Chitosan, Chitosan/IgG-Loaded, and N-Trimethyl Chitosan Chloride Nanoparticles as Potential Adjuvant and Carrier-Delivery Systems

Author:

Tenorio-Barajas Aldo Y.12,Olvera María de la L.3,Romero-Paredes Gabriel3,Altuzar Victor2,Garrido-Guerrero Efraín4,Mendoza-Barrera Claudia2ORCID

Affiliation:

1. Doctorado en Nanociencias y Nanotecnología, Centro de Investigación y Estudios Avanzados del IPN, Ciudad de México 07360, Mexico

2. Facultad de Ciencias Físico Matemáticas, Benemérita Universidad Autónoma de Puebla, Puebla 72570, Mexico

3. Sección de Estado Sólido, Departamento de Ingeniería Eléctrica, Centro de Investigación y de Estudios Avanzados del IPN, Ciudad de México 07360, Mexico

4. Departamento de Genética y Biología Celular, Centro de Investigación y Estudios Avanzados del IPN, Ciudad de México 07360, Mexico

Abstract

This work proposes a feasible, reproducible, and low-cost modified method to manufacture chitosan, chitosan/IgG-protein-loaded, and trimethylated chitosan nanoparticles, using microfluidics combined with the microemulsion technique, which differs from the traditional batch process of chitosan-based nanoparticles. The synthesis process consists of generating microreactors of chitosan-based polymer in a poly-dimethylsiloxane ψ-shaped microfluidic device and then crosslinking with sodium tripolyphosphate outside the cell. Transmission electron microscopy demonstrates an improvement in size control and distribution of the solid-shape chitosan nanoparticles (~80 nm) compared to the batch synthesis. Regarding chitosan/IgG-protein-loaded nanoparticles, these presented a core-shell morphology having a diameter of close to 15 nm. Raman and X-ray photoelectron spectroscopies confirmed the ionic crosslinking between the amino groups of chitosan and the phosphate groups of sodium tripolyphosphate in the fabricated samples and the total encapsulation of IgG protein during the fabrication of chitosan/IgG-loaded nanoparticles. Then, an ionic crosslinking and nucleation-diffusion process of chitosan-sodium tripolyphosphate was carried out during the nanoparticle formation, with and without IgG protein loading. The use of N-trimethyl chloride chitosan nanoparticles in vitro on human-keratinocyte-derived cell line HaCaT did not show side effects independently of its concentration from 1 to 10 μg/mL. Therefore, the proposed materials could be used as potential carrier-delivery systems.

Funder

SEP-CONACYT, Mexico

Publisher

MDPI AG

Subject

Chemistry (miscellaneous),Analytical Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Molecular Medicine,Drug Discovery,Pharmaceutical Science

Reference40 articles.

1. chitin and chitosan: Production and application of versatile biomedical nanomaterials;Hamblin;Int. J. Adv. Res.,2016

2. Chitosan as promising materials for biomedical application: Review;Raghvendrakumar;Res. Dev. Mater. Sci.,2017

3. Yao, K., Li, J., Yao, F., and Yin, Y. (2012). Chitosan-Based hydrogels: Functions and Applications, CRC Press. [1st ed.].

4. Williams, P.A. (2011). Renewable Resources for Functional Polymers and Biomaterials: Polysaccharides, Proteins and Polyesters, Royal Society of Chemistry.

5. Kim, S.K. (2011). Chitin, Chitosan, Oligosaccharides and Their Derivatives: Biological Activities and Applications, CRC Press.

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