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Injectable hydrogels delivering therapeutic agents for disease treatment and tissue engineering

机译:可注射水凝胶为疾病治疗和组织工程提供治疗剂

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Background Injectable hydrogels have been extensively researched for the use as scaffolds or as carriers of therapeutic agents such as drugs, cells, proteins, and bioactive molecules in the treatment of diseases and cancers and the repair and regeneration of tissues. It is because they have the injectability with minimal invasiveness and usability for irregularly shaped sites, in addition to typical advantages of conventional hydrogels such as biocompatibility, permeability to oxygen and nutrient, properties similar to the characteristics of the native extracellular matrix, and porous structure allowing therapeutic agents to be loaded. Main body In this article, recent studies of injectable hydrogel systems applicable for therapeutic agent delivery, disease/cancer therapy, and tissue engineering have reviewed in terms of the various factors physically and chemically contributing to sol-gel transition via which gels have been formed. The various factors are as follows: several different non-covalent interactions resulting in physical crosslinking (the electrostatic interactions (e.g., the ionic and hydrogen bonds), hydrophobic interactions, π-interactions, and van der Waals forces), in-situ chemical reactions inducing chemical crosslinking (the Diels Alder click reactions, Michael reactions, Schiff base reactions, or enzyme-or photo-mediated reactions), and external stimuli (temperatures, pHs, lights, electric/magnetic fields, ultrasounds, or biomolecular species (e.g., enzyme)). Finally, their applications with accompanying therapeutic agents and notable properties used were reviewed as well. Conclusion Injectable hydrogels, of which network morphology and properties could be tuned, have shown to control the load and release of therapeutic agents, consequently producing significant therapeutic efficacy. Accordingly, they are believed to be successful and promising biomaterials as scaffolds and carriers of therapeutic agents for disease and cancer therapy and tissue engineering.
机译:背景技术已经对可注射水凝胶进行了广泛的研究,以用作治疗疾病和癌症以及组织的修复和再生的治疗剂如药物,细胞,蛋白质和生物活性分子的支架或载体。这是因为除了常规水凝胶的典型优势(如生物相容性,对氧气和营养的渗透性,与天然细胞外基质的特性相似的特性)和多孔结构以外,它们还具有可注射性,并且具有极小的侵袭性和对不规则形状部位的可用性。要加载的治疗剂。主体在本文中,针对可用于治疗剂输送,疾病/癌症治疗和组织工程的可注射水凝胶系统的最新研究,从物理和化学上促进形成凝胶的溶胶-凝胶转变的各种因素进行了综述。各种因素如下:导致物理交联的几种不同的非共价相互作用(静电相互作用(例如离子键和氢键),疏水相互作用,π相互作用和范德华力),原位化学反应诱导化学交联(Diels Alder点击反应,迈克尔反应,席夫碱反应或酶或光介导的反应)和外部刺激(温度,pH,光,电场/磁场,超声或生物分子种类(例如,酶))。最后,还回顾了它们与辅助治疗剂的应用以及所使用的显着特性。结论可调整其网络形态和性能的可注射水凝胶已显示出可控制治疗剂的负载和释放,因此产生了显着的疗效。因此,它们被认为是成功和有前途的生物材料,作为用于疾病和癌症治疗以及组织工程的治疗剂的支架和载体。

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