| Literature DB >> 26634806 |
Bhalchandra Jadhav1,2, Michael McKenna2, Nicholas Johnson2, Stephen High2, Irmgard Sinning1, Martin R Pool2.
Abstract
Two distin<span class="Species">ct pathways deliver secretory proteins to the <span class="Gene">Sec61 protein translocase in the endoplasmic reticulum membrane. The canonical pathway requires the signal recognition particle (SRP) and its cognate receptor (SR), and targets ribosome-associated proteins to the Sec translocase. The SRP-independent pathway requires the Sec translocase-associated ER membrane protein Sec62 and can be uncoupled from translation. Here we show that SR switches translocons to SRP-dependent translocation by displacing Sec62. This activity localizes to the charged linker region between the longin and GTPase domains of SRα. Using truncation variants, crosslinking and translocation assays reveals two elements with distinct functions as follows: one rearranges the translocon, displacing Sec62 from Sec61. A second promotes ribosome binding and is conserved between all eukaryotes. These specific regions in SRα reprogramme the Sec translocon and facilitate recruitment of ribosome-nascent chain complexes. Overall, our study identifies an important function of SR, which mechanistically links two seemingly independent modes of translocation.Entities:
Mesh:
Substances:
Year: 2015 PMID: 26634806 PMCID: PMC4686813 DOI: 10.1038/ncomms10133
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Figure 1Sec62 interacts with the Sec61 complex in a ribosome-sensitive manner.
(a) Equivalent amounts of RM and PKRM (10 eq) were treated with either DMSO or BMH (10 μM) and then analysed by SDS–PAGE and western blot with anst-Sec61β antisera. Positions of major cross-link species are indicated. (b) EKRM (8 eq) were incubated with increasing amounts of purified high salt-washed canine ribosomes (as indicated) before crosslinking as in a. An equivalent amount of RM were treated similarly with BMH. Samples were then analysed by western blot with anti-Sec62 antibodies. The position of the major Sec62 × Sec61β cross-link species is indicated. Binding of ribosomes to EKRM was monitored in parallel by membrane-pelleting and analysis of the pellet fractions by SDS–PAGE and staining with Coomassie Brilliant Blue.
Figure 2SR binds to the translocon in close proximity to Sec61β.
(a) An overview of the SR constructs used in this study. (b) RM or EKRM (32 eq) were preincubated alone or with purified recombinant SRP receptor (7.5 μM), SRα/βΔN or a mutant SR, lacking the entire linker and NG domain of SRα (SRα126/βΔN). Samples were then analysed by BMH crosslinking followed by SDS–PAGE and western blot with Sec61β antibodies. (c) EKRM preincubated with and without SRα/βΔN, were treated, where indicated, with BMH (10 μM). Samples were then solubilized with Triton X-100 and high salt and then incubated with Ni-NTA beads to recover hisSRα together with any cross-link products that also contain hisSRα. Samples were then analysed by SDS–PAGE and western blot with Sec61β antibodies. (d) EKRM were treated with BMH (40 μM) before denaturing immuno-precipitation with either anti-SRα or a non-related antiserum (n.r.). An aliquot of the total reaction (5%) along with the immunoprecipitated material was analysed by SDS–PAGE and western blot with Sec61β antibodies. Positions of the cross-link products and the IgG heavy chains (h.c.) are indicated. (e) Proteoliposomes reconstituted with purified Sec61 alone or together with purified endogenous SR and signal peptidase complex (SPC) were treated with BMH (10 μM) and analysed as in a.
Figure 3SR can displace Sec62 from Sec61β.
(a) EKRM (32 eq) were preincubated with increasing concentrations of SRα/βΔN (750 nM, 1.5 μM, 3.75 μM and 7.5 μM), and then treated with BMH before analysis with SDS–PAGE and western blotting for Sec62. (b) EKRM were preincubated with either SRα/βΔN or SRα126/βΔN and then treated with BMH or bismaleimidoethane (BMOE) as indicated and analysed as in a. (c) EKRM were preincubated either alone or with SRα/βΔN in the absence of nucleotide or in the presence of either 10 mM GppNHp or 10 mM GDP, before crosslinking with BMH and analysis as in a. (d) EKRM were incubated with BSA, SRα/βΔN or SRα/βΔN harbouring the indicated linker mutations and then crosslinking was induced with BMH before analysis with SDS-PAGE and western blotting with anti-Sec62 antisera. The position of a novel cross-link observed between Sec62 and SRαΔlinker is indicated.
Figure 4The conserved charged region of the SRα linker domain is involved in ribosome binding.
(a) Indicated constructs of human SRα/βΔN were incubated in the presence and absence of salt-washed canine pancreatic ribosomes. Bound material was then recovered by sedimentation through a sucrose cushion and the supernatant (S) and pellet (P) fractions analysed by SDS–PAGE and staining with Coomassie Brilliant Blue. (b) Analysis as in a but with salt-washed ribosomes and SRα constructs from Chaetomium thermophilum (Ct).
Figure 5SR can inhibit translocation of Sec62-dependent precursors.
(a) Constructs of apelin, statherin, preprocecropin A (ppcec A) and cytochrome B5 (cyt B5) each with a C-terminal opsin tag containing two N-linked glycosylation sites (OPG2) were translated in vitro in rabbit reticulocyte lysate in the presence of [35S] methionine. Synthesis was terminated with puromycin to ensure release of all nascent chains from the ribosome. PKRM were then added in the presence of absence of SRα/βΔN (10 μM) and then incubated at 30 °C to permit targeting and translocation. Membranes were then reisolated through a sucrose cushion and analysed by SDS–PAGE and phosphorimaging. The position of unglycosylated non signal-sequence cleaved (*) and signal-sequence cleaved, twice glycosylated species (>) is indicated. (b) Preprocecropin A (ppCec A) and cytochrome B5 both with a C-terminal opsin tag (OPG2) as well as preprolactin (pPL) were translated in reticulocyte lysate in the presense [35S] methionine and microsomes that had been preincubated with either buffer or the different SR constructs. Processed and non-processed forms of each precursor were recovered by denaturing immuno-precipitation and analysed by SDS–PAGE and phosphorimaging. (c) Relative translocation efficiency was determined from the ratio of processed to non-processed form for each precursor (as in b). Translocation in the absence of recombinant SR was set to 100%. Data are the means of three independent experiments. Error bars represent s.e.m. Differences significant from the buffer control are indicated (one-way analysis of variance, *P<0.05, **P<0.01).
Figure 6Model depicting distinct roles of SRα linker domain in Sec62 displacement from Sec61 and ribosome recruitment.
During Sec62-dependent translocation cytosolic chaperones maintain the precursor in an unfolded translocation-competent state (upper panel). Precursors are delivered to the Sec translocon comprising Sec61 complex associated with Sec62 and Sec63. The latter are thought to interact with one another electrostatically via charged domain within the two proteins. Translocation is driven by ATP hydrolysis of the luminal Hsp70 chaperones. SRP–RNC complexes are unable to interact with the larger Sec translocon. During SRP-dependent translocation, SR can interact with the Sec translocase displacing Sec62 (lower panel). This requires the CBR of the SRα linker domain, which may compete with Sec62 for binding to the charged regions of Sec63 and/or Sec61. This displacement of Sec62 allows approach by RNC–SRP complexes, which can bind the SRP receptor via interactions of the NG domains of SRP54 and SRα and components of the ribosome with the charged RBR domain of the SRα linker region. Hence SR can preferentially recruit SRP–RNC complexes and then transfer them to the Sec61 translocon.