Cellulose-Based Hybrid Hydrogels for Tissue Engineering Applications: A Sustainable Approach

被引:0
作者
Vazquez-Rivas, Elizabeth [1 ,2 ,3 ]
Desales-Guzman, Luis Alberto [2 ]
Pacheco-Sanchez, Juan Horacio [2 ]
Burillo-Amezcua, Sofia Guillermina [3 ]
机构
[1] Univ Guadalajara, Ctr Univ Ciencias Exactas & Ingn, Guadalajara 44430, Jalisco, Mexico
[2] Inst Tecnol Toluca, Div Estudios Posgrad & Invest, Metepec 52149, Edo Mex, Mexico
[3] Univ Nacl Autonoma Mexico, Inst Ciencias Nucl, Mexico City 04510, Mexico
关键词
cellulose; cellulose derivatives; sustainable resources; hydrogels; stimuli responsive hydrogels; tissue engineering; scaffolds; carboximethyl cellulose; methyl cellulose; hydroxypropylcellulose; HOST-GUEST INTERACTIONS; BACTERIAL CELLULOSE; CARBOXYMETHYL CELLULOSE; RESPONSIVE POLYMERS; CONTROLLED-RELEASE; CLICK CHEMISTRY; NANOCELLULOSE; METHYLCELLULOSE; NANOCRYSTALS; EXTRACTION;
D O I
10.3390/gels11060438
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Cellulose is a sustainable biopolymer, being renewable and abundant, non-toxic, biodegradable, and easily functionalizable. However, the development of hydrogels for tissue engineering applications presents significant challenges that require interdisciplinary expertise, given the intricate and dynamic nature of the human body. This paper delves into current research focused on creating advanced cellulose-based hydrogels with tailored mechanical, biological, chemical, and surface properties. These hydrogels show promise in healing, regenerating, and even replacing human tissues and organs. The synthesis of these hydrogels employs a range of innovative techniques, including supramolecular chemistry, click chemistry, enzyme-induced crosslinking, ultrasound, photo radiation, high-energy ionizing radiation, 3D printing, and other emerging methods. In the realm of tissue engineering, various types of hydrogels are explored, such as stimuli-responsive, hybrid, injectable, bio-printed, electrospun, self-assembling, self-healing, drug-releasing, biodegradable, and interpenetrating network hydrogels. Moreover, these materials can be further enhanced by incorporating cell growth factors, biological molecules, or by loading them with cells or drugs. Looking ahead, future research aims to engineer and tailor hydrogels to meet specific needs. This includes exploring safer and more sustainable materials and synthesis techniques, identifying less invasive application methods, and translating these studies into practical applications.
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