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Am J Physiol Renal Physiol 284: F852-F862, 2003. First published December 3, 2002; doi:10.1152/ajprenal.00210.2002
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Vol. 284, Issue 4, F852-F862, April 2003

ADF/cofilin mediates actin cytoskeletal alterations in LLC-PK cells during ATP depletion

Sharon L. Ashworth1, Erica L. Southgate1, Ruben M. Sandoval1, Peter J. Meberg2, James R. Bamburg3, and Bruce A. Molitoris1

1 Division of Nephrology, Department of Medicine, Indiana University, and Roudebush Veterans Affairs Medical Center, Indianapolis, Indiana 46202-5116; 2 Department of Biology, University of North Dakota, Grand Forks, North Dakota 58201; and 3 Department of Biochemistry and Molecular Biology, Colorado State University, Fort Collins, Colorado 80523-1870

Ischemic injury induces actin cytoskeleton disruption and aggregation, but mechanisms affecting these changes remain unclear. To determine the role of actin-depolymerizing factor (ADF)/ cofilin participation in ischemic-induced actin cytoskeletal breakdown, we utilized porcine kidney cultured cells, LLC-PKA4.8, and adenovirus containing wild-type (wt), constitutively active, and inactive Xenopus ADF/cofilin linked to green fluorescence protein [XAC(wt)-GFP] in an ATP depletion model. High adenoviral infectivity (70%) in LLC-PKA4.8 cells resulted in linearly increasing XAC(wt)-GFP and phosphorylated (p)XAC(wt)-GFP (inactive) expression. ATP depletion rapidly induced dephosphorylation, and, therefore, activation, of endogenous pcofilin as well as pXAC(wt)-GFP in conjunction with the formation of fluorescent XAC(wt)-GFP/actin aggregates and rods. No significant actin cytoskeletal alterations occurred with short-term ATP depletion of LLC-PKA4.8 cells expressing GFP or the constitutively inactive mutant XAC(S3E)-GFP, but cells expressing the constitutively active mutant demonstrated nearly instantaneous actin disruption with aggregate and rod formation. Confocal image three-dimensional volume reconstructions of normal and ATP-depleted LLC-PKA4.8 cells demonstrated that 25 min of ATP depletion induced a rapid increase in XAC(wt)-GFP apical and basal signal in addition to XAC-GFP/actin aggregate formation. These data demonstrate XAC(wt)-GFP participates in ischemia-induced actin cytoskeletal alterations and determines the rate and extent of these ATP depletion-induced cellular alterations.

ischemia; microvilli; actin-depolymerizing factor; XAC-GFP


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