Department of Chemistry and Biochemistry, University of Delaware, Newark, Delaware 19716, United States.
Department of Biological Sciences, University of Delaware, Newark, Delaware 19716, United States.
ACS Appl Mater Interfaces. 2024 Nov 20;16(46):63195-63206. doi: 10.1021/acsami.4c12609. Epub 2024 Nov 6.
Surface modification of materials with proteins has various biological applications, and hence the methodology for surface modification needs to accommodate a wide range of proteins that differ in structure, size, and function. Presented here is a methodology that uses the Affinity Bioorthogonal Chemistry (ABC) tag, 3-(2-pyridyl)-6-methyltetrazine (PyTz), for the site-selective modification and purification of proteins and subsequent attachment of the protein to -cyclooctene (TCO)-functionalized hydrogel microfibers. This method of surface modification is shown to maintain the functionality of the protein after conjugation with proteins of varying size and functionalities, namely, HaloTag, NanoLuc luciferase (NanoLuc), and fibronectin type III domains 9-10 (FNIII 9-10). The method also supports surface modification with multiple proteins, which is shown by the simultaneous conjugation of HaloTag and NanoLuc on the microfiber surface. The ability to control the relative concentrations of multiple proteins presented on the surface is shown with the use of HaloTag and superfolder GFP (sfGFP). This application of the ABC-tagging methodology expands on existing surface modification methods and provides flexibility in the site-selective protein conjugation methods used along with the rapid kinetics of tetrazine ligation.
材料的表面修饰具有各种生物应用,因此表面修饰的方法需要适应结构、大小和功能不同的各种蛋白质。这里介绍了一种使用亲和生物正交化学(ABC)标签、3-(2-吡啶基)-6-甲基四嗪(PyTz)的方法,用于蛋白质的选择性修饰和纯化,以及随后将蛋白质连接到 -环辛烯(TCO)-功能化的水凝胶微纤维上。该表面修饰方法在与不同大小和功能的蛋白质缀合后,仍能保持蛋白质的功能,例如 HaloTag、纳米荧光素酶(NanoLuc)和纤维连接蛋白 III 结构域 9-10(FNIII 9-10)。该方法还支持多种蛋白质的表面修饰,如在微纤维表面同时缀合 HaloTag 和 NanoLuc 所示。通过使用 HaloTag 和超折叠 GFP(sfGFP),可以控制表面上呈现的多种蛋白质的相对浓度。ABC 标记方法的这种应用扩展了现有的表面修饰方法,并为使用的选择性蛋白质缀合方法提供了灵活性,同时具有四嗪连接的快速动力学。