Current progress of self-healing polymers for medical applications in tissue engineering

被引:0
|
作者
María Luisa Del Prado-Audelo
Isaac H. Caballero-Florán
Néstor Mendoza-Muñoz
David Giraldo-Gomez
Javad Sharifi-Rad
Jayanta Kumar Patra
Maykel González-Torres
Benjamín Florán
Hernán Cortes
Gerardo Leyva-Gómez
机构
[1] Universidad Nacional Autónoma de México,Departamento de Farmacia, Facultad de Química
[2] Tecnológico de Monterrey Campus Ciudad de México,Escuela de Ingeniería y Ciencias, Departamento de Bioingeniería
[3] Centro de Investigación y de Estudios Avanzados del Instituto Politécnico Nacional,Departamento de Fisiología, Biofísica and Neurociencias
[4] Universidad de Colima,Facultad de Ciencias Químicas
[5] Universidad Nacional Autónoma de México (UNAM),Departamento de Biología Celular y Tisular, Facultad de Medicina
[6] Universidad Nacional Autónoma de México (UNAM),Unidad de Microscopía, Facultad de Medicina
[7] Shahid Beheshti University of Medical Sciences,Phytochemistry Research Center
[8] Dongguk University-Seoul,Research Institute of Biotechnology and Medical Converged Science
[9] Instituto Nacional de Rehabilitación Luis Guillermo Ibarra Ibarra,CONACyT
[10] Instituto Nacional de Rehabilitación Luis Guillermo Ibarra Ibarra,Laboratorio de Biotecnología
[11] Universidad del Azuay,Laboratorio de Medicina Genómica, Departamento de Genética
来源
Iranian Polymer Journal | 2022年 / 31卷
关键词
Self-healing polymers; Hydrogels; Biomaterials; Tissue engineering; Cartilage;
D O I
暂无
中图分类号
学科分类号
摘要
The research of self-healable polymers intended for medical use has increased in the last 20 years. These materials can self-repair and recover their functionality after damage; thus, they are of significant interest in diverse academic areas, including the biomedical field. In this regard, numerous synthetic and natural polymers are being used to develop self-healing hydrogels for tissue engineering applications, particularly for the restoration of bones, cartilage, skin, and even the central nervous system. These materials possess distinct advantages; for example, natural polymers are usually biocompatible and biodegradable, whereas synthetic polymers could be more suitable when rigid hydrogels with fast kinetics are required. Moreover, the intrinsic reticular matrix of these self-healing systems allows the load of diverse drugs and their controlled release. Remarkably, polymers may be mixed to obtain hydrogels with enhanced mechanical and biological properties. The elaboration of self-healable hydrogels is carried out through either covalent crosslinking or non-covalent crosslinking; the selection of the method depends on many factors, including the required mechanical properties and desired use. Although some articles have reviewed self-healing hydrogels, papers focused on utilizing these systems in tissue engineering are scarce. In this article, we perform a concise description of fabrication methods of self-healing hydrogels and the employed polymers. Furthermore, we provide numerous examples of hydrogels intended for biomedical purposes and discuss their key functional properties. Our main objective was to point out the most recent progress in utilizing self-healing polymers in tissue engineering.
引用
收藏
页码:7 / 29
页数:22
相关论文
共 50 条
  • [21] Self-healing polymers with nanomaterials and nanostructures
    Zhai, Lei
    Narkar, Ameya
    Ahn, Kollbe
    NANO TODAY, 2020, 30
  • [22] Nanohybrid-Reinforced Gelatin-Ureidopyrimidinone-Based Self-healing Injectable Hydrogels for Tissue Engineering Applications
    Balavigneswaran, Chelladurai Karthikeyan
    Muthuvijayan, Vignesh
    ACS APPLIED BIO MATERIALS, 2021, 4 (06): : 5362 - 5377
  • [23] Self-healing polymers: evaluation of self-healing process via non-destructive techniques
    Bekas, D. G.
    Baltzis, D.
    Tsirka, K.
    Exarchos, D.
    Matikas, T.
    Meristoudi, A.
    Pispas, S.
    Paipetis, A. S.
    PLASTICS RUBBER AND COMPOSITES, 2016, 45 (04) : 147 - 156
  • [24] Review paper: Progress in the Field of Conducting Polymers for Tissue Engineering Applications
    Bendrea, Anca-Dana
    Cianga, Luminita
    Cianga, Ioan
    JOURNAL OF BIOMATERIALS APPLICATIONS, 2011, 26 (01) : 3 - 84
  • [25] Chemistry of Crosslinking Processes for Self-Healing Polymers
    Billiet, Stijn
    Hillewaere, Xander K. D.
    Teixeira, Roberto F. A.
    Du Prez, Filip E.
    MACROMOLECULAR RAPID COMMUNICATIONS, 2013, 34 (04) : 290 - 309
  • [26] Self-healing polymers for soft actuators and robots
    Qiu, Xiaoyan
    Zhang, Xinxing
    JOURNAL OF POLYMER SCIENCE, 2024, 62 (14) : 3137 - 3155
  • [27] High-Performance Self-Healing Polymers
    Peng, Yan
    Gu, Shiyu
    Wu, Qi
    Xie, Zhengtian
    Wu, Jinrong
    ACCOUNTS OF MATERIALS RESEARCH, 2023, 4 (04): : 323 - 333
  • [28] Self-Healing and Adhesive Artificial Tissue Implant for Voice Recovery
    Lee, Seunghun S.
    Kim, Hwan D.
    Kim, Seung Hyun L.
    Kim, Inseon
    Kim, In Gul
    Choi, Ji Suk
    Jeong, Jiwoon
    Kim, Jung Hun
    Kwon, Seong Keun
    Hwang, Nathaniel S.
    ACS APPLIED BIO MATERIALS, 2018, 1 (04): : 1134 - 1146
  • [29] Phenomenological modelling of self-healing polymers based on integrated healing agents
    Julia Mergheim
    Paul Steinmann
    Computational Mechanics, 2013, 52 : 681 - 692
  • [30] Phenomenological modelling of self-healing polymers based on integrated healing agents
    Mergheim, Julia
    Steinmann, Paul
    COMPUTATIONAL MECHANICS, 2013, 52 (03) : 681 - 692