4.7 Article

An overview of polymeric composite scaffolds with piezoelectric properties for improved bone regeneration

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MATERIALS & DESIGN
卷 231, 期 -, 页码 -

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ELSEVIER SCI LTD
DOI: 10.1016/j.matdes.2023.112085

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Biomaterials; Bone Tissue Engineering; Piezoelectricity; Additive Manufacturing; Perovskite structure

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Despite the lack of functionalities in current biomaterials for osseous diseases treatment, the development of piezoelectric scaffolds shows promise for improved bone regeneration. These scaffolds can positively influence stem cell proliferation and differentiation, and various mechanical stimuli can activate their piezoelectric effect. Biocompatible, piezoelectric polymers are being explored for additive manufacturing of composite scaffolds, with the addition of piezoceramic nanoparticles enhancing their properties. These scaffolds also have potential for real-time monitoring.
Despite the dramatic change that Tissue Engineering or stem cell therapies have brought to current therapeutic strategies, there is a lack of functionalities in the available biomaterials for manufacturing scaffolds to treat several highly prevalent osseous diseases (osteochondral defects, osteoporosis, etc.). One promising approach to fill this gap involves the development of innovative piezoelectric scaffolds for improved bone regeneration. Scaffolds with the appropriate piezoelectricity can positively influence the proliferation and differentiation of mesenchymal stem cells to regenerate bone tissue, since surface electrical charges play a key role in the mechanotransduction process. In this work, polymeric-based composite scaffolds with piezoelectric properties intended for bone tissue engineering are reviewed. Special attention is paid to biocompatible, piezoelectric polymers that show suitable properties to be pro-cessed by additive manufacturing techniques. Previous works on composite scaffolds based of these poly-meric matrices and containing piezoceramic additives are summarized. The use of piezoelectric nanostructured composite formulations containing lead-free ceramic oxide nanoparticles with per-ovskite structure is highlighted. Also, different commonly applied mechanical stimuli to activate the piezoelectric effect of the developed materials are presented. Finally, other applications of such scaffolds are mentioned, including their capabilities for real-time monitoring.& COPY; 2023 The Author(s). Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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