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一种新型人 Pex5 蛋白与 Pex14 相互作用的位点对于基质蛋白进入过氧化物酶体至关重要。

A novel Pex14 protein-interacting site of human Pex5 is critical for matrix protein import into peroxisomes.

机构信息

From the Institut für Physiologische Chemie, Abteilung Systembiochemie, Ruhr-Universität Bochum, D-44780 Bochum.

出版信息

J Biol Chem. 2014 Jan 3;289(1):437-48. doi: 10.1074/jbc.M113.499707. Epub 2013 Nov 14.

Abstract

Protein import into peroxisomes relies on the import receptor Pex5, which recognizes proteins with a peroxisomal targeting signal 1 (PTS1) in the cytosol and directs them to a docking complex at the peroxisomal membrane. Receptor-cargo docking occurs at the membrane-associated protein Pex14. In human cells, this interaction is mediated by seven conserved diaromatic penta-peptide motifs (WXXX(F/Y) motifs) in the N-terminal half of Pex5 and the N-terminal domain of Pex14. A systematic screening of a Pex5 peptide library by ligand blot analysis revealed a novel Pex5-Pex14 interaction site of Pex5. The novel motif composes the sequence LVAEF with the evolutionarily conserved consensus sequence LVXEF. Replacement of the amino acid LVAEF sequence by alanines strongly affects matrix protein import into peroxisomes in vivo. The NMR structure of a complex of Pex5-(57-71) with the Pex14-N-terminal domain showed that the novel motif binds in a similar α-helical orientation as the WXXX(F/Y) motif but that the tryptophan pocket is now occupied by a leucine residue. Surface plasmon resonance analyses revealed 33 times faster dissociation rates for the LVXEF ligand when compared with a WXXX(F/Y) motif. Surprisingly, substitution of the novel motif with the higher affinity WXXX(F/Y) motif impairs protein import into peroxisomes. These data indicate that the distinct kinetic properties of the novel Pex14-binding site in Pex5 are important for processing of the peroxisomal targeting signal 1 receptor at the peroxisomal membrane. The novel Pex14-binding site may represent the initial tethering site of Pex5 from which the cargo-loaded receptor is further processed in a sequential manner.

摘要

蛋白输入过氧化物酶体依赖于输入受体 Pex5,它在细胞质中识别具有过氧化物酶体靶向信号 1(PTS1)的蛋白,并将其引导到过氧化物酶体膜的对接复合物。受体-货物对接发生在膜相关蛋白 Pex14 上。在人类细胞中,这种相互作用是由 Pex5 的 N 端半胱氨酸和 Pex14 的 N 端结构域中的七个保守的二芳基五肽基序(WXXX(F/Y)基序)介导的。通过配体印迹分析对 Pex5 肽文库进行系统筛选,揭示了 Pex5 与 Pex14 相互作用的新位点。新基序组成了 LVAEF 序列,具有进化保守的共有序列 LVXEF。用丙氨酸替换氨基酸 LVAEF 序列强烈影响体内基质蛋白向过氧化物酶体的输入。Pex5-(57-71)与 Pex14-N 端结构域复合物的 NMR 结构表明,新基序以与 WXXX(F/Y)基序相似的α-螺旋取向结合,但色氨酸口袋现在被亮氨酸残基占据。表面等离子体共振分析显示,与 WXXX(F/Y)基序相比,LVXEF 配体的解离速率快 33 倍。令人惊讶的是,用更高亲和力的 WXXX(F/Y)基序取代新基序会损害蛋白向过氧化物酶体的输入。这些数据表明,Pex5 中新型 Pex14 结合位点的独特动力学特性对于过氧化物酶体膜上 PTS1 受体的加工非常重要。新型 Pex14 结合位点可能代表 Pex5 的初始系泊位点,从该位点以顺序方式进一步处理货物装载的受体。

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