Department of Complex Tissue Regeneration, MERLN Institute for Technology-Inspired Regenerative Medicine, Maastricht University, 6211 LK, Maastricht, the Netherlands.
Department of Complex Tissue Regeneration, MERLN Institute for Technology-Inspired Regenerative Medicine, Maastricht University, 6211 LK, Maastricht, the Netherlands.
Acta Biomater. 2021 Apr 1;124:1-14. doi: 10.1016/j.actbio.2021.01.034. Epub 2021 Jan 27.
Biomaterial matrices must permit tissue growth and maturation for the success of tissue regeneration strategies. Naturally, this accommodation is achieved via the dynamic remodeling of a cell's extracellular matrix (ECM). Synthetically, hydrolytic or enzymatic degradation are often engineered into materials for this purpose. More recently, supramolecular interactions have been used to provide a biomimetic and tunable mechanism to facilitate tissue formation via their dynamic and reversible non-covalent interactions. By engineering the mechanical and bioactive properties of a material, supramolecular chemists are able to design permissivity into the construct and facilitate tissue integration in-vivo. Furthermore, via the reversibility of non-covalent interactions, injectability and responsiveness can be designed for enhanced delivery and spatio-temporal control. In this review, we delineate the basic considerations needed when designing permissive supramolecular hydrogels for tissue engineering with an eye toward tissue growth and integration. We highlight three archetypal hydrogel systems that have shown well-documented tissue integration in vivo, and provide avenues to assess tissue in-growth. Careful design and assessment of the biomedical potential of a supramolecular hydrogels can inspire the creation of robust and dynamic implants for new tissue engineering applications.
生物材料基质必须允许组织生长和成熟,才能成功实现组织再生策略。自然地,这种适应性是通过细胞外基质(ECM)的动态重塑来实现的。在合成方面,通常会设计水解或酶降解来达到这一目的。最近,超分子相互作用被用于提供一种仿生和可调谐的机制,通过其动态和可逆的非共价相互作用促进组织形成。通过工程材料的机械和生物活性特性,超分子化学家能够在构建体中设计出允许性,并促进体内组织整合。此外,通过非共价相互作用的可逆性,可以设计出可注射性和响应性,以增强药物传递和时空控制。在这篇综述中,我们阐述了设计用于组织工程的允许性超分子水凝胶时需要考虑的基本因素,着眼于组织生长和整合。我们重点介绍了三种已经在体内得到很好证明的典型水凝胶系统,并提供了评估组织内生长的途径。仔细设计和评估超分子水凝胶的生物医学潜力,可以为新的组织工程应用创造出强大和动态的植入物。