Literature DB >> 15678488

Three-dimensional myofiber architecture of the embryonic left ventricle during normal development and altered mechanical loads.

Kimimasa Tobita1, Jason B Garrison, Li J Liu, Joseph P Tinney, Bradley B Keller.   

Abstract

Mechanical load influences embryonic ventricular growth, morphogenesis, and function. To date, little is known regarding how the embryonic left ventricular (LV) myocardium acquires a three-dimensional (3D) fiber architecture distribution or how altered mechanical load influences local myofiber architecture. We tested the hypothesis that altered mechanical load changes the maturation process of local 3D fiber architecture of the developing embryonic LV compact myocardium. We measured transmural myofiber angle distribution in the LV compact myocardium in Hamburger-Hamilton stages 21, 27, 31, and 36 chick embryos during normal development or following either left atrial ligation (LAL; LV hypoplasia model) or conotruncal banding (CTB; LV hyperplasia model). The embryonic LV was stained with f-actin and then z-serial optical sectioning was performed using a laser confocal scanning microscope. We reconstructed local 3D myofiber images and computed local transmural myofiber angle distribution. Transmural myofiber angles in compact myocardium (in LV sagittal sections) were oriented in a circumferential direction until stage 27 (-10 to 10 degrees). Myofibers in the outer side of compact myocardium shifted to a more longitudinal direction by stage 36 (10 to 40 degrees), producing a transmural gradient in myofiber orientation. Developmental changes in transmural myofiber angle distribution were significantly delayed following LAL, while the changes in angle distribution were accelerated following CTB. Results suggest that mechanical load modulates the maturation process of myofiber architecture distribution in the developing LV compact myocardium.

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Year:  2005        PMID: 15678488     DOI: 10.1002/ar.a.20133

Source DB:  PubMed          Journal:  Anat Rec A Discov Mol Cell Evol Biol        ISSN: 1552-4884


  37 in total

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Journal:  Eur J Cardiothorac Surg       Date:  2005-10       Impact factor: 4.191

2.  Extracting three-dimensional orientation and tractography of myofibers using optical coherence tomography.

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3.  In vitro hemodynamic investigation of the embryonic aortic arch at late gestation.

Authors:  Kerem Pekkan; Lakshmi P Dasi; Paymon Nourparvar; Srinivasu Yerneni; Kimimasa Tobita; Mark A Fogel; Bradley Keller; Ajit Yoganathan
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Review 4.  Fetal programming as a predictor of adult health or disease: the need to reevaluate fetal heart function.

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Journal:  Heart Fail Rev       Date:  2017-11       Impact factor: 4.214

Review 5.  Quantifying blood flow dynamics during cardiac development: demystifying computational methods.

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Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2018-09-24       Impact factor: 6.237

6.  Young developmental age cardiac extracellular matrix promotes the expansion of neonatal cardiomyocytes in vitro.

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7.  Blood flow patterns underlie developmental heart defects.

Authors:  Madeline Midgett; Kent Thornburg; Sandra Rugonyi
Journal:  Am J Physiol Heart Circ Physiol       Date:  2017-01-06       Impact factor: 4.733

8.  Physiological contractility of cardiomyocytes in the wall of mouse and rat azygos vein.

Authors:  Rong Liu; Han-Zhong Feng; J-P Jin
Journal:  Am J Physiol Cell Physiol       Date:  2014-01-29       Impact factor: 4.249

9.  Multiscale cardiac imaging spanning the whole heart and its internal cellular architecture in a small animal model.

Authors:  Graham Rykiel; Claudia S López; Jessica L Riesterer; Ian Fries; Sanika Deosthali; Katherine Courchaine; Alina Maloyan; Kent Thornburg; Sandra Rugonyi
Journal:  Elife       Date:  2020-10-20       Impact factor: 8.140

10.  Stress and strain adaptation in load-dependent remodeling of the embryonic left ventricle.

Authors:  Christine M Buffinton; Daniela Faas; David Sedmera
Journal:  Biomech Model Mechanobiol       Date:  2012-12-20
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