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用于微创手术的纳米复合可注射水凝胶的设计。

Design of Nanocomposite Injectable Hydrogels for Minimally Invasive Surgery.

机构信息

Institut de Science et d'Ingénierie Supramoléculaires, CNRS, UMR 7006 , Université de Strasbourg , 8 rue Gaspard Monge , 67000 Strasbourg , France.

Department of Chemical Sciences and Technologies , University of Rome Tor Vergata , Via della Ricerca Scientifica 1 , Rome 00133 , Italy.

出版信息

Acc Chem Res. 2019 Aug 20;52(8):2101-2112. doi: 10.1021/acs.accounts.9b00114. Epub 2019 Jul 10.

Abstract

Biocompatible hydrogels are materials that hold great promise in medicine and biology since the porous structure, the ability to entrap a large amount of water, and the tunability of their mechanical and tissue adhesive properties make them suitable for several applications, including wound healing, drug and cell delivery, cancer treatment, bioelectronics, and tissue regeneration. Among the possible developed systems, injectable hydrogels, owing to their properties, are optimal candidates for minimally invasive procedures. To be injectable, a hydrogel must be liquid before and during the injection, but it must quickly jellify after injection to form a soft, self-standing, solid material. The possibility to work with a liquid precursor encoding the functions that will be available after gelation allows the development of biocompatible materials that can be employed in surgery and, in particular, in noninvasive procedures. The underlying idea is to reach the target tissue by using just a needle, or by exploiting the natural body orifices, reducing surgery procedure time, induced pain, and risk of infections. Hydrogels with different properties can be obtained by changing the type of cross-linking, the cross-linking density or the molecular weight of the polymer, or by introducing pending functional groups. The introduction of a nanofiller in the hydrogel network allows for expanding the suite of the structural and functional properties and for better mimicking native tissues. In this Account, we discuss how to provide a hydrogel network with designed properties by playing with both the polymeric chains and the fillers. We present selected examples from the literature that show how to introduce stiffness, stretchability, adhesiveness, self-healing, anisotropy, antimicrobial activity, biodegradability, and conductivity in injectable hydrogels. We further describe how the chemical composition, the mechanical properties, and the microarchitecture of the hydrogel influence cell adhesion, proliferation, and differentiation. Examples of injectable hydrogels for innovative minimally invasive procedures are then discussed in detail; in particular, we showcase the use of hydrogels for tumor resection and as vascular chemoembolization agents. We further discuss how one can improve the rheological properties of injectable hydrogels to exploit them in osteochondral tissue engineering. The effect of the introduction of a conductive filler is then presented in relation to the development of electroactive scaffolds for cardiac-tissue engineering and neural and nerve repair. We believe that the rational design of biocompatible, injectable hybrid hydrogels with tunable properties will likely play a crucial role in reducing the invasiveness and improving the outcome of several clinical and surgical setups.

摘要

生物相容水凝胶在医学和生物学领域具有广阔的应用前景,因为其多孔结构、能够容纳大量水分以及机械和组织黏附性能的可调节性使其适用于多种应用,包括伤口愈合、药物和细胞输送、癌症治疗、生物电子学和组织再生。在可能开发的系统中,由于其特性,可注射水凝胶是微创程序的最佳候选者。为了可注射,水凝胶在注射前和注射过程中必须是液体,但在注射后必须迅速胶凝以形成柔软、自立、固态的材料。使用编码胶凝后可用功能的液体前体进行工作的可能性允许开发可用于手术的生物相容材料,特别是在非侵入性手术中。其基本思想是仅使用针或利用天然体腔到达目标组织,从而减少手术时间、诱导疼痛和感染风险。通过改变交联类型、交联密度或聚合物分子量,或引入悬垂官能团,可以获得具有不同性能的水凝胶。在水凝胶网络中引入纳米填充物可以扩展结构和功能特性套件,并更好地模拟天然组织。在本报告中,我们讨论了如何通过对聚合物链和填充物进行操作来为水凝胶网络提供具有设计特性的方法。我们从文献中选择了一些示例,展示了如何在可注射水凝胶中引入刚度、拉伸性、黏附性、自修复性、各向异性、抗菌活性、生物降解性和导电性。我们进一步描述了水凝胶的化学组成、力学性能和微观结构如何影响细胞黏附、增殖和分化。然后详细讨论了用于创新的微创程序的可注射水凝胶的示例;特别是,我们展示了水凝胶在肿瘤切除和作为血管化学栓塞剂的应用。我们进一步讨论了如何改善可注射水凝胶的流变性能以将其用于骨软骨组织工程。然后介绍了在开发用于心脏组织工程和神经和神经修复的电活性支架时引入导电填充物的效果。我们相信,具有可调特性的生物相容可注射杂化水凝胶的合理设计将在降低侵袭性和改善几种临床和手术设置的结果方面发挥关键作用。

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