Alkali Treated 3D Chitosan Scaffolds with Enhanced Strength and Stability

被引:10
作者
Reddy, Narendra [1 ]
Santosh, Mysore Sridhar [1 ]
Venkatesh, Krishna [1 ]
Sakkara, Seema [1 ,2 ]
Nagananda, G. S. [1 ]
机构
[1] Jyothy Inst Technol, Ctr Incubat Innovat Res & Consultancy, Bengaluru 560082, India
[2] Visvesvaraya Technol Univ, Reg Res Resource Ctr, Jnana Sangama 590018, Belagavi, India
关键词
Chitosan; 3D scaffolds; Alkali treatment; Strength; Hydroxyapatite;
D O I
10.1007/s10924-021-02114-5
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
3D chitosan scaffolds treated with alkali showed enhanced mechanical properties and stability in aqueous conditions. Chitosan is a preferred polymer for biomedical applications due to its antimicrobial, antioxidant and wound healing properties. Chitosan has been made into films, fibers, micro and nanoparticles and electrospun membranes for tissue engineering, drug delivery and other medical applications. However, materials made from chitosan have poor strength and stability. Compared to other forms, 3D scaffolds are more suitable for tissue engineering and other applications but are relatively easily susceptible to moisture and have poor strength due to their porous structure. Several physical and chemical approaches have been used to increase the strength and stability of chitosan biomaterials. In this study, we demonstrate that a simple treatment with alkali will substantially improve the strength and stability of freeze-dried 3D chitosan scaffolds. Three different concentrations of chitosan were lyophilized and made into scaffolds with varying properties. These scaffolds were alkali treated and tested for their increase in strength, resistance to water and other properties. Up to 50% increase in strength was possible when higher concentrations of chitosan and alkali treatment were used. The scaffolds have good activity against both gram positive and gram negative bacteria with the highest percentage of inhibition being 97%. Scaffolds also showed the ability to generate hydroxyapatite when incubated in phosphate buffered saline (PBS) for 7 days. This study provides a novel approach to obtain 3D chitosan scaffolds with properties suitable for medical, food and other applications.
引用
收藏
页码:3302 / 3310
页数:9
相关论文
共 50 条
[41]   Chitosan-based high-strength supramolecular hydrogels for 3D bioprinting [J].
Xu, Jiaqi ;
Zhang, Manyue ;
Du, Wenzhen ;
Zhao, Jiuhong ;
Ling, Guixia ;
Zhang, Peng .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2022, 219 :545-557
[42]   Novel Chitosan-poly(vinyl alcohol)/graphene oxide biocomposites 3D porous scaffolds [J].
Pandele, Andreea Madalina ;
Ionita, Mariana ;
Crica, Livia ;
Vasile, Eugeniu ;
Iovu, Horia .
COMPOSITES PART B-ENGINEERING, 2017, 126 :81-87
[43]   Porosity Pattern of 3D Chitosan/Bioactive Glass Tissue Engineering Scaffolds Prepared for Bone Regeneration [J].
Hammad, Hoda G. H. ;
Salama, Miral Nagy F. .
OPEN DENTISTRY JOURNAL, 2021, 15 :41-56
[44]   3D Bioprinted Chitosan-Based Hydrogel Scaffolds in Tissue Engineering and Localised Drug Delivery [J].
Lazaridou, Maria ;
Bikiaris, Dimitrios N. ;
Lamprou, Dimitrios A. .
PHARMACEUTICS, 2022, 14 (09)
[45]   Modification of hydroxyapatite (HA) powder by carboxymethyl chitosan (CMCS) for 3D printing bioceramic bone scaffolds [J].
Wei, Qinghua ;
Sun, Daocen ;
Li, Mingyang ;
Zhou, Jiayi ;
Yang, Rongbin ;
Zhang, Juan ;
Chai, Weihong ;
Wang, Yanen .
CERAMICS INTERNATIONAL, 2023, 49 (01) :538-547
[46]   Novel 3D scaffolds of chitosan-PLLA blends for tissue engineering applications: Preparation and characterization [J].
Duarte, Ana Rita C. ;
Mano, Joao F. ;
Reis, Rui L. .
JOURNAL OF SUPERCRITICAL FLUIDS, 2010, 54 (03) :282-289
[47]   Influence of Hydroxyapatite on Extruded 3D Scaffolds [J].
Rodriguez, Geraldine ;
Dias, Juliana ;
d'Avila, Marcos Akira ;
Bartolo, Paulo .
3RD INTERNATIONAL CONFERENCE ON TISSUE ENGINEERING (ICTE2013), 2013, 59 :263-269
[48]   3D bioprinted multiscale composite scaffolds based on gelatin methacryloyl (GelMA)/chitosan microspheres as a modular bioink for enhancing 3D neurite outgrowth and elongation [J].
Chen, Jiali ;
Huang, Da ;
Wang, Ling ;
Hou, Juedong ;
Zhang, Hongwu ;
Li, Yanbing ;
Zhong, Shizhen ;
Wang, Yanfang ;
Wu, Yaobin ;
Huang, Wenhua .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2020, 574 :162-173
[49]   Stimulative piezoelectric nanofibrous scaffolds for enhanced small extracellular vesicle production in 3D cultures [J].
Johnston, James ;
Jeon, Hyunsu ;
Choi, Yun Young ;
Kim, Gaeun ;
Shi, Tiger ;
Khong, Courtney ;
Chang, Hsueh-Chia ;
Myung, Nosang Vincent ;
Wang, Yichun .
BIOMATERIALS SCIENCE, 2024, 12 (22) :5728-5741
[50]   Surface functionalization of 3D glass-ceramic porous scaffolds for enhanced mineralization in vitro [J].
Ferraris, Sara ;
Vitale-Brovarone, Chiara ;
Bretcanu, Oana ;
Cassinelli, Clara ;
Verne, Enrica .
APPLIED SURFACE SCIENCE, 2013, 271 :412-420