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首页> 外文期刊>Biomacromolecules >Bioinspired Silicification of Silica-Binding Peptide-Silk Protein Chimeras: Comparison of Chemically and Genetically Produced Proteins
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Bioinspired Silicification of Silica-Binding Peptide-Silk Protein Chimeras: Comparison of Chemically and Genetically Produced Proteins

机译:硅胶结合肽丝蛋白嵌合体的生物启发硅化:化学和遗传产生的蛋白的比较。

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Novel protein chimeras constituted of "silk" and a silica-binding peptide (KSLSRHDHIHHH) were synthesized by genetic or chemical approaches and their influence on silica-silk based chimera composite formation evaluated. Genetic chimeras were constructed from 6 or 15 repeats of the 32 amino acid consensus sequence of Nephila clavipes spider silk ([SGRGGLGGQG AGAAAAAGGA GQGGYGGLGSQG]_n) to which one silica binding peptide was fused at the N terminus. For the chemical chimera, 28 equiv of the silica binding peptide were chemically coupled to natural Botnbyx mori silk after modification of tyrosine groups by diazonium coupling and EDC/NHS activation of all acid groups. After silica formation under mild, biomaterial-compatible conditions, the effect of peptide addition on the properties of the silk, and chimeric silk-silica composite materials was explored. The composite biomaterial properties could be related to the extent of silica condensation and to the higher number of silica binding sites in the chemical chimera as compared with the genetically derived variants. In all cases, the structure of the protein/chimera in solution dictated the type of composite structure that formed with the silica deposition process having little effect on the secondary structural composition of the silk-based materials. Similarly to our study of genetic silk based chimeras containing the R5 peptide (SSKKSGSYSGSKGSKRRIL), the role of the chimeras (genetic and chemical) used in the present study resided more in aggregation and scaffolding than in the catalysis of condensation. The variables of peptide identity, silk construct (number of consensus repeats or silk source), and approach to synthesis (genetic or chemical) can be used to "tune" the properties of the composite materials formed and is a general approach that can be used to prepare a range of materials for biomedical and sensor-based applications.
机译:通过遗传或化学方法合成了由“丝绸”和二氧化硅结合肽(KSLSRHDHIHHH)组成的新型蛋白质嵌合体,并评估了它们对基于二氧化硅-丝绸的嵌合体复合物形成的影响。由Nephila clavipes蜘蛛丝([SGRGGLGGQG AGAAAAAGGA GQGGYGGLGSQG] _n)的32个氨基酸共有序列的6个或15个重复序列构建遗传嵌合体,在其N末端融合了一个二氧化硅结合肽。对于化学嵌合体,在通过重氮偶合和所有酸基团的EDC / NHS活化修饰酪氨酸基团之后,将28当量的二氧化硅结合肽化学偶联至天然的桑蚕丝。在温和的,与生物材料相容的条件下形成二氧化硅后,研究了添加肽对丝绸和嵌合的丝绸-二氧化硅复合材料的性能的影响。与遗传衍生的变体相比,复合生物材料的特性可能与二氧化硅缩合的程度以及化学嵌合体中较高数量的二氧化硅结合位点有关。在所有情况下,溶液中蛋白质/嵌合体的结构决定了通过二氧化硅沉积工艺形成的复合结构的类型,而对丝基材料的二级结构组成影响很小。与我们对包含R5肽的遗传丝基嵌合体(SSKKSGSYSGSKGSKRRIL)的研究相似,本研究中使用的嵌合体(遗传和化学)的作用更多地集中在聚集和支架中,而不是缩合催化中。肽身份,真丝构建体(共有重复序列或真丝来源的数量)和合成方法(遗传或化学)的变量可用于“调节”形成的复合材料的性能,并且是可使用的通用方法为生物医学和基于传感器的应用准备各种材料。

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