Inorganic/organic combination: Inorganic particles/polymer composites for tissue engineering applications.
review · Level V
Where this comes from
- Record sourced from PubMed, PMID 36714332.
- Also identified by DOI 10.1016/j.bioactmat.2023.01.003 and PMC identifier 9860401.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Biomaterials have ushered the field of tissue engineering and regeneration into a new era with the development of advanced composites. Among these, the composites of inorganic materials with organic polymers present unique structural and biochemical properties equivalent to naturally occurring hybrid systems such as bones, and thus are highly desired. The last decade has witnessed a steady increase in research on such systems with the focus being on mimicking the peculiar properties of inorganic/organic combination composites in nature. In this review, we discuss the recent progress on the use of inorganic particle/polymer composites for tissue engineering and regenerative medicine. We have elaborated the advantages of inorganic particle/polymer composites over their organic particle-based composite counterparts. As the inorganic particles play a crucial role in defining the features and regenerative capacity of such composites, the review puts a special emphasis on the various types of inorganic particles used in inorganic particle/polymer composites. The inorganic particles that are covered in this review are categorised into two broad types (1) solid (e.g<i>.,</i> calcium phosphate, hydroxyapatite, <i>etc.</i>) and (2) porous particles (e.g<i>.,</i> mesoporous silica, porous silicon <i>etc.</i>), which are elaborated in detail with recent examples. The review also covers other new types of inorganic material (e.g<i>.,</i> 2D inorganic materials, clays, <i>etc.</i>) based polymer composites for tissue engineering applications. Lastly, we provide our expert analysis and opinion of the field focusing on the limitations of the currently used inorganic/organic combination composites and the immense potential of new generation of composites that are in development.