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Conductive Hydrogels with Dynamic Reversible Networks for Biomedical Applications

Journal

ADVANCED HEALTHCARE MATERIALS
Volume 10, Issue 11, Pages -

Publisher

WILEY
DOI: 10.1002/adhm.202100012

Keywords

biomedical applications; conductive hydrogels; extracellular matrix; reversible networks

Funding

  1. Bundesministerium fur Bildung und Forschung (BMBF) [BMBF 03Z22E511]
  2. Helmholtz Association by the Helmholtz Cross-Programme Initiative Technology and Medicine - Adaptive Systems
  3. EU COST Action ENBA [CA 15216]
  4. Projekt DEAL

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Conductive hydrogels (CHs) are being increasingly utilized for 3D cell culture and tissue engineering, with dynamic conductive hydrogels (DCHs) offering the ability to provide dynamic environments for cellular functions while maintaining matrix integrity. The reversible linkages in DCHs allow for properties mimicking native tissues, making them well-suited for various biotechnological and medical applications.
Conductive hydrogels (CHs) are emerging as a promising and well-utilized platform for 3D cell culture and tissue engineering to incorporate electron signals as biorelevant physical cues. In conventional covalently crosslinked conductive hydrogels, the network dynamics (e.g., stress relaxation, shear shining, and self-healing) required for complex cellular functions and many biomedical utilities (e.g., injection) cannot be easily realized. In contrast, dynamic conductive hydrogels (DCHs) are fabricated by dynamic and reversible crosslinks. By allowing for the breaking and reforming of the reversible linkages, DCHs can provide dynamic environments for cellular functions while maintaining matrix integrity. These dynamic materials can mimic some properties of native tissues, making them well-suited for several biotechnological and medical applications. An overview of the design, synthesis, and engineering of DCHs is presented in this review, focusing on the different dynamic crosslinking mechanisms of DCHs and their biomedical applications.

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