Home LiteratureArticle Details
PMID: 10525533 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Glycosylation can influence topogenesis of membrane proteins and reveals dynamic reorientation of nascent polypeptides within the translocon.

The Journal of cell biology ·Vol. 147 ·No. 2 ·1999-10-18 ·Pages 257-66

Goder V, Bieri C, Spiess M

Abstract

The topology of multispanning membrane proteins in the mammalian endoplasmic reticulum is thought to be dictated primarily by the first hydrophobic sequence. We analyzed the in vivo insertion of a series of chimeric model proteins containing two conflicting signal sequences, i.e., an NH(2)-terminal and an internal signal, each of which normally directs translocation of its COOH-terminal end. When the signals were separated by more than 60 residues, linear insertion with the second signal acting as a stop-transfer sequence was observed. With shorter spacers, an increasing fraction of proteins inserted with a translocated COOH terminus as dictated by the second signal. Whether this resulted from membrane targeting via the second signal was tested by measuring the targeting efficiency of NH(2)-terminal signals followed by polypeptides of different lengths. The results show that targeting is mediated predominantly by the first signal in a protein. Most importantly, we discovered that glycosylation within the spacer sequence affects protein orientation. This indicates that the nascent polypeptide can reorient within the translocation machinery, a process that is blocked by glycosylation. Thus, topogenesis of membrane proteins is a dynamic process in which topogenic information of closely spaced signal and transmembrane sequences is integrated.

MeSH Terms
Amino Acid Sequence Animals Binding Sites Biological Transport COS Cells Endoplasmic Reticulum/metabolism Glycosylation Membrane Proteins/genetics,metabolism Molecular Sequence Data Sequence Analysis
Chemicals
Membrane Proteins
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Goder V
Biozentrum, University of Basel, CH-4056 Basel, Switzerland.
Bieri C
Spiess M
References (48)
48 references, click to expand
  1. Signal sequences specify the targeting route to the endoplasmic reticulum membrane.
    J Cell Biol. 1996 Jul;134(2):269-78 PMID: 8707814
  2. Dual functions of the signal peptide in protein transfer across the membrane.
    Cell. 1985 Nov;43(1):351-60 PMID: 3907854
  3. Translocation of secretory proteins across the microsomal membrane occurs through an environment accessible to aqueous perturbants.
    Cell. 1985 Sep;42(2):497-505 PMID: 2992801
  4. The amino acid at the X position of an Asn-X-Ser sequon is an important determinant of N-linked core-glycosylation efficiency.
    J Biol Chem. 1996 Mar 15;271(11):6363-6 PMID: 8626433
  5. Functions of signal and signal-anchor sequences are determined by the balance between the hydrophobic segment and the N-terminal charge.
    Proc Natl Acad Sci U S A. 1992 Jan 1;89(1):16-9 PMID: 1729684
  6. Oligomeric rings of the Sec61p complex induced by ligands required for protein translocation.
    Cell. 1996 Nov 15;87(4):721-32 PMID: 8929540
  7. Topology of eukaryotic type II membrane proteins: importance of N-terminal positively charged residues flanking the hydrophobic domain.
    Cell. 1991 Feb 22;64(4):777-87 PMID: 1997206
  8. Signal sequence-dependent function of the TRAM protein during early phases of protein transport across the endoplasmic reticulum membrane.
    J Cell Biol. 1996 Jul;134(1):25-35 PMID: 8698819
  9. Peptides glycosylated in the endoplasmic reticulum of yeast are subsequently deglycosylated by a soluble peptide: N-glycanase activity.
    J Biol Chem. 1998 Aug 21;273(34):21526-30 PMID: 9705282
  10. Membrane protein biosynthesis - all sewn up?
    Trends Cell Biol. 1997 May;7(5):206-10 PMID: 17708946
  11. TRAM regulates the exposure of nascent secretory proteins to the cytosol during translocation into the endoplasmic reticulum.
    Cell. 1998 Mar 6;92(5):621-31 PMID: 9506517
  12. Replacement of insulin receptor tyrosine residues 1162 and 1163 compromises insulin-stimulated kinase activity and uptake of 2-deoxyglucose.
    Cell. 1986 Jun 6;45(5):721-32 PMID: 3518947
  13. Insertion of a multispanning membrane protein occurs sequentially and requires only one signal sequence.
    Cell. 1988 Oct 7;55(1):61-70 PMID: 2844410
  14. Ribonucleoparticle-independent transport of proteins into mammalian microsomes.
    J Bioenerg Biomembr. 1990 Dec;22(6):711-23 PMID: 2092035
  15. Transport route for synaptobrevin via a novel pathway of insertion into the endoplasmic reticulum membrane.
    EMBO J. 1995 Jan 16;14(2):217-23 PMID: 7835332
  16. Molecular mechanism of membrane protein integration into the endoplasmic reticulum.
    Cell. 1997 May 16;89(4):523-33 PMID: 9160744
  17. Ubiquitin-assisted dissection of protein transport across membranes.
    EMBO J. 1994 Jun 1;13(11):2686-98 PMID: 8013467
  18. Control of topology and mode of assembly of a polytopic membrane protein by positively charged residues.
    Nature. 1989 Oct 5;341(6241):456-8 PMID: 2677744
  19. Cell-surface expression of influenza haemagglutinin from a cloned DNA copy of the RNA gene.
    Nature. 1981 Oct 22;293(5834):620-5 PMID: 6270568
  20. The role of molecular chaperones in protein transport into the mammalian endoplasmic reticulum.
    Biol Chem. 1998 Mar;379(3):275-82 PMID: 9563822
  21. Intracellular protein topogenesis.
    Proc Natl Acad Sci U S A. 1980 Mar;77(3):1496-500 PMID: 6929499
  22. The role of the hydrophobic domain in orienting natural signal sequences within the ER membrane.
    Exp Cell Res. 1998 May 25;241(1):181-5 PMID: 9633526
  23. Multiple determinants direct the orientation of signal-anchor proteins: the topogenic role of the hydrophobic signal domain.
    J Cell Biol. 1997 May 5;137(3):555-62 PMID: 9151664
  24. Synthesis of preprolactin and conversion to prolactin in intact cells and a cell-free system.
    J Biol Chem. 1978 Sep 25;253(18):6315-8 PMID: 681354
  25. Sequence of human asialoglycoprotein receptor cDNA. An internal signal sequence for membrane insertion.
    J Biol Chem. 1985 Feb 25;260(4):1979-82 PMID: 2982798
  26. Protein translocation into proteoliposomes reconstituted from purified components of the endoplasmic reticulum membrane.
    Cell. 1993 Nov 19;75(4):615-30 PMID: 8242738
  27. Predicting the orientation of eukaryotic membrane-spanning proteins.
    Proc Natl Acad Sci U S A. 1989 Aug;86(15):5786-90 PMID: 2762295
  28. BiP acts as a molecular ratchet during posttranslational transport of prepro-alpha factor across the ER membrane.
    Cell. 1999 May 28;97(5):553-64 PMID: 10367885
  29. Analysis of protein topology in the endoplasmic reticulum.
    Methods Cell Biol. 1991;34:287-302 PMID: 1943805
  30. The role of the N region in signal sequence and signal-anchor function.
    J Biol Chem. 1992 Apr 15;267(11):7761-9 PMID: 1560010
  31. Transmembrane protein insertion orientation in yeast depends on the charge difference across transmembrane segments, their total hydrophobicity, and its distribution.
    J Biol Chem. 1998 Sep 18;273(38):24963-71 PMID: 9733804
  32. Sec61p serves multiple roles in secretory precursor binding and translocation into the endoplasmic reticulum membrane.
    Mol Biol Cell. 1998 Dec;9(12):3455-73 PMID: 9843581
  33. Synchronised transmembrane insertion and glycosylation of a nascent membrane protein.
    Nature. 1977 Oct 27;269(5631):775-80 PMID: 200844
  34. Pre-proparathyroid hormone. Evidence for an early biosynthetic precursor of proparathyroid hormone.
    J Biol Chem. 1976 Jul 10;251(13):3893-9 PMID: 932012
  35. Structural requirements for membrane assembly of proteins spanning the membrane several times.
    J Cell Biol. 1989 Nov;109(5):2013-22 PMID: 2808519
  36. The protein-conducting channel in the membrane of the endoplasmic reticulum is open laterally toward the lipid bilayer.
    Cell. 1995 Apr 21;81(2):207-14 PMID: 7736572
  37. Transmembrane orientation of signal-anchor proteins is affected by the folding state but not the size of the N-terminal domain.
    EMBO J. 1995 Dec 15;14(24):6311-7 PMID: 8557050
  38. Posttranslational protein transport in yeast reconstituted with a purified complex of Sec proteins and Kar2p.
    Cell. 1995 May 19;81(4):561-70 PMID: 7758110
  39. Testing the charge difference hypothesis for the assembly of a eucaryotic multispanning membrane protein.
    J Biol Chem. 1998 Sep 25;273(39):25203-8 PMID: 9737982
  40. Heads or tails--what determines the orientation of proteins in the membrane.
    FEBS Lett. 1995 Aug 1;369(1):76-9 PMID: 7641889
  41. Signal sequence recognition in cotranslational translocation by protein components of the endoplasmic reticulum membrane.
    J Cell Biol. 1998 Jul 27;142(2):355-64 PMID: 9679136
  42. Topological rules for membrane protein assembly in eukaryotic cells.
    J Biol Chem. 1997 Mar 7;272(10):6119-27 PMID: 9045622
  43. Sorting of invertase signal peptide mutants in yeast dependent and independent on the signal-recognition particle.
    Eur J Biochem. 1998 Feb 15;252(1):16-24 PMID: 9523707
  44. BiP and Sec63p are required for both co- and posttranslational protein translocation into the yeast endoplasmic reticulum.
    Proc Natl Acad Sci U S A. 1995 Oct 10;92(21):9643-6 PMID: 7568189
  45. Signal sequence recognition and protein targeting to the endoplasmic reticulum membrane.
    Annu Rev Cell Biol. 1994;10:87-119 PMID: 7888184
  46. Charged residues are major determinants of the transmembrane orientation of a signal-anchor sequence.
    J Biol Chem. 1991 Jan 15;266(2):973-8 PMID: 1985975
  47. The aqueous pore through the translocon has a diameter of 40-60 A during cotranslational protein translocation at the ER membrane.
    Cell. 1997 May 16;89(4):535-44 PMID: 9160745
  48. Biosynthetic transport of the asialoglycoprotein receptor H1 to the cell surface occurs via endosomes.
    Proc Natl Acad Sci U S A. 1995 Oct 24;92(22):10109-13 PMID: 7479735
Article Info
Journal
The Journal of cell biology
Abbr.
J Cell Biol
ISSN
0021-9525
Published
1999-10-18
Pages
257-66
Language
English
Region
United States
NLM ID
0375356
PMCID
PMC2174215
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com