Exploring the properties and potential of the neural extracellular matrix for next‐generation regenerative therapies

Author:

Ortega J. Alberto12,Soares de Aguiar Gisele P.12,Chandravanshi Palash3,Levy Natacha3,Engel Elisabeth456ORCID,Álvarez Zaida367ORCID

Affiliation:

1. Department of Pathology and Experimental Therapeutics Institute of Neurosciences, University of Barcelona, L'Hospitalet de Llobregat Barcelona Spain

2. Institut d'Investigació Biomèdica de Bellvitge (IDIBELL) L'Hospitalet del Llobregat Spain

3. Biomaterials for Neural Regeneration Group Institute for Bioengineering of Catalonia (IBEC), The Barcelona Institute of Science and Technology (BIST) Barcelona Spain

4. IMEM‐BRT Group, Department of Materials Science and Engineering, EEBE Technical University of Catalonia (UPC) Barcelona Spain

5. Biomaterials for Regenerative Therapies Group Institute for Bioengineering of Catalonia (IBEC), The Barcelona Institute of Science and Technology (BIST) Barcelona Spain

6. CIBER en Bioingeniería, Biomateriales y Nanomedicina, CIBER‐BBN Madrid Spain

7. Simpson Querrey Institute for BioNanotechnology Northwestern University Chicago Illinois USA

Abstract

AbstractThe extracellular matrix (ECM) is a dynamic and complex network of proteins and molecules that surrounds cells and tissues in the nervous system and orchestrates a myriad of biological functions. This review carefully examines the diverse interactions between cells and the ECM, as well as the transformative chemical and physical changes that the ECM undergoes during neural development, aging, and disease. These transformations play a pivotal role in shaping tissue morphogenesis and neural activity, thereby influencing the functionality of the central nervous system (CNS). In our comprehensive review, we describe the diverse behaviors of the CNS ECM in different physiological and pathological scenarios and explore the unique properties that make ECM‐based strategies attractive for CNS repair and regeneration. Addressing the challenges of scalability, variability, and integration with host tissues, we review how advanced natural, synthetic, and combinatorial matrix approaches enhance biocompatibility, mechanical properties, and functional recovery. Overall, this review highlights the potential of decellularized ECM as a powerful tool for CNS modeling and regenerative purposes and sets the stage for future research in this exciting field.This article is categorized under: Implantable Materials and Surgical Technologies > Nanotechnology in Tissue Repair and Replacement Therapeutic Approaches and Drug Discovery > Nanomedicine for Neurological Disease Implantable Materials and Surgical Technologies > Nanomaterials and Implants

Funder

Ministerio de Ciencia e Innovación

Generalitat de Catalunya

Institució Catalana de Recerca i Estudis Avançats

Publisher

Wiley

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