Advances in melt electrowriting for cardiovascular applications.

Front Bioeng Biotechnol

Technical University of Munich, TUM School of Engineering and Design, Department of Mechanical Engineering, Chair of Medical Materials and Implants, Munich Institute of Biomedical Engineering (MIBE), Munich Institute of Integrated Materials, Energy and Process Engineering (MEP), Munich, Germany.

Published: September 2024

AI Article Synopsis

  • Melt electrowriting (MEW) is an advanced biofabrication technique using electric fields to create precise microstructures for soft tissue engineering, particularly in cardiovascular applications.
  • The method allows for innovative designs, such as introducing microvascular networks, developing small-diameter vascular grafts and stents, and creating adaptable cardiac tissues with customizable properties.
  • The overview also highlights ongoing challenges in the field and discusses the latest advancements in biomaterials necessary for fully realizing the potential of MEW technology.

Article Abstract

Melt electrowriting (MEW) is an electric-field-assisted additive biofabrication technique that has brought significant advancements to bioinspired scaffold design for soft tissue engineering and beyond. Owing to its targeted microfiber placement, MEW has become a powerful platform technology for the fabrication of disease models up to functional biohybrid constructs that are investigated to reach clinical translation soon. This work provides a concise overview of this rapidly evolving field by highlighting the key contributions of MEW to cardiovascular tissue engineering. Specifically, we i) pinpoint the methods to introduce microvascular networks in thick 3D constructs benefitting from (sacrificial) MEW microfibers, ii) report MEW-based concepts for small-diameter vascular grafts and stents, iii) showcase how contracting cardiac tissues can profit from the tunable structure-property relationship of MEW scaffolds, and iv) address how complete regenerative heart valves can be built on complex fiber scaffold architectures that recapitulate J-shaped tensile properties and tissue heterogeneity. Lastly, we touch on novel biomaterial advancements and discuss the technological challenges of MEW to unlock the full potential of this transformative technology.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11442423PMC
http://dx.doi.org/10.3389/fbioe.2024.1425073DOI Listing

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