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Functionalization of Cellulose-Based Hydrogels with Bi-Functional Fusion Proteins Containing Carbohydrate-Binding Modules

机译:含碳水化合物结合模块的双官能融合蛋白的纤维素基水凝胶的官能化

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摘要

Materials with novel and enhanced functionalities can be obtained by modifying cellulose with a range of biomolecules. This functionalization can deliver tailored cellulose-based materials with enhanced physical and chemical properties and control of biological interactions that match specific applications. One of the foundations for the success of such biomaterials is to efficiently control the capacity to combine relevant biomolecules into cellulose materials in such a way that the desired functionality is attained. In this context, our main goal was to develop bi-functional biomolecular constructs for the precise modification of cellulose hydrogels with bioactive molecules of interest. The main idea was to use biomolecular engineering techniques to generate and purify different recombinant fusions of carbohydrate binding modules (CBMs) with significant biological entities. Specifically, CBM-based fusions were designed to enable the bridging of proteins or oligonucleotides with cellulose hydrogels. The work focused on constructs that combine a family 3 CBM derived from the cellulosomal-scaffolding protein A from Clostridium thermocellum (CBM3) with the following: (i) an N-terminal green fluorescent protein (GFP) domain (GFP-CBM3); (ii) a double Z domain that recognizes IgG antibodies; and (iii) a C-terminal cysteine (CBM3C). The ability of the CBM fusions to bind and/or anchor their counterparts onto the surface of cellulose hydrogels was evaluated with pull-down assays. Capture of GFP-CBM3 by cellulose was first demonstrated qualitatively by fluorescence microscopy. The binding of the fusion proteins, the capture of antibodies (by ZZ-CBM3), and the grafting of an oligonucleotide (to CBM3C) were successfully demonstrated. The bioactive cellulose platform described here enables the precise anchoring of different biomolecules onto cellulose hydrogels and could contribute significatively to the development of advanced medical diagnostic sensors or specialized biomaterials, among others.
机译:具有新颖和增强功能的材料可以通过用一系列生物分子改性纤维素来获得。该官能化可以通过增强的物理和化学性质和控制特定应用的生物相互作用提供定制的基于纤维素的材料。这种生物材料成功的基础之一是有效地控制将相关生物分子与纤维素材料结合成纤维素材料的能力,使得所需的官能度得到达到的方式。在这种情况下,我们的主要目标是开发双功能生物分子构建体,用于精确修饰纤维素水凝胶与感兴趣的生物活性分子。主要思想是使用生物分子工程技术产生和纯化具有显着生物实体的碳水化合物结合模块(CBMS)的不同重组融合。具体地,设计基于CBM的融合,以使蛋白质或寡核苷酸与纤维素水凝胶桥接。该工作的重点是将来自纤维素 - 支架蛋白A的家族3CBM与梭菌热团块(CBM3)结合的构建体,其中(i)N-末端绿色荧光蛋白(GFP)结构域(GFP-CBM3); (ii)识别IgG抗体的双Z结构域; (iii)C-末端半胱氨酸(CBM3C)。通过下拉测定评价CBM融合CBM融合将其对应物结合到纤维素水凝胶表面上的能力。首先通过荧光显微镜定性首先通过纤维素捕获GFP-CBM3。成功地证明了融合蛋白的结合,抗体捕获(通过ZZ-CBM3)和寡核苷酸的接枝(至CBM3C)。这里描述的生物活性纤维素平台使得将不同的生物分子精确锚固到纤维素水凝胶中,并且可以显着地促进高级医疗诊断传感器或专用生物材料的发展。

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