Hierarchical Design of Tissue‐Mimetic Fibrillar Hydrogel Scaffolds

Author:

Pardo Alberto123,Gomez‐Florit Manuel456ORCID,Davidson Matthew D.7,Öztürk‐Öncel Meftune Özgen12,Domingues Rui M. A.12,Burdick Jason A.7,Gomes Manuela E.12ORCID

Affiliation:

1. 3B's Research Group I3Bs – Research Institute on Biomaterials Biodegradables and Biomimetics University of Minho Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine AvePark – Parque de Ciência e Tecnologia Zona Industrial da Gandra Barco Guimarães 4805‐017 Portugal

2. ICVS/3B's ‐ PT Government Associate Laboratory Braga/Guimarães 4710‐057 Portugal

3. Colloids and Polymers Physics Group Particle Physics Department Materials Institute (iMATUS) and Health Research Institute (IDIS) University of Santiago de Compostela Santiago de Compostela 15782 Spain

4. Health Research Institute of the Balearic Islands (IdISBa) Palma 07010 Spain

5. Research Unit, Son Espases University Hospital (HUSE) Palma 07010 Spain

6. Group of Cell Therapy and Tissue Engineering (TERCIT) Research Institute on Health Sciences (IUNICS) University of the Balearic Islands (UIB) Ctra. Valldemossa km 7.5 Palma 07122 Spain

7. BioFrontiers Institute and Department of Chemical and Biological Engineering University of Colorado Boulder Boulder CO 80303 USA

Abstract

AbstractMost tissues of the human body present hierarchical fibrillar extracellular matrices (ECMs) that have a strong influence over their physicochemical properties and biological behavior. Of great interest is the introduction of this fibrillar structure to hydrogels, particularly due to the water‐rich composition, cytocompatibility, and tunable properties of this class of biomaterials. Here, the main bottom‐up fabrication strategies for the design and production of hierarchical biomimetic fibrillar hydrogels and their most representative applications in the fields of tissue engineering and regenerative medicine are reviewed. For example, the controlled assembly/arrangement of peptides, polymeric micelles, cellulose nanoparticles (NPs), and magnetically responsive nanostructures, among others, into fibrillar hydrogels is discussed, as well as their potential use as fibrillar‐like hydrogels (e.g., those from cellulose NPs) with key biofunctionalities such as electrical conductivity or remote stimulation. Finally, the major remaining barriers to the clinical translation of fibrillar hydrogels and potential future directions of research in this field are discussed.

Funder

Foundation for the National Institutes of Health

National Science Foundation

H2020 European Research Council

Xunta de Galicia

Instituto de Salud Carlos III

Fundação para a Ciência e a Tecnologia

Publisher

Wiley

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