Journal of Biological Chemistry · 2005 · 55 citations · 50 references
Proteinlipid InteractionProtein SecretionAmino AcidsProtein AssemblyMolecular BiologyEscherichia ColiMembrane ProteinsMembrane Protein YidcProtein FoldingDual FunctionMulti-protein AssemblyAtp HydrolysisBiochemistryMembrane BiologyProtein TransportStructural BiologyProtein BiosynthesisNatural SciencesCellular BiochemistryMedicine
The assembly of bacterial membrane proteins with large periplasmic loops is an intrinsically complex process because the SecY translocon has to coordinate the signal recognition particle-dependent targeting and integration of transmembrane domains with the SecA-dependent translocation of the periplasmic loop. The current model suggests that the ATP hydrolysis by SecA is required only if periplasmic loops larger than 30 amino acids have to be translocated. In agreement with this model, our data demonstrate that the signal recognition particle- and SecA-dependent multiple spanning membrane protein YidC becomes SecA-independent if the large periplasmic loop connecting transmembrane domains 1 and 2 is reduced to less than 30 amino acids. Strikingly, however, we were unable to render single spanning membrane proteins SecA-independent by reducing the length of their periplasmic loops. For these proteins, the complete assembly was always SecA-dependent even if the periplasmic loop was reduced to 13 amino acids. If, however, the 13-amino acid-long periplasmic loop was fused to a downstream transmembrane domain, SecA was no longer required for complete translocation. Although these data support the current model on the SecA dependence of multiple spanning membrane proteins, they indicate a novel function of SecA for the assembly of single spanning membrane proteins. This could suggest that single and multiple spanning membrane proteins are processed differently by the bacterial SecY translocon.
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X-ray structure of a protein-conducting channel
Bert van den Berg, William Clemons, Ian Collinson et al. · Nature · 2003 · 1.2K citations
X-ray Crystallography, Protein-conducting Channel, Natural Sciences +7
Recognition of transmembrane helices by the endoplasmic reticulum translocon
Tara Hessa, Hyun Kim, Karl Bihlmaier et al. · Nature · 2005 · 1K citations · Full text
Natural Sciences, Transmembrane Helices, Endocytic Pathway +7