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May 28, 2013Proceedings of the National Academy of Sciences162 citationsOpen Access

Recapitulating maladaptive, multiscale remodeling of failing myocardium on a chip

MMMegan L. McCainSSSean P. SheehyAGAnna Grosberg

Structured PICO

Does cyclic stretch induce maladaptive remodeling in engineered ventricular tissue on a chip?

P
Population
Engineered laminar ventricular tissue on a stretchable chip
I
Intervention
Cyclic stretch to mimic mechanical overload
C
Comparator
Unstretched tissues (implied) and historical animal/clinical observations
O
Outcome
Changes in gene expression, myocyte architecture, calcium handling, and contractile functionsurrogate

An in vitro microsystem applying cyclic stretch can successfully replicate the genetic, structural, and functional characteristics of failing myocardium.

Abstract

The lack of a robust pipeline of medical therapeutic agents for the treatment of heart disease may be partially attributed to the lack of in vitro models that recapitulate the essential structure-function relationships of healthy and diseased myocardium. We designed and built a system to mimic mechanical overload in vitro by applying cyclic stretch to engineered laminar ventricular tissue on a stretchable chip. To test our model, we quantified changes in gene expression, myocyte architecture, calcium handling, and contractile function and compared our results vs. several decades of animal studies and clinical observations. Cyclic stretch activated gene expression profiles characteristic of pathological remodeling, including decreased α- to β-myosin heavy chain ratios, and induced maladaptive changes to myocyte shape and sarcomere alignment. In stretched tissues, calcium transients resembled those reported in failing myocytes and peak systolic stress was significantly reduced. Our results suggest that failing myocardium, as defined genetically, structurally, and functionally, can be replicated in an in vitro microsystem by faithfully recapitulating the structural and mechanical microenvironment of the diseased heart.

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Cite This Study

McCain et al. (2013) studied this question.

synapsesocial.com/papers/6a1bdf984d9126f09c5ed587https://doi.org/10.1073/pnas.1304913110
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