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      RNAi screening identifies a mechanosensitive ROCK-JAK2-STAT3 network central to myofibroblast activation

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          ABSTRACT

          Myofibroblasts play key roles in wound healing and pathological fibrosis. Here, we used an RNAi screen to characterize myofibroblast regulatory genes, using a high-content imaging approach to quantify α-smooth muscle actin stress fibers in cultured human fibroblasts. Screen hits were validated on physiological compliance hydrogels, and selected hits tested in primary fibroblasts from patients with idiopathic pulmonary fibrosis. Our RNAi screen led to the identification of STAT3 as an essential mediator of myofibroblast activation and function. Strikingly, we found that STAT3 phosphorylation, while responsive to exogenous ligands on both soft and stiff matrices, is innately active on a stiff matrix in a ligand/receptor-independent, but ROCK- and JAK2-dependent fashion. These results demonstrate how a cytokine-inducible signal can become persistently activated by pathological matrix stiffening. Consistent with a pivotal role for this pathway in driving persistent fibrosis, a STAT3 inhibitor attenuated murine pulmonary fibrosis when administered in a therapeutic fashion after bleomycin injury. Our results identify novel genes essential for the myofibroblast phenotype, and point to STAT3 as an important target in pulmonary fibrosis and other fibrotic diseases.

          Abstract

          Summary: Myofibroblasts are key drivers of fibrosis. Here, RNAi screening is used to identify novel regulators of myofibroblast activation, and a matrix-stiffness-dependent STAT3 activation pathway is identified.

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          Author and article information

          Journal
          J Cell Sci
          J. Cell. Sci
          JCS
          joces
          Journal of Cell Science
          The Company of Biologists Ltd
          0021-9533
          1477-9137
          15 May 2018
          15 May 2018
          15 May 2019
          : 131
          : 10
          : jcs209932
          Affiliations
          [1 ] Department of Environmental Health, Harvard School of Public Health , Boston, MA 02115, USA
          [2 ] Department of Physiology & Biomedical Engineering, Mayo Clinic , Rochester, MN 55905, USA
          [3 ] Image and Data Analysis Core, Harvard Medical School , Boston, MA 02115, USA
          [4 ] Division of Pulmonary and Critical Care Medicine, Mayo Clinic , Rochester, MN 55905, USA
          [5 ] Departments of Anesthesiology and Physiology & Biomedical Engineering, Mayo Clinic , Rochester, MN 55905, USA
          [6 ] Division of Rheumatology and Immunology, Department of Medicine, Medical University of South Carolina , Charleston, SC 29425, USA
          [7 ] Department of Laboratory Medicine and Pathology, Mayo Clinic , Rochester, MN 55905, USA
          [8 ] Department of Respiratory Diseases Research, Boehringer Ingelheim Pharma GmbH & Co. KG , 88397 Biberach, Germany
          Author notes
          Author information
          http://orcid.org/0000-0002-4525-8684
          http://orcid.org/0000-0002-7670-2143
          http://orcid.org/0000-0003-1613-8322
          http://orcid.org/0000-0002-5115-9025
          Article
          PMC6031327 PMC6031327 6031327 JCS209932
          10.1242/jcs.209932
          6031327
          29678906
          8388e37d-34c3-48ac-b468-be0d92f2a063
          © 2018. Published by The Company of Biologists Ltd
          History
          : 21 August 2017
          : 13 April 2018
          Funding
          Funded by: Boehringer Ingelheim, http://dx.doi.org/10.13039/100008349;
          Funded by: Thomas and Julie Hurvis;
          Funded by: Caerus Foundation;
          Award ID: P30 AR061271 and K24 AR060297
          Funded by: National Institutes of Health;
          Award ID: HL092961 and HL113796
          Categories
          Tools and Resources

          TGF-β,Stiffness,Fibroblast,siRNA,Fibrosis
          TGF-β, Stiffness, Fibroblast, siRNA, Fibrosis

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