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Incorporation of a Recombinant Biomineralization Fusion Protein into the Crystalline Lattice of Calcite

机译:重组生物矿化融合蛋白掺入方解石的晶格

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摘要

High-resolution synchrotron X~ray powder diffraction (XRD) combined with the Rietveld refinement method and confocal laser scanning microscopy (CLSM) were utilized in this study to elucidate the interaction between a recombinant biomineralization protein (perlucin) fused to green fluorescent protein (GFP) and synthetic calcite. Although recombinant perlucin is insoluble, its solubility was increased via fusion to the highly soluble GFP. We demonstrate that GFP-perlucin derivatives become incorporated into the calcite structure and induce concentration-dependent anisotropic lattice distortions along the host's c-axis. In contrast, GFP alone is hardly incorporated at all. The observed lattice distortions and peculiar microstructure of the crystals are comparable to those previously observed in biogenic calcite. Taking advantage of biotechnology to optimize individual protein properties, such as the solubility of an otherwise insoluble protein derivative, is a promising route toward the synthesis of new and improved biocomposite materials.
机译:本研究利用高分辨率同步加速器X射线粉末衍射(XRD),Rietveld精制方法和共聚焦激光扫描显微镜(CLSM)来阐明融合了绿色荧光蛋白(GFP)的重组生物矿化蛋白(perlucin)之间的相互作用。 )和方解石。尽管重组全白蛋白不溶,但通过与高度可溶的GFP融合增加了其溶解度。我们证明了GFP-perlucin衍生物被纳入方解石结构,并沿主机的c轴诱导浓度依赖性各向异性晶格畸变。相反,仅GFP几乎根本不被掺入。所观察到的晶体的晶格畸变和特殊的微观结构与先前在生物方解石中观察到的晶格畸变和独特的微观结构相当。利用生物技术来优化单个蛋白质特性,例如原本不溶的蛋白质衍生物的溶解度,是合成新的和改良的生物复合材料的有前途的途径。

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