A Critical Role for Chloride Channel-3 (CIC-3) in Smooth Muscle Cell Activation and Neointima Formation

Author:

Chu Xi1,Filali Mohammed1,Stanic Bojana1,Takapoo Maysam1,Sheehan Andrea1,Bhalla Ramesh1,Lamb Fred S.1,Miller Francis J.1

Affiliation:

1. From the Departments of Anatomy and Cell Biology (B.S., A.S., R.B., F.J.M.), Internal Medicine (X.C., F.J.M.), and Pediatrics (M.F., F.S.L.) and the Free Radical and Radiation Biology Program (F.J.M.), University of Iowa, Iowa City, Iowa; Veterans Affair Medical Center, Iowa City, Iowa (M.T., F.J.M.); Department of Cardiology, Provincial Hospital, Shandong Univeristy, Shandong, People's Republic of China (X.C.).

Abstract

Objective— We have shown that the chloride-proton antiporter chloride channel-3 (ClC-3) is required for endosome-dependent signaling by the Nox1 NADPH oxidase in SMCs. In this study, we tested the hypothesis that ClC-3 is necessary for proliferation of smooth muscle cells (SMCs) and contributes to neointimal hyperplasia following vascular injury. Methods and Results— Studies were performed in SMCs isolated from the aorta of ClC-3-null and littermate control (wild-type [WT]) mice. Thrombin and tumor necrosis factor-α (TNF-α) each caused activation of both mitogen activated protein kinase extracellular signal–regulated kinases 1 and 2 and the matrix-degrading enzyme matrix metalloproteinase-9 and cell proliferation of WT SMCs. Whereas responses to thrombin were preserved in ClC-3-null SMCs, the responses to TNF-α were markedly impaired. These defects normalized following gene transfer of ClC-3. Carotid injury increased vascular ClC-3 expression, and compared with WT mice, ClC-3-null mice exhibited a reduction in neointimal area of the carotid artery 28 days after injury. Conclusion— ClC-3 is necessary for the activation of SMCs by TNF-α but not thrombin. Deficiency of ClC-3 markedly reduces neointimal hyperplasia following vascular injury. In view of our previous findings, this observation is consistent with a role for ClC-3 in endosomal Nox1-dependent signaling. These findings identify ClC-3 as a novel target for the prevention of inflammatory and proliferative vascular diseases.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine

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