Hudalla Gregory A, Sun Tao, Gasiorowski Joshua Z, Han Huifang, Tian Ye F, Chong Anita S, Collier Joel H
1] Department of Surgery, University of Chicago, 5841 S. Maryland Avenue ML 5032 Chicago, Illinois 60637, USA [2].
Department of Surgery, University of Chicago, 5841 S. Maryland Avenue ML 5032 Chicago, Illinois 60637, USA.
Nat Mater. 2014 Aug;13(8):829-36. doi: 10.1038/nmat3998. Epub 2014 Jun 15.
Biomaterials exhibiting precise ratios of different bioactive protein components are critical for applications ranging from vaccines to regenerative medicine, but their design is often hindered by limited choices and cross-reactivity of protein conjugation chemistries. Here, we describe a strategy for inducing multiple different expressed proteins of choice to assemble into nanofibres and gels with exceptional compositional control. The strategy employs 'βTail' tags, which allow for good protein expression in bacteriological cultures, yet can be induced to co-assemble into nanomaterials when mixed with additional β-sheet fibrillizing peptides. Multiple different βTail fusion proteins could be inserted into peptide nanofibres alone or in combination at predictable, smoothly gradated concentrations, providing a simple yet versatile route to install precise combinations of proteins into nanomaterials. The technology is illustrated by achieving precisely targeted hues using mixtures of fluorescent proteins, by creating nanofibres bearing enzymatic activity, and by adjusting antigenic dominance in vaccines.
具有不同生物活性蛋白成分精确比例的生物材料对于从疫苗到再生医学等一系列应用至关重要,但其设计常常受到蛋白质共轭化学方法选择有限和交叉反应的阻碍。在此,我们描述了一种策略,可诱导多种不同的选定表达蛋白组装成具有卓越成分控制的纳米纤维和凝胶。该策略采用“βTail”标签,其在细菌培养物中能实现良好的蛋白质表达,但与额外的β折叠成纤维肽混合时可被诱导共同组装成纳米材料。多种不同的βTail融合蛋白可单独或以可预测的、平滑渐变的浓度组合插入肽纳米纤维中,为将蛋白质的精确组合安装到纳米材料中提供了一条简单而通用的途径。通过使用荧光蛋白混合物实现精确靶向的色调、创建具有酶活性的纳米纤维以及调整疫苗中的抗原优势来说明该技术。