School of Chemical Science and Engineering, Tongji University, 1239 Siping Road, Shanghai 200092, P. R. China.
Acc Chem Res. 2021 Mar 2;54(5):1274-1287. doi: 10.1021/acs.accounts.0c00832. Epub 2021 Feb 11.
Enzymes, a class of highly efficient and specific catalysts in Nature, dictate a myriad of reactions that constitute various cascades in biological systems. There is growing evidence that many cellular reactions within metabolic pathways are catalyzed by matrix-associated multienzyme complexes, not via the free enzymes, verifying the vital effects of microenvironmental organization, which would reveal implications for the high efficiency, specificity, and regulation of metabolic pathways. The extracellular matrix (ECM), as the noncellular component, is composed of various proteins such as collagens, laminins, proteoglycans, and remodeling enzymes, playing the key role in tissue architecture and homeostasis. Hydrogels are defined as highly hydrated polymer materials and maintain structural integrity by physical and chemical force, which are thought of as the most suitable materials for matching the chemical, physical, and mechanical properties with natural ECM. As one specific type of soft and wet materials, hydrogels are suitable three-dimensional carriers to locally confine bioactive guests, such as enzymes, for molecular-level biological interactions. The efficient cascade catalysis can be realized by enzyme-laden hydrogels, which can potentially interact with cells and tissues by material-to-biology communication. In this Account, we present recent progress on the preparation of enzymatic bioactive hydrogels, including in situ coassembly, in situ cross-linking strategy, and in situ enzymatic radical polymerization technology, further promoting their applications on biomedical tissue engineering, biocatalytic health monitoring, and therapeutic research. First, we provide a brief introduction of the basic concept related to an enzymatic strategy in living systems and the importance of bioinspired enzyme-laden bioactive hydrogel systems. We discuss the difficulties of the fabrication of a bioactive hydrogel with a high catalytic efficiency, thereby providing the novel molecular design and regulation based on a noncovalent coassembly and in situ self-immobilization strategy to obtain the compartmentalized enzyme-laden structure. Then the applications of an enzyme-laden bioactive hydrogel for biocatalytic applications are discussed in detail. The enzyme-laden bioactive hydrogel can maintain the favorable perception and regulation behavior of enzymes with optimal enzymatic efficacy between this confined hydrogel network and a surrounding environment. A highlight to the advances in the responsively biocatalytic monitoring and regulation of bioactive hydrogel, including the enzymatic biomedical tissue engineering and health monitoring, enzymatic regulation of tumor reactive oxygen species and therapeutic research are given. Finally, the outlook of open challenges and future developments of this rapidly evolving field is provided. This Account with highlights of diverse enzyme-laden bioactive hydrogel systems not only provides interesting insights to understand the cascade enzymatic strategy of life but also inspires to broaden and enhance the molecular-level material design and bioapplications of existing enzymatic materials in chemistry, materials science, and biology.
酶是自然界中一类高效且具有特异性的催化剂,其控制着构成生物系统中各种级联反应的无数反应。越来越多的证据表明,代谢途径中的许多细胞反应都是由基质相关的多酶复合物而非游离酶催化的,这验证了微环境组织的重要作用,这将揭示代谢途径高效性、特异性和调控的意义。细胞外基质 (ECM) 作为非细胞成分,由各种蛋白质组成,如胶原、层粘连蛋白、蛋白聚糖和重塑酶,其在组织架构和动态平衡中起着关键作用。水凝胶被定义为高度水合的聚合物材料,通过物理和化学力保持结构完整性,被认为是最适合与天然 ECM 的化学、物理和机械性能相匹配的材料。作为一种特殊类型的柔软湿润材料,水凝胶是局部容纳生物活性物质(如酶)的理想三维载体,用于实现分子水平的生物相互作用。酶负载水凝胶可以实现有效的级联催化,并且可以通过物质与生物学的交流与细胞和组织相互作用。在本综述中,我们介绍了酶活性水凝胶的制备方面的最新进展,包括原位共组装、原位交联策略和原位酶引发自由基聚合技术,进一步推动了其在生物医学组织工程、生物催化健康监测和治疗研究中的应用。首先,我们简要介绍了与生命系统中酶策略相关的基本概念以及仿生酶负载生物活性水凝胶系统的重要性。我们讨论了制备具有高催化效率的生物活性水凝胶的困难,从而提供了基于非共价共组装和原位自固定化策略的新型分子设计和调控,以获得分隔的酶负载结构。然后详细讨论了酶负载生物活性水凝胶在生物催化应用中的应用。酶负载生物活性水凝胶可以在这个受限的水凝胶网络和周围环境之间保持酶的最佳酶效的有利感知和调控行为。重点介绍了生物活性水凝胶的响应性生物催化监测和调控方面的进展,包括酶医学生物组织工程和健康监测、肿瘤活性氧的酶调控和治疗研究。最后,对这个快速发展领域的开放性挑战和未来发展进行了展望。本综述重点介绍了多种酶负载生物活性水凝胶系统的进展,不仅为理解生命中的级联酶策略提供了有趣的见解,而且为化学、材料科学和生物学领域中现有酶材料的分子水平材料设计和生物应用提供了拓宽和增强的灵感。