Novel Micropatterned Cardiac Cell Cultures with Realistic Ventricular Microstructure

被引:93
作者
Badie, Nima [1 ]
Bursac, Nenad [1 ]
机构
[1] Duke Univ, Dept Biomed Engn, Durham, NC 27706 USA
关键词
IN-VITRO MODEL; SLOW CONDUCTION; TISSUE GEOMETRY; HYPERTROPHIC CARDIOMYOPATHY; HISTOLOGICAL VALIDATION; INTRACELLULAR CALCIUM; ANISOTROPIC REENTRY; FUNCTIONAL REENTRY; UPPER LIMIT; MONOLAYERS;
D O I
10.1016/j.bpj.2009.02.019
中图分类号
Q6 [生物物理学];
学科分类号
071011 [生物物理学];
摘要
Systematic studies of cardiac structure-function relationships to date have been hindered by the intrinsic complexity and variability of in vivo and ex vivo model systems. Thus, we set out to develop a reproducible cell culture system that can accurately replicate the realistic microstructure of native cardiac tissues. Using cell micropatterning techniques, we aligned cultured cardiomyocytes at micro- and macroscopic spatial scales to follow local directions of cardiac fibers in murine ventricular cross sections, as measured by high-resolution diffusion tensor magnetic resonance imaging. To elucidate the roles Of ventricular tissue microstructure in macroscopic impulse conduction, we optically mapped membrane potentials in micropatterned cardiac cultures with realistic tissue boundaries and natural cell orientation, cardiac cultures with realistic tissue boundaries but random cell orientation, and standard isotropic monolayers. At 2 Hz pacing, both microscopic changes in cell orientation and ventricular tissue boundaries independently and synergistically increased the spatial dispersion of conduction velocity, but not tie action potential duration. The realistic variations in intramural microstructure created unique spatial signatures in micro- and macroscopic impulse propagation within ventricular cross-section cultures. This novel in vitro model system is expected to help bridge the existing gap between experimental structure-function studies in standard cardiac monolayers and intact hear: tissues.
引用
收藏
页码:3873 / 3885
页数:13
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