shrinkage activation of NKCC1 in EATC is dependent on the cortical F-actin network, myosin II, and MLCK.

F-actin; Na+-K+-2Cl cotransporter; myosin light chain kinase; protein kinase A



Address for reprint requests and other correspondence: E. K. Hoffmann, Dept. of Molecular Biology, Univ. of Copenhagen, 13 Universitetsparken, Dk-2100 Copenhagen, Denmark (e-mail: ekhoffmann{at}aki.ku.dk)







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