Enhanced Cell Affinity of Chitosan Membranes Mediated by Superficial Cross-linking: a Straightforward Method Attainable by Standard Laboratory Procedures
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Biology
Molecular Biology
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It is well accepted that the surface modification of biomaterials can improve their biocompatibility. In this context, techniques like ion etching, plasma-mediated chemical functionalization, electrospinning, and contact microprinting have successfully been employed to promote the cell adhesion and proliferation of chitosan (CH) substrates. However, they prove to be time-consuming, highly dependent on environmental conditions, and/or limited to the use of expensive materials and sophisticated instruments not accessible to standard laboratories, hindering to a high extent their straightforward application. Filling this gap, this paper proposes the superficial cross-linking of CH as a much simpler and accessible means to modify its superficial properties in order to enhance its cellular affinity. CH membranes were prepared by solvent casting followed by a cross-linking step mediated by the chemical vapor deposition (CVD) of glutaraldehyde (GA). The membranes were characterized against non- and solution cross-linked membranes in terms of their mechanical/surface properties and biological performance. Among others, the CVD membranes proved (i) to be more mechanically stable against cell culture and sterilization than membranes cross-linked in solution and (ii) to prompt the adherence and sustained proliferation of healthy cells to levels even superior to commercial tissue culture plates (TCPs). Accordingly, the CVD cross-linking approach was demonstrated to be a simple and cost-effective alternative to the aforementioned conventional methods. Interestingly, this concept can also be applied to other biomaterials as long as GA (or other volatile components alike) can be employed as a cross-linker, making possible the cross-linking reaction at mild experimental conditions, neither requiring sophisticated lab implements nor using any potentially harmful procedure.
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Silvestro I, Ciarlantini C, Francolini I, Tomai P, Gentili A, Dal Bosco C Int J Mol Sci. 2021; 22(16).
PMID: 34445079 PMC: 8395051. DOI: 10.3390/ijms22168374.
Sotolongo-Garcia R, Rodriguez-Velazquez E, Alatorre-Meda M, Oropeza-Guzman M, Tirado-Guizar A, Pina-Luis G Nanomaterials (Basel). 2021; 11(8).
PMID: 34443812 PMC: 8399497. DOI: 10.3390/nano11081981.
Avila-Cossio M, Rivero I, Garcia-Gonzalez V, Alatorre-Meda M, Rodriguez-Velazquez E, Calva-Yanez J ACS Omega. 2020; 5(10):5249-5257.
PMID: 32201814 PMC: 7081399. DOI: 10.1021/acsomega.9b04313.
Araiza-Verduzco F, Rodriguez-Velazquez E, Cruz H, Rivero I, Acosta-Martinez D, Pina-Luis G Materials (Basel). 2020; 13(3).
PMID: 31979162 PMC: 7040623. DOI: 10.3390/ma13030534.
Ramirez-Herrera D, Rodriguez-Velazquez E, Alatorre-Meda M, Paraguay-Delgado F, Tirado-Guizar A, Taboada P Nanomaterials (Basel). 2018; 8(4).
PMID: 29641435 PMC: 5923561. DOI: 10.3390/nano8040231.