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检验3Q:1R“规则”:酵母外排SNARE复合体中离子“零”层的突变分析显示精氨酸并非必需。

Testing the 3Q:1R "rule": mutational analysis of the ionic "zero" layer in the yeast exocytic SNARE complex reveals no requirement for arginine.

作者信息

Katz L, Brennwald P

机构信息

Department of Cell Biology and Graduate Program in Cell Biology and Genetics, Weill Medical College of Cornell University, New York, New York 10021, USA.

出版信息

Mol Biol Cell. 2000 Nov;11(11):3849-58. doi: 10.1091/mbc.11.11.3849.

Abstract

The crystal structure of the synaptic SNARE complex reveals a parallel four-helix coiled-coil arrangement; buried in the hydrophobic core of the complex is an unusual ionic layer composed of three glutamines and one arginine, each provided by a separate alpha-helix. The presence of glutamine or arginine residues in this position is highly conserved across the t- and v-SNARE families, and it was recently suggested that a 3Q:1R ratio is likely to be a general feature common to all SNARE complexes. In this study, we have used genetic and biochemical assays to test this prediction with the yeast exocytic SNARE complex. We have determined that the relative position of Qs and Rs within the layer is not critical for biological activity and that Q-to-R substitutions in the layer reduce complex stability and result in lethal or conditional lethal growth defects. Surprisingly, SNARE complexes composed of four glutamines are fully functional for assembly in vitro and exocytic function in vivo. We conclude that the 3Q:1R layer composition is not required within the yeast exocytic SNARE complex because complexes containing four Q residues in the ionic layer appear by all criteria to be functionally equivalent. The unexpected flexibility of this layer suggests that there is no strict requirement for the 3Q:1R combination and that the SNARE complexes at other stages of transport may be composed entirely of Q-SNAREs or other noncanonical combinations.

摘要

突触SNARE复合体的晶体结构显示出一种平行的四螺旋卷曲螺旋排列;在复合体的疏水核心中埋藏着一个由三个谷氨酰胺和一个精氨酸组成的不寻常离子层,每个氨基酸残基由一条单独的α螺旋提供。该位置存在谷氨酰胺或精氨酸残基在t-SNARE和v- SNARE家族中高度保守,最近有人提出3Q:1R比例可能是所有SNARE复合体共有的普遍特征。在本研究中,我们使用遗传学和生化分析方法,以酵母外排SNARE复合体来检验这一预测。我们已经确定,该离子层内谷氨酰胺和精氨酸的相对位置对生物学活性并不关键,并且该离子层内谷氨酰胺到精氨酸的替换会降低复合体稳定性,并导致致死或条件致死的生长缺陷。令人惊讶的是,由四个谷氨酰胺组成的SNARE复合体在体外组装和体内外排功能方面完全具备功能。我们得出结论,酵母外排SNARE复合体内不需要3Q:1R的层组成,因为根据所有标准,离子层中含有四个谷氨酰胺残基的复合体在功能上似乎是等效的。该离子层出人意料的灵活性表明,对3Q:1R组合没有严格要求,并且转运其他阶段的SNARE复合体可能完全由Q-SNARE或其他非经典组合组成。

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