Literature DB >> 30846427

Inactivation of platelet-derived TGF-β1 attenuates aortic stenosis progression in a robust murine model.

Rohan Varshney1, Brennah Murphy1, Sean Woolington1, Shahrouz Ghafoory1, Sixia Chen2, Tyler Robison1, Jasimuddin Ahamed1.   

Abstract

Aortic stenosis (AS) is a degenerative heart condition characterized by fibrosis and narrowing of aortic valves (AV), resulting in high wall shear stress (WSS) across valves. AS is associated with high plasma levels of transforming growth factor-β1 (TGF-β1), which can be activated by WSS to induce organ fibrosis, but the cellular source of TGF-β1 is not clear. Here, we show that platelet-derived TGF-β1 plays an important role in AS progression. We first established an aggressive and robust murine model of AS, using the existing Ldlr -/- Apob100/100 (LDLR) breed of mice, and accelerated AS progression by feeding them a high-fat diet (HFD). We then captured very high resolution images of AV movement and thickness and of blood flow velocity across the AV, using a modified ultrasound imaging technique, which revealed early evidence of AS and distinguished different stages of AS progression. More than 90% of LDLR animals developed AS within 6 months of HFD. Scanning electron microscopy and whole-mount immunostaining imaging of AV identified activated platelets physically attached to valvular endothelial cells (VEC) expressing high phosphorylated Smad2 (p-Smad2). To test the contribution of platelet-derived TGF-β1 in AS, we derived LDLR mice lacking platelet TGF-β1 (TGF-β1platelet-KO-LDLR) and showed reduced AS progression and lower p-Smad2 and myofibroblasts in their AV compared with littermate controls fed the HFD for 6 months. Our data suggest that platelet-derived TGF-β1 triggers AS progression by inducing signaling in VEC, and their subsequent transformation into collagen-producing-myofibroblasts. Thus, inhibiting platelet-derived TGF-β1 might attenuate or prevent fibrotic diseases characterized by platelet activation and high WSS, such as AS.
© 2019 by The American Society of Hematology.

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Year:  2019        PMID: 30846427      PMCID: PMC6418501          DOI: 10.1182/bloodadvances.2018025817

Source DB:  PubMed          Journal:  Blood Adv        ISSN: 2473-9529


  42 in total

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2.  New methodologies to accurately assess circulating active transforming growth factor-β1 levels: implications for evaluating heart failure and the impact of left ventricular assist devices.

Authors:  Donna Mancini; Juan Monteagudo; Mayte Suárez-Fariñas; Jeffrey Bander; Rohan Varshney; Juana Gonzalez; Barry S Coller; Jasimuddin Ahamed
Journal:  Transl Res       Date:  2017-11-05       Impact factor: 7.012

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5.  Evidence for active regulation of pro-osteogenic signaling in advanced aortic valve disease.

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Journal:  Dev Dyn       Date:  2004-06       Impact factor: 3.780

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  14 in total

1.  Mechanosensitive pathways are regulated by mechanosensitive miRNA clusters in endothelial cells.

Authors:  Sean Herault; Jarka Naser; Daniele Carassiti; K Yean Chooi; Rosa Nikolopoulou; Marti Llopart Font; Miten Patel; Ryan Pedrigi; Rob Krams
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Review 2.  Innate and adaptive immunity in cardiovascular calcification.

Authors:  Livia S A Passos; Adrien Lupieri; Dakota Becker-Greene; Elena Aikawa
Journal:  Atherosclerosis       Date:  2020-02-28       Impact factor: 5.162

Review 3.  Inflammatory and Biomechanical Drivers of Endothelial-Interstitial Interactions in Calcific Aortic Valve Disease.

Authors:  Katherine Driscoll; Alexander D Cruz; Jonathan T Butcher
Journal:  Circ Res       Date:  2021-04-29       Impact factor: 17.367

4.  HIV protease inhibitor ritonavir induces renal fibrosis and dysfunction: role of platelet-derived TGF-β1 and intervention via antioxidant pathways.

Authors:  Jeffrey Laurence; Sonia Elhadad; Sandra Gostynska; Zhongxin Yu; Hunter Terry; Rohan Varshney; Kar-Ming Fung; Mary E Choi; Jasimuddin Ahamed
Journal:  AIDS       Date:  2020-06-01       Impact factor: 4.632

5.  Oscillatory shear potentiates latent TGF-β1 activation more than steady shear as demonstrated by a novel force generator.

Authors:  Karim Kouzbari; Mohammad R Hossan; Julien H Arrizabalaga; Rohan Varshney; Aaron D Simmons; Sandra Gostynska; Matthias U Nollert; Jasimuddin Ahamed
Journal:  Sci Rep       Date:  2019-04-15       Impact factor: 4.379

6.  COX-2 Is Downregulated in Human Stenotic Aortic Valves and Its Inhibition Promotes Dystrophic Calcification.

Authors:  Francesco Vieceli Dalla Sega; Francesca Fortini; Paolo Cimaglia; Luisa Marracino; Elisabetta Tonet; Antonio Antonucci; Marco Moscarelli; Gianluca Campo; Paola Rizzo; Roberto Ferrari
Journal:  Int J Mol Sci       Date:  2020-11-24       Impact factor: 5.923

Review 7.  Platelets: Implications in Aortic Valve Stenosis and Bioprosthetic Valve Dysfunction From Pathophysiology to Clinical Care.

Authors:  Stephanie L Sellers; Gaurav S Gulsin; Devyn Zaminski; Rong Bing; Azeem Latib; Janarthanan Sathananthan; Philippe Pibarot; Rihab Bouchareb
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Review 8.  Uncoupling the Vicious Cycle of Mechanical Stress and Inflammation in Calcific Aortic Valve Disease.

Authors:  Nalin H Dayawansa; Sara Baratchi; Karlheinz Peter
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Review 9.  Severe aortic stenosis patient risk during the COVID-19 pandemic.

Authors:  Jasimuddin Ahamed
Journal:  Open Heart       Date:  2020-09

10.  Immunohistochemical Expression of TGF-β1 in Kidneys of Cats with Chronic Kidney Disease.

Authors:  Yuki Uehara; Yu Furusawa; Md Shafiqul Islam; Osamu Yamato; Hitoshi Hatai; Osamu Ichii; Akira Yabuki
Journal:  Vet Sci       Date:  2022-03-03
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