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

被引:34
作者
Hsu, Jeffrey J. [1 ]
Vedula, Vijay [2 ,3 ]
Baek, Kyung In [4 ]
Chen, Cynthia [4 ]
Chen, Junjie [4 ]
Chou, Man In [4 ]
Lam, Jeffrey [4 ]
Subhedar, Shivani [4 ]
Wang, Jennifer [4 ]
Ding, Yichen [4 ]
Chang, Chih-Chiang [4 ]
Lee, Juhyun [5 ]
Demer, Linda L. [1 ,4 ,6 ]
Tintut, Yin [1 ,6 ]
Marsden, Alison L. [2 ,3 ]
Hsiai, Tzung K. [1 ,4 ]
机构
[1] UCLA, Div Cardiol, Dept Med, Los Angeles, CA 90073 USA
[2] Stanford Univ, Dept Pediat, Stanford, CA 94305 USA
[3] Stanford Univ, Dept Bioengn, Stanford, CA USA
[4] UCLA, Dept Bioengn, Los Angeles, CA 90073 USA
[5] Univ Texas Arlington, Dept Bioengn, Arlington, TX 76019 USA
[6] UCLA, Dept Physiol, Los Angeles, CA 90073 USA
关键词
CARDIAC DEVELOPMENT; MESENCHYMAL TRANSFORMATION; NOTCH; MECHANOTRANSDUCTION; CUSHION;
D O I
10.1172/jci.insight.124460
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 ;
摘要
Biomechanical forces and endothelial-mesenchymal transition (EndoMT) are known to mediate valvulogenesis. However, the relative contributions of myocardial contractile and hemodynamic shear forces remain poorly understood. We integrated 4D 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 Plc gamma 1 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- and 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.
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页数:14
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共 55 条
[1]   Numerical blood flow simulation in surgical corrections: what do we need for an accurate analysis? [J].
Arbia, Gregory ;
Corsini, Chiara ;
Moghadam, Mahdi Esmaily ;
Marsden, Alison L. ;
Migliavacca, Francesco ;
Pennati, Giancarlo ;
Hsia, Tain-Yen ;
Vignon-Clementel, Irene E. .
JOURNAL OF SURGICAL RESEARCH, 2014, 186 (01) :44-55
[2]   Heart valve development - Endothelial cell signaling and differentiation [J].
Armstrong, EJ ;
Bischoff, J .
CIRCULATION RESEARCH, 2004, 95 (05) :459-470
[3]   Ultrafine Particle Exposure Reveals the Importance of FOXO1/Notch Activation Complex for Vascular Regeneration [J].
Baek, Kyung In ;
Packard, Rene R. Sevag ;
Hsu, Jeffrey J. ;
Saffari, Arian ;
Ma, Zhao ;
Anh Phuong Luu ;
Pietersen, Andrew ;
Yen, Hilary ;
Ren, Bin ;
Ding, Yichen ;
Sioutas, Constantinos ;
Li, Rongsong ;
Hsiai, Tzung K. .
ANTIOXIDANTS & REDOX SIGNALING, 2018, 28 (13) :1209-1223
[4]   Early myocardial function affects endocardial cushion development in zebrafish [J].
Bartman, T ;
Walsh, EC ;
Wen, KK ;
McKane, M ;
Ren, JH ;
Alexander, J ;
Rubenstein, PA ;
Stainier, DYR .
PLOS BIOLOGY, 2004, 2 (05) :673-681
[5]   Genetic and cellular analyses of zebrafish atrioventricular cushion and valve development [J].
Beis, D ;
Bartman, T ;
Jin, SW ;
Scott, IC ;
D'Amico, LA ;
Ober, EA ;
Verkade, H ;
Frantsve, J ;
Field, HA ;
Wehman, A ;
Baier, H ;
Tallafuss, A ;
Bally-Cuif, L ;
Chen, JN ;
Stainier, DYR ;
Jungblut, B .
DEVELOPMENT, 2005, 132 (18) :4193-4204
[6]   Genetic and physiologic dissection of the vertebrate cardiac conduction system [J].
Chi, Neil C. ;
Shaw, Robin M. ;
Jungblut, Benno ;
Huisken, Jan ;
Ferrer, Tania ;
Arnaout, Rima ;
Scott, Ian ;
Beis, Dimitris ;
Xiao, Tong ;
Baier, Herwig ;
Jan, Lily Y. ;
Tristani-Firouzi, Martin ;
Stainier, Didier Y. R. .
PLOS BIOLOGY, 2008, 6 (05) :1006-1019
[7]   Heart Valve Development Regulatory Networks in Development and Disease [J].
Combs, Michelle D. ;
Yutzey, Katherine E. .
CIRCULATION RESEARCH, 2009, 105 (05) :408-421
[8]   Sequential Notch activation regulates ventricular chamber development [J].
D'Amato, Gaetano ;
Luxan, Guillermo ;
del Monte-Nieto, Gonzalo ;
Martinez-Poveda, Beatriz ;
Torroja, Carlos ;
Walter, Wencke ;
Bochter, Matthew S. ;
Benedito, Rui ;
Cole, Susan ;
Martinez, Fernando ;
Hadjantonakis, Anna-Katerina ;
Uemura, Akiyoshi ;
Jimenez-Borreguero, Luis J. ;
de la Pompa, Jose Luis .
NATURE CELL BIOLOGY, 2016, 18 (01) :7-+
[9]   ZebraBeat: a flexible platform for the analysis of the cardiac rate in zebrafish embryos [J].
De Luca, Elisa ;
Zaccaria, Gian Maria ;
Hadhoud, Marwa ;
Rizzo, Giovanna ;
Ponzini, Raffaele ;
Morbiducci, Umberto ;
Santoro, Massimo Mattia .
SCIENTIFIC REPORTS, 2014, 4
[10]   Integrating light-sheet imaging with virtual reality to recapitulate developmental cardiac mechanics [J].
Ding, Yichen ;
Abiri, Arash ;
Abiri, Parinaz ;
Li, Shuoran ;
Chang, Chih-Chiang ;
Baek, Kyung In ;
Hsu, Jeffrey J. ;
Sideris, Elias ;
Li, Yilei ;
Lee, Juhyun ;
Segura, Tatiana ;
Nguyen, Thao P. ;
Bui, Alexander ;
Packard, Rene R. Sevag ;
Fei, Peng ;
Hsiai, Tzung K. .
JCI INSIGHT, 2017, 2 (22)