Benítez-Mateos Ana I, Llarena Irantzu, Sánchez-Iglesias Ana, López-Gallego Fernando
Heterogeneous Biocatalysis Group , CIC biomaGUNE , Paseo Miramón 182, Edificio empresarial "C" , 20014 San Sebastián , Spain.
Optical Spectroscopy Platform , CIC biomaGUNE , Paseo Miramón 182, Edificio empresarial "C" , 20014 San Sebastián , Spain.
ACS Synth Biol. 2018 Mar 16;7(3):875-884. doi: 10.1021/acssynbio.7b00383. Epub 2018 Mar 6.
Fabrication of protein-based biomaterials is an arduous and time-consuming procedure with multiple steps. In this work, we describe a portable toolkit that integrates both cell-free protein synthesis (CFPS) and protein immobilization in one pot just by mixing DNA, solid materials, and a CFPS system. We have constructed a modular set of plasmids that fuse the N-terminus of superfolded green fluorescent protein (sGFP) with different peptide tags (poly(6X)Cys, poly(6X)His, and poly(6X)Lys), which drive the immobilization of the protein on the tailored material (agarose beads with different functionalities, gold nanorods, and silica nanoparticles). This system also enables the incorporation of azide-based amino acids into the nascent protein for its selective immobilization through copper-free click reactions. Finally, this technology has been expanded to the synthesis and immobilization of enzymes and antibody-binding proteins for the fabrication of functional biomaterials. This synthetic biological platform has emerged as a versatile tool for on-demand fabrication of therapeutic, diagnostic, and sensing biomaterials.
基于蛋白质的生物材料的制造是一个多步骤的艰巨且耗时的过程。在这项工作中,我们描述了一种便携式工具包,只需将DNA、固体材料和无细胞蛋白质合成(CFPS)系统混合,就能在一个容器中集成无细胞蛋白质合成和蛋白质固定化。我们构建了一组模块化质粒,将超折叠绿色荧光蛋白(sGFP)的N端与不同的肽标签(聚(6X)半胱氨酸、聚(6X)组氨酸和聚(6X)赖氨酸)融合,这些肽标签可驱动蛋白质固定在定制材料(具有不同功能的琼脂糖珠、金纳米棒和二氧化硅纳米颗粒)上。该系统还能将基于叠氮化物的氨基酸掺入新生蛋白质中,以便通过无铜点击反应进行选择性固定。最后,这项技术已扩展到酶和抗体结合蛋白的合成与固定,用于制造功能性生物材料。这个合成生物学平台已成为一种通用工具,可按需制造治疗性、诊断性和传感生物材料。