» Articles » PMID: 33706154

Photopolymerizable Pullulan: Synthesis, Self-assembly and Inkjet Printing

Overview
Specialty Chemistry
Date 2021 Mar 11
PMID 33706154
Citations 5
Authors
Affiliations
Soon will be listed here.
Abstract

Hypothesis: Pullulan, an exopolysaccharide consisting of maltotriose repeating units, has recently found many applications in different fields, such as food, packaging, cosmetics and pharmaceuticals. The introduction of photo-crosslinkable methacrylic units potentially allows to use pullulan derivative in inkjet 3D printing.

Experiments: Pullulan was functionalized with methacrylic groups and the derivative was characterized by NMR, FT-IR and Raman spectroscopy. Water dispersions were thoroughly investigated by optical microscopy, SAXS and rheology to evaluate the self-assembly properties and they were used as photo-crosslinkable inks in a 3D printer, also in comparison with pristine pullulan. The structural and mechanical properties of the obtained films were studied by Atomic Force Microscopy and tensile strength tests.

Findings: The introduction of methacrylic groups moderately affects the self-assembly of the polymer in water, resulting in a slight increase of the gyration radius of the polymer coils and in a small decrease of the viscosity, retaining the typical shear-thinning behavior of concentrated polysaccharides in water. The structural and mechanical properties of the 3D printed films are much more affected, showing the presence of sub-micrometric phase segregated domains which are further separated by the cross-linking. As a result, the deformability of the materials is improved, with a lower tensile strength.

Citing Articles

Natural Polymer-Polyphenol Bioadhesive Coacervate with Stable Wet Adhesion, Antibacterial Activity, and On-Demand Detachment.

Sacramento M, Oliveira M, Gomes J, Borges J, Freedman B, Mooney D Adv Healthc Mater. 2024; 13(13):e2304587.

PMID: 38334308 PMC: 11469155. DOI: 10.1002/adhm.202304587.


Applications of Light-Based 3D Bioprinting and Photoactive Biomaterials for Tissue Engineering.

Zhang X, Zhang X, Li Y, Zhang Y Materials (Basel). 2023; 16(23).

PMID: 38068205 PMC: 10707029. DOI: 10.3390/ma16237461.


Biopolymers for Tissue Engineering: Crosslinking, Printing Techniques, and Applications.

Patrocinio D, Galvan-Chacon V, Gomez-Blanco J, Miguel S, Loureiro J, Ribeiro M Gels. 2023; 9(11).

PMID: 37998980 PMC: 10670821. DOI: 10.3390/gels9110890.


A novel photocurable pullulan-based bioink for digital light processing 3D printing.

Zhaoxuan F, Jinsong L, Dasen Z, Hui S, Jiaqi L, Wenqin B Int J Bioprint. 2023; 9(2):657.

PMID: 37125260 PMC: 10132943. DOI: 10.18063/ijb.v9i2.657.


A Biomimetic Platelet-Rich Plasma-Based Interpenetrating Network Printable Hydrogel for Bone Regeneration.

Tang S, Wang L, Zhang Y, Zhang F Front Bioeng Biotechnol. 2022; 10:887454.

PMID: 35497349 PMC: 9041706. DOI: 10.3389/fbioe.2022.887454.