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A new role for signal sequences: Regulation of protein biogenesis at the endoplasmic reticulum.

机译:信号序列的新作用:内质网蛋白质生物发生的调控。

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摘要

The endoplasmic reticulum has evolved in eukaryotic cells in part to facilitate the sorting and processing of secretory and transmembrane proteins. These proteins are directed to the ER membrane by an interaction between a signal sequence and the signal recognition particle. Once at the membrane, the signal sequence of a nascent protein is recognized a second time by the translocation channel, which together with the associated proteins that regulate and influence translocation is known; as the translocon. Immediately after the onset of translocation the chain begins the complex process of folding, modification, and maturation in the ER lumen. As the first step in translocation, signal sequence recognition by the translocon has the potential to influence subsequent events of biogenesis, including integration, folding, and modification.;Analyzing early events in the trans location of model secretory proteins, we have found that the signal sequence of a nascent translocation substrate has the unexpected role of regulating the association between the ribosome and translocon. This role demands that signal sequences coevolve with their associated mature domains to effect proper regulation of the ribosome-translocon junction. The consequences of dysregulation of this step in biogenesis include a substantial translocation defect in the case of simple secretory proteins and the generation of altered topological forms in at least the case of prion protein biogenesis.;Studies on the maturation of secretory proteins have extended the role of the signal sequence to the regulation of protein maturation. We have found that signal sequence-translocon interactions dictate the pathway of maturation chosen by a nascent chain once its biogenesis has begun. Thus, the influence of a signal sequence can be manifested on a protein in the form of alterations in folding or modification long after the signal sequence itself has been removed.;Taken together, the work described here demonstrates that signal sequences have evolved a substrate-specific character to ensure the faithful biogenesis of secretory and transmembrane proteins.
机译:内质网已经在真核细胞中进化,部分是为了促进分泌和跨膜蛋白的分类和加工。这些蛋白质通过信号序列和信号识别颗粒之间的相互作用被导向ER膜。到达膜后,新生蛋白的信号序列会再次被易位通道识别,该通道与调节和影响易位的相关蛋白一起是已知的;作为翻译。易位发生后,该链立即开始在ER内腔中进行折叠,修饰和成熟的复杂过程。作为易位的第一步,通过转座子识别信号序列有可能影响后续的生物发生事件,包括整合,折叠和修饰。;分析模型分泌蛋白易位的早期事件,我们发现信号新生易位底物的序列具有调节核糖体和转位子之间的缔合的意想不到的作用。该角色要求信号序列与其相关的成熟域共同进化,以实现核糖体-跨膜连接的适当调节。在生物发生中这一步骤失调的后果包括在简单的分泌蛋白情况下发生大量易位缺陷,至少在病毒蛋白生物发生情况下发生了拓扑形式改变。分泌蛋白成熟的研究已扩大了作用信号序列对蛋白质成熟的调控。我们已经发现,一旦新生链的生物发生开始,信号序列-translocon相互作用就决定了新生链选择的成熟途径。因此,在去除信号序列本身很长时间之后,信号序列的影响就可以以折叠或修饰形式的变化形式表现在蛋白质上。总而言之,此处描述的工作表明信号序列已经进化出了底物,确保分泌和跨膜蛋白忠实生物发生的特定特征。

著录项

  • 作者

    Rutkowski, David Thomas.;

  • 作者单位

    University of California, San Francisco.;

  • 授予单位 University of California, San Francisco.;
  • 学科 Cellular biology.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 151 p.
  • 总页数 151
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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