Literature DB >> 33542336

Macroporous chitosan/methoxypoly(ethylene glycol) based cryosponges with unique morphology for tissue engineering applications.

Pradeep Kumar1, Viness Pillay1, Yahya E Choonara2.   

Abstract

Three-dimensiopan class="Chemical">nal porous scaffolds are widely employed in tissue engineering and regenerative medicinpan>e for their ability to carry bioactives and cells; and for their platform properties to allow for bridginpan>g-the-gap withinpan> an inpan>jured tissue. This study npan> class="Chemical">describes the effect of various methoxypolyethylene glycol (mPEG) derivatives (mPEG (-OCH3 functionality), mPEG-aldehyde (mPEG-CHO) and mPEG-acetic acid (mPEG-COOH)) on the morphology and physical properties of chemically crosslinked, semi-interpenetrating polymer network (IPN), chitosan (CHT)/mPEG blend cryosponges. Physicochemical and molecular characterization revealed that the -CHO and -COOH functional groups in mPEG derivatives interacted with the -NH2 functionality of the chitosan chain. The distinguishing feature of the cryosponges was their unique morphological features such as fringe thread-, pebble-, curved quartz crystal-, crystal flower-; and canyon-like structures. The morphological data was well corroborated by the image processing data and physisorption curves corresponding to Type II isotherm with open hysteresis loops. Functionalization of mPEG had no evident influence on the macro-mechanical properties of the cryosponges but increased the matrix strength as determined by the rheomechanical analyses. The cryosponges were able to deliver bioactives (dexamethasone and curcumin) over 10 days, showed varied matrix degradation profiles, and supported neuronal cells on the matrix surface. In addition, in silico simulations confirmed the compatibility and molecular stability of the CHT/mPEG blend compositions. In conclusion, the study confirmed that significant morphological variations may be induced by minimal functionalization and crosslinking of biomaterials.

Entities:  

Year:  2021        PMID: 33542336     DOI: 10.1038/s41598-021-82484-x

Source DB:  PubMed          Journal:  Sci Rep        ISSN: 2045-2322            Impact factor:   4.379


  43 in total

Review 1.  Polymeric scaffolds in tissue engineering: a literature review.

Authors:  Maissa Jafari; Zahrasadat Paknejad; Maryam Rezai Rad; Saeed Reza Motamedian; Mohammad Jafar Eghbal; Nasser Nadjmi; Arash Khojasteh
Journal:  J Biomed Mater Res B Appl Biomater       Date:  2015-10-23       Impact factor: 3.368

Review 2.  Interfacing cells with microengineered scaffolds for neural tissue reconstruction.

Authors:  Angelo Accardo; Carla Cirillo; Sarah Lionnet; Christophe Vieu; Isabelle Loubinoux
Journal:  Brain Res Bull       Date:  2019-07-23       Impact factor: 4.077

Review 3.  Competent processing techniques for scaffolds in tissue engineering.

Authors:  Ranjna C Dutta; Madhuri Dey; Aroop K Dutta; Bikramjit Basu
Journal:  Biotechnol Adv       Date:  2017-01-14       Impact factor: 14.227

4.  Pore shape and size dependence on cell growth into electrospun fiber scaffolds for tissue engineering: 2D and 3D analyses using SEM and FIB-SEM tomography.

Authors:  Urszula Stachewicz; Piotr K Szewczyk; Adam Kruk; Asa H Barber; Aleksandra Czyrska-Filemonowicz
Journal:  Mater Sci Eng C Mater Biol Appl       Date:  2017-08-19       Impact factor: 7.328

5.  Design and characterisation of PHBV-magnesium oleate directional nanofibers for neurosupport.

Authors:  Poornima Ramburrun; Pradeep Kumar; Yahya E Choonara; Lisa C du Toit; Viness Pillay
Journal:  Biomed Mater       Date:  2019-10-17       Impact factor: 3.715

Review 6.  Cell-matrix mechanical interaction in electrospun polymeric scaffolds for tissue engineering: Implications for scaffold design and performance.

Authors:  Kelsey M Kennedy; Archana Bhaw-Luximon; Dhanjay Jhurry
Journal:  Acta Biomater       Date:  2016-12-21       Impact factor: 8.947

Review 7.  Poly(lactic acid) nanofibrous scaffolds for tissue engineering.

Authors:  Marco Santoro; Sarita R Shah; Jennifer L Walker; Antonios G Mikos
Journal:  Adv Drug Deliv Rev       Date:  2016-04-26       Impact factor: 15.470

Review 8.  Integrating finite element modelling and 3D printing to engineer biomimetic polymeric scaffolds for tissue engineering.

Authors:  Rossana Schipani; David R Nolan; Caitrίona Lally; Daniel J Kelly
Journal:  Connect Tissue Res       Date:  2019-09-08       Impact factor: 3.417

9.  In situ precipitation of amorphous calcium phosphate nanoparticles within 3D porous collagen sponges for bone tissue engineering.

Authors:  Syama Santhakumar; Ayako Oyane; Maki Nakamura; Kenji Koga; Saori Miyata; Ko Muratsubaki; Hirofumi Miyaji
Journal:  Mater Sci Eng C Mater Biol Appl       Date:  2020-06-13       Impact factor: 7.328

10.  Cryogenically printed flexible chitosan/bioglass scaffolds with stable and hierarchical porous structures for wound healing.

Authors:  Chunxuan Wu; Zehao Yu; Yihan Li; Kui Zhou; Chuanliang Cao; Peng Zhang; Wenchao Li
Journal:  Biomed Mater       Date:  2020-11-27       Impact factor: 3.715

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