ADAMTSL3 knock-out mice develop cardiac dysfunction and dilatation with increased TGFβ signalling after pressure overload

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作者
Karoline B. Rypdal
A. Olav Melleby
Emma L. Robinson
Jia Li
Sheryl Palmero
Deborah E. Seifert
Daniel Martin
Catelyn Clark
Begoña López
Kristine Andreassen
Christen P. Dahl
Ivar Sjaastad
Theis Tønnessen
Mathis K. Stokke
William E. Louch
Arantxa González
Stephane Heymans
Geir Christensen
Suneel S. Apte
Ida G. Lunde
机构
[1] Oslo University Hospital and University of Oslo,Institute for Experimental Medical Research
[2] Akershus University Hospital,Division of Diagnostics and Technology
[3] University of Oslo,K.G. Jebsen Center for Cardiac Biomarkers
[4] University of Oslo,Department of Molecular Medicine, Institute of Basic Medical Sciences
[5] Maastricht University,Department of Cardiology
[6] CARIM School for Cardiovascular Diseases,Department of Biomedical Engineering
[7] Cleveland Clinic Lerner Research Institute,Program of Cardiovascular Diseases
[8] CIMA Universidad de Navarra and IdiSNA,Department of Cardiology
[9] CIBERCV,Department of Cardiothoracic Surgery
[10] Carlos III Institute of Health,undefined
[11] Oslo University Hospital Rikshospitalet,undefined
[12] Oslo University Hospital Ullevål,undefined
[13] Centre for Molecular and Vascular Biology,undefined
[14] Department of Cardiovascular Sciences,undefined
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Communications Biology | / 5卷
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摘要
Heart failure is a major cause of morbidity and mortality worldwide, and can result from pressure overload, where cardiac remodelling is characterized by cardiomyocyte hypertrophy and death, fibrosis, and inflammation. In failing hearts, transforming growth factor (TGF)β drives cardiac fibroblast (CFB) to myofibroblast differentiation causing excessive extracellular matrix production and cardiac remodelling. New strategies to target pathological TGFβ signalling in heart failure are needed. Here we show that the secreted glycoprotein ADAMTSL3 regulates TGFβ in the heart. We found that Adamtsl3 knock-out mice develop exacerbated cardiac dysfunction and dilatation with increased mortality, and hearts show increased TGFβ activity and CFB activation after pressure overload by aortic banding. Further, ADAMTSL3 overexpression in cultured CFBs inhibits TGFβ signalling, myofibroblast differentiation and collagen synthesis, suggesting a cardioprotective role for ADAMTSL3 by regulating TGFβ activity and CFB phenotype. These results warrant future investigation of the potential beneficial effects of ADAMTSL3 in heart failure.
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