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雷帕霉素哺乳动物靶标的内质网和高尔基体定位序列

Endoplasmic reticulum and Golgi localization sequences for mammalian target of rapamycin.

作者信息

Liu Xiangyu, Zheng X F Steven

机构信息

Cancer Institute of New Jersey, Department of Pharmacology, Robert Wood Johnson Medical School, Piscataway, NJ 08854, USA.

出版信息

Mol Biol Cell. 2007 Mar;18(3):1073-82. doi: 10.1091/mbc.e06-05-0406. Epub 2007 Jan 10.

Abstract

Mammalian target of rapamycin (mTOR) forms two complexes, mTORC1 and mTORC2, that play central roles in cell growth and functions. Only mTORC1 is directly inhibited by the immunosuppressive drug rapamycin. Despite recent progress in identifying new components and functions of the mTOR pathway, relatively little is known about the spatial arrangement of mTOR signaling and the underlying mechanisms. In a previous study, we showed that a large proportion of mTOR is localized to the endoplasmic reticulum (ER) and Golgi in many common cell lines. Here, we report the identification of an internal mTOR sequence that contains two HEAT (HT) repeats, HT18 and HT19, and two intervening interunit spacers (IUSs), IUS17 and IUS18, which is sufficient to target enhanced green fluorescent protein to the Golgi. Surprisingly, deletion of IUS17 from this Golgi localization sequence (GLS) converts it to an ER localization sequence (ELS). Deletion of HT19, a common element of both GLS and ELS from the full-length mTOR, causes delocalization of mTOR and inhibits the ability of mTOR to promote S6 phosphorylation. Moreover, overexpression of GLS and ELS inhibits both mTOR complexes. Together, our results reveal unusual ER- and Golgi-targeting sequences and suggest that anchoring to these organelles is important for the functions of mTOR complexes.

摘要

雷帕霉素哺乳动物靶蛋白(mTOR)形成两种复合物,即mTORC1和mTORC2,它们在细胞生长和功能中起核心作用。只有mTORC1会被免疫抑制药物雷帕霉素直接抑制。尽管最近在确定mTOR信号通路的新成分和功能方面取得了进展,但对于mTOR信号的空间排列及其潜在机制仍知之甚少。在先前的一项研究中,我们表明在许多常见细胞系中,很大一部分mTOR定位于内质网(ER)和高尔基体。在此,我们报告鉴定出一个内部mTOR序列,该序列包含两个HEAT(HT)重复序列,即HT18和HT19,以及两个中间的单元间隔序列(IUSs),即IUS17和IUS18,这足以将增强型绿色荧光蛋白靶向高尔基体。令人惊讶的是,从这个高尔基体定位序列(GLS)中删除IUS17会将其转化为内质网定位序列(ELS)。从全长mTOR中删除HT19(GLS和ELS的共同元件)会导致mTOR定位紊乱,并抑制mTOR促进S6磷酸化的能力。此外,GLS和ELS的过表达会抑制两种mTOR复合物。总之,我们的结果揭示了不同寻常的内质网和高尔基体靶向序列,并表明锚定到这些细胞器对mTOR复合物的功能很重要。

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