Protein Transport Across the Bacterial Plasma Membrane by the Sec Pathway

被引:0
作者
Dries Smets
Maria S. Loos
Spyridoula Karamanou
Anastassios Economou
机构
[1] KU Leuven – University of Leuven,Laboratory of Molecular Bacteriology, Department of Microbiology and Immunology, Rega Institute for Medical Research
来源
The Protein Journal | 2019年 / 38卷
关键词
Protein secretion; SecYEG; Co-translational targeting; Post-translational targeting; SRP; SecA; Chaperone; Signal peptide; Protein folding;
D O I
暂无
中图分类号
学科分类号
摘要
More than a third of all bacterial polypeptides, comprising the ‘exportome’, are transported to extracytoplasmic locations. Most of the exportome is targeted and inserts into (‘membranome’) or crosses (‘secretome’) the plasma membrane. The membranome and secretome use distinct targeting signals and factors, and driving forces, but both use the ubiquitous and essential Sec translocase and its SecYEG protein-conducting channel. Membranome export is co-translational and uses highly hydrophobic N-terminal signal anchor sequences recognized by the signal recognition particle on the ribosome, that also targets C-tail anchor sequences. Translating ribosomes drive movement of these polypeptides through the lateral gate of SecY into the inner membrane. On the other hand, secretome export is post-translational and carries two types of targeting signals: cleavable N-terminal signal peptides and multiple short hydrophobic targeting signals in their mature domains. Secretome proteins remain translocation competent due to occupying loosely folded to completely non-folded states during targeting. This is accomplished mainly by the intrinsic properties of mature domains and assisted by signal peptides and/or chaperones. Secretome proteins bind to the dimeric SecA subunit of the translocase. SecA converts from a dimeric preprotein receptor to a monomeric ATPase motor and drives vectorial crossing of chains through SecY aided by the proton motive force. Signal peptides are removed by signal peptidases and translocated chains fold or follow subsequent trafficking.
引用
收藏
页码:262 / 273
页数:11
相关论文
共 126 条
  • [1] Castanie-Cornet MP(2014)undefined Biochim Biophys Acta 1843 1442-1456
  • [2] De Geyter J(2016)undefined Nat Microbiol 1 16107-1806
  • [3] Bednarska NG(2013)undefined Microbiology 159 1795-36
  • [4] Tsirigotaki A(2017)undefined Nat Rev Microbiol 15 21-851
  • [5] Blobel G(1975)undefined J Cell Biol 67 835-1508
  • [6] Paetzel M(2014)undefined Biochim Biophys Acta 1843 1497-3687
  • [7] Orfanoudaki G(2014)undefined Mol Cell Proteomics 13 3674-610
  • [8] Papanastasiou M(2013)undefined Mol Cell Proteomics 12 599-707 e5
  • [9] Tsirigotaki T(2018)undefined Structure 26 695-3388
  • [10] Tam PC(2005)undefined EMBO J 24 3380-44