首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Structure and function in rhodopsin: Packing of the helices in the transmembrane domain and folding to a tertiary structure in the intradiscal domain are coupled
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Structure and function in rhodopsin: Packing of the helices in the transmembrane domain and folding to a tertiary structure in the intradiscal domain are coupled

机译:视紫红质的结构和功能:跨膜结构域中螺旋的堆积和在盘内结构域中折叠成三级结构

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摘要

A previous study of the retinitis pigmentosa mutation L125R and two designed mutations at this site, L125A and L125F, showed that these mutations cause partial or total misfolding of the opsins expressed in COS cells from the corresponding mutant opsin genes. We now report on expression and characterization of the opsins from the following retinitis pigmentosa mutants in the transmembrane domain of rhodopsin that correspond to six of the seven helices: G51A and G51V (helix A), G89D (helix B), A164V (helix D), H211P (helix E), P267L and P267R (helix F), and T297R (helix G). All the mutations caused partial misfolding of the opsins as observed by the UV/visible absorption characteristics and by separation of the expressed opsins into fractions that bound 11-cis-retinal to form the corresponding mutant rhodopsins and those that did not bind 11-cis-retinal. Further, all the mutant rhodopsins prepared from the above mutants, except for G51A, showed strikingly abnormal bleaching behavior with abnormal metarhodopsin II photointermediates. The results show that retinitis pigmentosa mutations in every one of the transmembrane helices can cause misfolding of the opsin. Therefore, on the basis of these and previous results, we conclude that defects in the packing of the transmembrane helices resulting from these mutations are relayed to the intradiscal domain, where they cause misfolding of the opsin by inducing the formation of a disulfide bond other than the native Cys-110—Cys-187 disulfide bond. Thus, there is coupling between packing of the helices in the transmembrane domain and folding to a tertiary structure in the intradiscal domain.
机译:先前对色素性视网膜炎突变L125R和此位置的两个设计突变L125A和L125F的研究表明,这些突变会导致COS细胞中相应视蛋白突变体基因表达的视蛋白部分或全部错折叠。我们现在报告视紫红质跨膜域中以下视网膜色素变性视网膜突变体视蛋白的表达和特征,这些突变体对应于七个螺旋中的六个:G51A和G51V(螺旋A),G89D(螺旋B),A164V(螺旋D) ,H211P(螺旋E),P267L和P267R(螺旋F)和T297R(螺旋G)。通过UV /可见光吸收特性以及将表达的视蛋白分离成结合11-顺-视黄醛以形成相应突变体视紫红质的部分和不结合11-顺式-视黄素的部分,所有突变均导致视蛋白部分错折叠。视网膜此外,由上述突变体制备的所有突变体视紫红质,除G51A外,均具有异常的视紫红质II光中间体显着异常的漂白行为。结果表明,每一个跨膜螺旋中的视网膜色素变性都可能引起视蛋白错误折叠。因此,根据这些结果和先前的结果,我们得出结论,由这些突变导致的跨膜螺旋堆积的缺陷被传递至盘内域,在该域​​中,它们通过诱导除二硫键以外的二硫键的形成而导致视蛋白的错误折叠。天然的Cys-110-Cys-187二硫键。因此,在跨膜结构域中的螺旋堆积与在盘内结构域中折叠成三级结构之间存在偶联。

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