Exposure of engineered cardiac tissue to an oxygen gradient mimicking a myocardial infarct border zone delayed calcium handling, decreased systolic stress, and increased inflammatory cascades.
Does exposure to an oxygen gradient mimicking the myocardial infarct border zone alter electromechanical function and the transcriptome in engineered cardiac tissue compared to uniform normoxia or hypoxia?
An engineered border-zone-on-a-chip model reveals that an oxygen gradient uniquely impairs cardiac electromechanical function and upregulates inflammatory cascades compared to uniform oxygen states.
After a myocardial infarction, the boundary between the injured, hypoxic tissue and the adjacent viable, normoxic tissue, known as the border zone, is characterized by an oxygen gradient. Yet, the impact of an oxygen gradient on cardiac tissue function is poorly understood, largely due to limitations of existing experimental models. Here, we engineered a microphysiological system to controllably expose engineered cardiac tissue to an oxygen gradient that mimics the border zone and measured the effects of the gradient on electromechanical function and the transcriptome. The gradient delayed calcium release, reuptake, and propagation; decreased diastolic and peak systolic stress; and increased expression of inflammatory cascades that are hallmarks of myocardial infarction. These changes were distinct from those observed in tissues exposed to uniform normoxia or hypoxia, demonstrating distinct regulation of cardiac tissue phenotypes by an oxygen gradient. Our border-zone-on-a-chip model advances functional and mechanistic insight into oxygen-dependent cardiac tissue pathophysiology.
Rexius‐Hall et al. (Wed,) conducted a other in Myocardial infarction. Oxygen gradient vs. Uniform normoxia or hypoxia was evaluated on Electromechanical function and transcriptome. Exposure of engineered cardiac tissue to an oxygen gradient mimicking a myocardial infarct border zone delayed calcium handling, decreased systolic stress, and increased inflammatory cascades.
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