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February 22, 2026Advanced Materials2 citationsOpen Access

From Fiber Architecture to Functional Attachment: A Clinically Relevant, Mechanically Tunable Cardiac Patch

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JBJohannes BraigRKRoss KentAGAinitze Gereka Goienetxe

Key Points

  • The research aims to develop a versatile cardiac patch that optimizes mechanical support and attachment for heart repair.
  • Developed a multi-zonal microarchitecture in cardiac patches
  • Used melt electrowriting (MEW) for custom patch creation
  • Conducted biaxial testing to compare scaffold mechanics to natural myocardium
  • Performed dynamic BioVAD cultivation with cardiomyocytes in fibrin
  • Tested patch effectiveness in a porcine myocardial infarction model
  • Achieved up to 2.6-fold strain difference between scaffold zones
  • Replicated native myocardium properties up to 10% strain
  • Increased suture retention by 2.16-fold with reinforced outline
  • Improved cell alignment significantly with p = 0.01
  • Achieved complete epicardial attachment and vascular ingrowth within 7 days in the animal model

Abstract

ABSTRACT Contractile engineered cardiac patches hold great potential for treating myocardial infarction, serving as biological ventricular assist devices (BioVADs). However, optimal design and attachment of cardiac patches remain insufficiently explored, although both are essential for the mechanical support of damaged hearts. This study presents a platform for personalized macroscale patches with a multi‐zonal microarchitecture combining a regenerative zone for cell alignment, a stiff force transmission zone for load transfer, and an elastic attachment zone enabling integration. Based on computational modeling, the design is implemented using a custom G‐code generator for melt electrowriting (MEW). Digital image correlation reveals up to a 2.6‐fold strain difference between scaffold zones under physiological deformation, confirming zonal interplay. Biaxial testing with preconditioning shows scaffold mechanics replicating native myocardium properties up to 10% strain. For epicardial suture attachment, a reinforced outline enables shape‐morphing and increases suture retention 2.16‐fold. Dynamic BioVAD cultivation with fibrin‐embedded cardiomyocytes significantly (p = 0.01) improves cell alignment versus controls. Finally, in a porcine myocardial infarction model, the BioVAD achieves complete epicardial attachment and vascular ingrowth within 7 days, compared to partial attachment in controls. This study highlights MEW as a versatile platform for tailoring cardiac scaffold mechanics to support tissue integration and cardiac function.

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Cite This Study

Braig et al. (2026) studied this question.

synapsesocial.com/papers/699a9d65482488d673cd33e0https://doi.org/10.1002/adma.202515863
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