Literature DB >> 30973827

Contractile and hemodynamic forces coordinate Notch1b-mediated outflow tract valve formation.

Jeffrey J Hsu1, Vijay Vedula2, Kyung In Baek3, Cynthia Chen3, Junjie Chen3, Man In Chou3, Jeffrey Lam3, Shivani Subhedar3, Jennifer Wang3, Yichen Ding3, Chih-Chiang Chang3, Juhyun Lee4, Linda L Demer1,3,5, Yin Tintut1,5, Alison L Marsden2, Tzung K Hsiai1,3.   

Abstract

Biomechanical forces and endothelial-to-mesenchymal transition (EndoMT) are known to mediate valvulogenesis. However, the relative contributions of myocardial contractile and hemodynamic shear forces remain poorly understood. We integrated 4-D light-sheet imaging of transgenic zebrafish models with moving-domain computational fluid dynamics to determine effects of changes in contractile forces and fluid wall shear stress (WSS) on ventriculobulbar (VB) valve development. Augmentation of myocardial contractility with isoproterenol increased both WSS and Notch1b activity in the developing outflow tract (OFT) and resulted in VB valve hyperplasia. Increasing WSS in the OFT, achieved by increasing blood viscosity through EPO mRNA injection, also resulted in VB valve hyperplasia. Conversely, decreasing myocardial contractility by Tnnt2a morpholino oligonucleotide (MO) administration, 2,3-butanedione monoxime treatment, or Plcγ1 inhibition completely blocked VB valve formation, which could not be rescued by increasing WSS or activating Notch. Decreasing WSS in the OFT, achieved by slowing heart rate with metoprolol or reducing viscosity with Gata1a MO, did not affect VB valve formation. Immunofluorescent staining with the mesenchymal marker, DM-GRASP, revealed that biomechanical force-mediated Notch1b activity is implicated in EndoMT to modulate valve morphology. Altogether, increases in WSS result in Notch1b- EndoMT-mediated VB valve hyperplasia, whereas decreases in contractility result in reduced Notch1b activity, absence of EndoMT, and VB valve underdevelopment. Thus, we provide developmental mechanotransduction mechanisms underlying Notch1b-mediated EndoMT in the OFT.

Entities:  

Keywords:  Cardiology; Cardiovascular disease; Development; Embryonic development

Year:  2019        PMID: 30973827      PMCID: PMC6542601          DOI: 10.1172/jci.insight.124460

Source DB:  PubMed          Journal:  JCI Insight        ISSN: 2379-3708


  49 in total

1.  Notch promotes epithelial-mesenchymal transition during cardiac development and oncogenic transformation.

Authors:  Luika A Timmerman; Joaquín Grego-Bessa; Angel Raya; Esther Bertrán; José María Pérez-Pomares; Juan Díez; Sergi Aranda; Sergio Palomo; Frank McCormick; Juan Carlos Izpisúa-Belmonte; José Luis de la Pompa
Journal:  Genes Dev       Date:  2003-12-30       Impact factor: 11.361

2.  Intracardiac fluid forces are an essential epigenetic factor for embryonic cardiogenesis.

Authors:  Jay R Hove; Reinhard W Köster; Arian S Forouhar; Gabriel Acevedo-Bolton; Scott E Fraser; Morteza Gharib
Journal:  Nature       Date:  2003-01-09       Impact factor: 49.962

Review 3.  Heart valve development: endothelial cell signaling and differentiation.

Authors:  Ehrin J Armstrong; Joyce Bischoff
Journal:  Circ Res       Date:  2004-09-03       Impact factor: 17.367

4.  Notch activation results in phenotypic and functional changes consistent with endothelial-to-mesenchymal transformation.

Authors:  Michela Noseda; Graeme McLean; Kyle Niessen; Linda Chang; Ingrid Pollet; Rachel Montpetit; Réza Shahidi; Katerina Dorovini-Zis; Linheng Li; Benjamin Beckstead; Ralph E Durand; Pamela A Hoodless; Aly Karsan
Journal:  Circ Res       Date:  2004-02-26       Impact factor: 17.367

5.  VEGF-PLCgamma1 pathway controls cardiac contractility in the embryonic heart.

Authors:  Wolfgang Rottbauer; Steffen Just; Georgia Wessels; Nicole Trano; Patrick Most; Hugo A Katus; Mark C Fishman
Journal:  Genes Dev       Date:  2005-07-01       Impact factor: 11.361

6.  Mutations in NOTCH1 cause aortic valve disease.

Authors:  Vidu Garg; Alecia N Muth; Joshua F Ransom; Marie K Schluterman; Robert Barnes; Isabelle N King; Paul D Grossfeld; Deepak Srivastava
Journal:  Nature       Date:  2005-07-17       Impact factor: 49.962

7.  Loss of gata1 but not gata2 converts erythropoiesis to myelopoiesis in zebrafish embryos.

Authors:  Jenna L Galloway; Rebecca A Wingert; Christine Thisse; Bernard Thisse; Leonard I Zon
Journal:  Dev Cell       Date:  2005-01       Impact factor: 12.270

8.  Genetic and cellular analyses of zebrafish atrioventricular cushion and valve development.

Authors:  Dimitris Beis; Thomas Bartman; Suk-Won Jin; Ian C Scott; Leonard A D'Amico; Elke A Ober; Heather Verkade; Julie Frantsve; Holly A Field; Ann Wehman; Herwig Baier; Alexandra Tallafuss; Laure Bally-Cuif; Jau-Nian Chen; Didier Y R Stainier; Benno Jungblut
Journal:  Development       Date:  2005-08-17       Impact factor: 6.868

Review 9.  The incidence of congenital heart disease.

Authors:  Julien I E Hoffman; Samuel Kaplan
Journal:  J Am Coll Cardiol       Date:  2002-06-19       Impact factor: 24.094

10.  Early myocardial function affects endocardial cushion development in zebrafish.

Authors:  Thomas Bartman; Emily C Walsh; Kuo-Kuang Wen; Melissa McKane; Jihui Ren; Jonathan Alexander; Peter A Rubenstein; Didier Y R Stainier
Journal:  PLoS Biol       Date:  2004-05-11       Impact factor: 8.029

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  15 in total

1.  Saak Transform-Based Machine Learning for Light-Sheet Imaging of Cardiac Trabeculation.

Authors:  Yichen Ding; Varun Gudapati; Ruiyuan Lin; Yanan Fei; Rene R Sevag Packard; Sibo Song; Chih-Chiang Chang; Kyung In Baek; Zhaoqiang Wang; Mehrdad Roustaei; Dengfeng Kuang; C-C Jay Kuo; Tzung K Hsiai
Journal:  IEEE Trans Biomed Eng       Date:  2020-12-21       Impact factor: 4.538

2.  Optical coherence tomography for in vivo imaging of endocardial to mesenchymal transition during avian heart development.

Authors:  Katherine Courchaine; Sandra Rugonyi
Journal:  Biomed Opt Express       Date:  2019-11-01       Impact factor: 3.732

3.  Computational simulations of the 4D micro-circulatory network in zebrafish tail amputation and regeneration.

Authors:  Mehrdad Roustaei; Kyung In Baek; Zhaoqiang Wang; Susana Cavallero; Sandro Satta; Angela Lai; Ryan O'Donnell; Vijay Vedula; Yichen Ding; Alison Lesley Marsden; Tzung K Hsiai
Journal:  J R Soc Interface       Date:  2022-02-16       Impact factor: 4.118

Review 4.  Can't handle the stress? Mechanobiology and disease.

Authors:  Noam Zuela-Sopilniak; Jan Lammerding
Journal:  Trends Mol Med       Date:  2022-06-15       Impact factor: 15.272

Review 5.  Endothelial mechanotransduction in cardiovascular development and regeneration: emerging approaches and animal models.

Authors:  Susana Cavallero; Ana M Blázquez-Medela; Sandro Satta; Tzung K Hsiai
Journal:  Curr Top Membr       Date:  2021-10-12       Impact factor: 2.025

6.  Mechanically activated piezo channels modulate outflow tract valve development through the Yap1 and Klf2-Notch signaling axis.

Authors:  Anne-Laure Duchemin; Hélène Vignes; Julien Vermot
Journal:  Elife       Date:  2019-09-16       Impact factor: 8.140

Review 7.  Epigenetics and Mechanobiology in Heart Development and Congenital Heart Disease.

Authors:  Dillon K Jarrell; Mallory L Lennon; Jeffrey G Jacot
Journal:  Diseases       Date:  2019-09-01

8.  Optogenetic cardiac pacing in cultured mouse embryos under imaging guidance.

Authors:  Andrew L Lopez; Shang Wang; Irina V Larina
Journal:  J Biophotonics       Date:  2020-08-18       Impact factor: 3.207

9.  A hybrid of light-field and light-sheet imaging to study myocardial function and intracardiac blood flow during zebrafish development.

Authors:  Zhaoqiang Wang; Yichen Ding; Sandro Satta; Mehrdad Roustaei; Peng Fei; Tzung K Hsiai
Journal:  PLoS Comput Biol       Date:  2021-07-06       Impact factor: 4.475

Review 10.  New Concepts in the Development and Malformation of the Arterial Valves.

Authors:  Deborah J Henderson; Lorraine Eley; Bill Chaudhry
Journal:  J Cardiovasc Dev Dis       Date:  2020-09-24
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