Development and characterization of Polycaprolactone/chitosan-based scaffolds for tissue engineering of various organs: A review

Research in creating 3D structures mirroring the extracellular matrix (ECM) with accurate environmental cues holds paramount significance in biological applications.Biomaterials that replicate ECM properties—mechanical, physicochemical, and biological—emerge as pivotal tools in mimicking ECM behavio...

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Veröffentlicht in:International journal of biological macromolecules 2024-06, Vol.272 (Pt 2), p.132941, Article 132941
Hauptverfasser: Esmaeili, Javad, Jalise, Saeedeh Zare, Pisani, Silvia, Rochefort, Gaël Y., Ghobadinezhad, Farbod, Mirzaei, Zeynab, Mohammed, Riaz Ur Rehman, Fathi, Mehdi, Tebyani, Amir, Nejad, Zohreh Mousavi
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Sprache:eng
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Zusammenfassung:Research in creating 3D structures mirroring the extracellular matrix (ECM) with accurate environmental cues holds paramount significance in biological applications.Biomaterials that replicate ECM properties—mechanical, physicochemical, and biological—emerge as pivotal tools in mimicking ECM behavior.Incorporating synthetic and natural biomaterials is widely used to produce scaffolds suitable for the intended organs.Polycaprolactone (PCL), a synthetic biomaterial, boasts commendable mechanical properties, albeit with relatively modest biological attributes due to its hydrophobic nature.Chitosan (CTS) exhibits strong biological traits but lacks mechanical resilience for complex tissue regeneration.Notably, both PCL and CTS have demonstrated their application in tissue engineering for diverse types of tissues.Their combination across varying PCL:CTS ratios has increased the likelihood of fabricating scaffolds to address defects in sturdy and pliable tissues.This comprehensive analysis aspires to accentuate their distinct attributes within tissue engineering across different organs.The central focus resides in the role of PCL:CTS-based scaffolds, elucidating their contribution to the evolution of advanced functional 3D frameworks tailored for tissue engineering across diverse organs.Moreover, this discourse delves into the considerations pertinent to each organ. •Synthetic polymers and natural biomaterials are used to create specific scaffolds.•Polycaprolactone has good mechanical but modest biological properties.•Chitosan has strong biological but weak mechanical traits for tissue regeneration.•Combining PCL and CS enhances scaffold fabrication for various tissues.•PCL:CS-based scaffolds are key in evolving 3D frameworks for tissue engineering.
ISSN:0141-8130
1879-0003
1879-0003
DOI:10.1016/j.ijbiomac.2024.132941