composite gels
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2022 ◽  
pp. 107482
Author(s):  
Cong Min ◽  
Wenhui Ma ◽  
Jiwei Kuang ◽  
Junrong Huang ◽  
Youling L. Xiong

2021 ◽  
pp. 2100319
Author(s):  
Juri Asada ◽  
Natsuka Usami ◽  
Hiroki Ota ◽  
Masayoshi Watanabe ◽  
Kazuhide Ueno

Author(s):  
CONGCONG ZHAN ◽  
Yasong Hu ◽  
ANDUO ZHOU ◽  
SHANFENG ZHANG ◽  
Xia Huang

Three-dimensional (3D) bioprinting is a potential therapeutic method for tissue engineering owing to its ability to prepare cell-laden tissue constructs. The properties of bioink are crucial to accurately control the printing structure. Meanwhile, the effect of process parameters on the precise structure is not nonsignificant. We investigated the correlation between process parameters of 3D bioprinting and the structural response of κ-carrageenan-based hydrogels to explore the controllable structure, printing resolution, and cell survival rate. Small-diameter (<6 mm) gel filaments with different structures were printed by varying the shear stress of the extrusion bioprinter to simulate the natural blood vessel structure. The cell viability of the scaffold was evaluated. The in vitro culture of human umbilical vein endothelium cells (HUVECs) on the κ-carrageenan (kc) and composite gels (carrageenan/carbon nanotube and carrageenan/sodium alginate) demonstrated that the cell attachment and proliferation on composite gels were better than those on pure kc. Our results revealed that the carrageenan-based composite bioinks offer better printability, sufficient mechanical stiffness, interconnectivity, and biocompatibility. This process can facilitate precise adjustment of the pore size, porosity, and pore distribution of the hydrogel structure by optimising the printing parameters as well as realise the precise preparation of the internal structure of the 3D hydrogel-based tissue engineering scaffold. Moreover, we obtained perfused tubular filament by 3D printing at optimal process parameters.


2021 ◽  
Vol 118 ◽  
pp. 106775
Author(s):  
Anqi Li ◽  
Chuo Guo ◽  
Xiaofei Li ◽  
Peiyuan Li ◽  
Xi Yang ◽  
...  

Materials ◽  
2021 ◽  
Vol 14 (17) ◽  
pp. 4982 ◽  
Author(s):  
Rebecca Sikkema ◽  
Blanca Keohan ◽  
Igor Zhitomirsky

Applications of natural hyaluronic acid (HYH) for the fabrication of organic-inorganic composites for biomedical applications are described. Such composites combine unique functional properties of HYH with functional properties of hydroxyapatite, various bioceramics, bioglass, biocements, metal nanoparticles, and quantum dots. Functional properties of advanced composite gels, scaffold materials, cements, particles, films, and coatings are described. Benefiting from the synergy of properties of HYH and inorganic components, advanced composites provide a platform for the development of new drug delivery materials. Many advanced properties of composites are attributed to the ability of HYH to promote biomineralization. Properties of HYH are a key factor for the development of colloidal and electrochemical methods for the fabrication of films and protective coatings for surface modification of biomedical implants and the development of advanced biosensors. Overcoming limitations of traditional materials, HYH is used as a biocompatible capping, dispersing, and structure-directing agent for the synthesis of functional inorganic materials and composites. Gel-forming properties of HYH enable a facile and straightforward approach to the fabrication of antimicrobial materials in different forms. Of particular interest are applications of HYH for the fabrication of biosensors. This review summarizes manufacturing strategies and mechanisms and outlines future trends in the development of functional biocomposites.


2021 ◽  
pp. 110756
Author(s):  
Ying Cui ◽  
Changyong Li ◽  
Yang Guo ◽  
Xiao Liu ◽  
Fan Zhu ◽  
...  

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