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Mechanical signaling coordinates the embryonic heartbeat
Author(s) -
Kevin Chiou,
Jason W. Rocks,
Yingxian Chen,
Sang-Kyun Cho,
Koen E. Merkus,
Anjali Rajaratnam,
Patrick Robison,
Manorama Tewari,
Kenneth P. Vogel,
Stephanie F. Majkut,
Benjamin L. Prosser,
Dennis E. Discher,
Andrea J. Liu
Publication year - 2016
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1520428113
Subject(s) - heartbeat , embryonic heart , embryonic stem cell , myocyte , contraction (grammar) , signal transduction , microbiology and biotechnology , cardiac myocyte , neuroscience , biology , anatomy , biophysics , computer science , endocrinology , biochemistry , computer security , gene
In the beating heart, cardiac myocytes (CMs) contract in a coordinated fashion, generating contractile wave fronts that propagate through the heart with each beat. Coordinating this wave front requires fast and robust signaling mechanisms between CMs. The primary signaling mechanism has long been identified as electrical: gap junctions conduct ions between CMs, triggering membrane depolarization, intracellular calcium release, and actomyosin contraction. In contrast, we propose here that, in the early embryonic heart tube, the signaling mechanism coordinating beats is mechanical rather than electrical. We present a simple biophysical model in which CMs are mechanically excitable inclusions embedded within the extracellular matrix (ECM), modeled as an elastic-fluid biphasic material. Our model predicts strong stiffness dependence in both the heartbeat velocity and strain in isolated hearts, as well as the strain for a hydrogel-cultured CM, in quantitative agreement with recent experiments. We challenge our model with experiments disrupting electrical conduction by perfusing intact adult and embryonic hearts with a gap junction blocker, β-glycyrrhetinic acid (BGA). We find this treatment causes rapid failure in adult hearts but not embryonic hearts-consistent with our hypothesis. Last, our model predicts a minimum matrix stiffness necessary to propagate a mechanically coordinated wave front. The predicted value is in accord with our stiffness measurements at the onset of beating, suggesting that mechanical signaling may initiate the very first heartbeats.

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