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Monitoring the stability of crosslinked protein crystals biotemplates: A feasibility study

机译:监测交联蛋白晶体生物模板的稳定性:可行性研究

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Protein crystals, routinely prepared for the elucidation of protein 3D structures by X-ray crystallography, present an ordered and highly accurate 3D array of protein molecules. Inherent to the 3D arrangement of the protein molecules in the crystal is a complementary 3D array of voids made of interconnected cavities and exhibiting highly ordered porosity. The permeability of the porosity of chemically crosslinked enzyme protein crystals to low molecular weight solutes, was used for enzyme mediated organic synthesis and size exclusion chromatography. This permeability might be extended to explore new potential applications for protein crystals, for example, their use as bio-templates for the fabrication of novel, nano-structured composite materials. The quality of composites obtained from "filling" of the ordered voids in protein crystals and their potential applications will be strongly dependent upon an accurate preservation of the order in the original protein crystal 3D array during the "filling" process. Here we propose and demonstrate thefeasibility of monitoring the changes in 3D order of the protein array bya step-by-step molecular level monitoring of a model system for hydrogel bio-templating by glutaralclehyde crosslinked lysozyme crystals. This monitoring is based on step-by-step comparative analysis of data obtained from (i) X-ray crystallography: resolution, unit cell dimensions and B-factor values and (ii) fluorescence decay kinetics of ultra-fast laser activated dye, impregnated within these crystals. Our results demonstrated feasibility of the proposed monitoring approach and confirmed that the stabilized protein crystal template retained its 3D structure throughout the process. (c) 2006 Wiley Periodicals, Inc.
机译:常规为通过X射线晶体学阐明蛋白质3D结构而准备的蛋白质晶体,呈现出有序且高度精确的蛋白质分子3D阵列。晶体中蛋白质分子的3D排列固有的是互补的3D空隙阵列,这些空隙由相互连接的空腔构成,并显示出高度有序的孔隙度。化学交联的酶蛋白晶体的孔隙率对低分子量溶质的渗透性用于酶介导的有机合成和尺寸排阻色谱法。这种渗透性可能会扩展,以探索蛋白质晶体的新潜在应用,例如,将其用作制造新型纳米结构复合材料的生物模板。通过“填充”蛋白质晶体中有序空隙获得的复合材料的质量及其潜在应用将在很大程度上取决于“填充”过程中原始蛋白质晶体3D阵列中顺序的准确保留。在这里,我们提出并证明了通过戊二醛交联溶菌酶晶体水凝胶生物模板化模型系统的分子水平分步监测来监测蛋白质阵列3D顺序变化的可行性。该监控基于对(i)X射线晶体学获得的数据进行逐步比较分析的结果:分辨率,晶胞尺寸和B因子值,以及(ii)浸渍的超快激光活化染料的荧光衰减动力学在这些晶体中。我们的结果证明了所提出的监测方法的可行性,并证实了稳定的蛋白质晶体模板在整个过程中均保持其3D结构。 (c)2006年Wiley Periodicals,Inc.

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