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Biophysical Analysis of the Endoplasmic Reticulum-Resident Chaperone/Heat Shock protein gp96/GR94 and Its Complex with peptide Antigen

机译:内质网驻留伴侣/热休克蛋白gp96 / GR94及其与肽抗原的复合物的生物物理分析

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Animals vaccinated with heat shock protein (HSP)—peptide complexes develop specific protective immunity against cancers from which the HSPs were originally isolated. This autologous specific immunity has been demonstrated using a number of HSP—peptide antigen complexes. A prototypical HSP-based cancer vaccine is the gp96—peptide antigen complex, which is currently undergoing human clinical trials. Here, we analyzed the structure of a recombinant wild-type and a mutant gp96 protein and their peptide complexes using a number of biophysical techniques. Gel filtration chromatography, dynamic light scattering, and equilibrium analytical ultracentrifugation demonstrated that both a wild-type gp96 and a gp96 mutant lacking a dimerization domain formed higher order structures. More detailed analysis using scanning transmission electron microscopy indicated that both the wild-type and dimerization deletion mutant gp96 protein were organized, unexpectedly, into large aggregates. Size distributions ranged from dimers to octamers and higher. Circular dichroism and intrinsic Trp fluorescence suggested that the gp96 dimerization domain deletion mutant protein was more compact than the wild-type gp96. A fluorescent peptide antigen was synthesized, and the peptide-binding properties of wild-type and the dimerization domain deletion mutant gp96 were studied. Fluorescence lifetime and anisotropy decay showed that the bound antigenic peptide was located in a hydrophobic pocket, with considerable free space for the rotation of the probe. Deletion of the dimerization domain affected the peptide-binding microenvironment, although peptide-binding affinity was reduced by only a small extent. Peptide—gp96 complexes were extremely stable, persisting for many days in the cold. The extraordinary stability of peptide—gp96 complexes and the plasticity of the peptide-binding pocket support the proposed relay of diverse peptides to MHC and/or other molecules via molecular recognition.
机译:接种了热休克蛋白(HSP)-肽复合物的动物对最初分离出HSP的癌症具有特异性的保护性免疫力。使用许多HSP-肽抗原复合物已经证明了这种自体特异性免疫。基于HSP的典型癌症疫苗是gp96-肽抗原复合物,目前正在人类临床试验中。在这里,我们使用多种生物物理技术分析了重组野生型和突变型gp96蛋白及其肽复合物的结构。凝胶过滤色谱,动态光散射和平衡分析超速离心表明,缺乏二聚化结构域的野生型gp96和gp96突变体均形成了更高阶的结构。使用扫描透射电子显微镜进行的更详细的分析表明,野生型和二聚化缺失突变体gp96蛋白都意外地组织成大的聚集体。尺寸分布范围从二聚物到八聚物甚至更高。圆二色性和固有Trp荧光表明,gp96二聚化结构域缺失突变蛋白比野生型gp96更紧密。合成了荧光肽抗原,并研究了野生型和二聚化结构域缺失突变体gp96的肽结合特性。荧光寿命和各向异性衰减表明结合的抗原肽位于疏水袋中,并具有用于探针旋转的相当大的自由空间。尽管肽结合亲和力仅小程度降低,但二聚化结构域的缺失影响了肽结合微环境。肽-gp96复合物非常稳定,在寒冷中可持续许多天。肽-gp96复合物的非凡稳定性和肽结合袋的可塑性支持通过分子识别将各种肽传递给MHC和/或其他分子。

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