Lancaster Louis, Bulutoglu Beyza, Banta Scott, Wheeldon Ian
Department of Chemical and Environmental Engineering, University of California, Riverside, CA, United States.
Department of Chemical Engineering, Columbia University, New York, NY, United States.
Methods Enzymol. 2019;617:265-285. doi: 10.1016/bs.mie.2018.12.006. Epub 2019 Feb 8.
The development of biomaterials with embedded enzymatic activities has been driven by a range of applications including tissue engineering, biosensors, and bioenergy applications. Advances in the design and production of peptide-based biomaterials have inspired protein engineers to begin creating enzymes with self-assembling, biomaterial forming capabilities. Outfitting enzymes with cross-link forming domains allows biomaterials to be created with a range of benefits including simple low-cost production, homogenous dispersion of activity in the hydrogels, and the ability to colocalize enzymes to create multistep cascades in the hydrogels. Just as natural hydrogels have evolved to exhibit important material and catalytic properties, designed bifunctional proteins that enable colocalization of activity within biomaterials are poised to further advance a range of biocatalytic, biomedical, and biotechnological applications.
具有嵌入酶活性的生物材料的发展受到包括组织工程、生物传感器和生物能源应用在内的一系列应用的推动。基于肽的生物材料在设计和生产方面的进展激发了蛋白质工程师开始创造具有自组装、生物材料形成能力的酶。为酶配备交联形成结构域可使生物材料具有一系列优点,包括简单的低成本生产、水凝胶中活性的均匀分散以及将酶共定位以在水凝胶中创建多步级联反应的能力。正如天然水凝胶已经进化以展现出重要的材料和催化特性一样,能够使生物材料内的活性共定位的设计双功能蛋白质有望进一步推动一系列生物催化、生物医学和生物技术应用的发展。