Phosphoprotein associated with glycosphingolipid-enriched microdomains (PAG), a novel ubiquitously expressed transmembrane adaptor protein, binds the protein tyrosine kinase csk and is involved in regulation of T cell activation
Language English Country United States Media print
Document type Journal Article, Research Support, Non-U.S. Gov't
PubMed
10790433
PubMed Central
PMC2213442
DOI
10.1084/jem.191.9.1591
Knihovny.cz E-resources
- MeSH
- Adaptor Proteins, Signal Transducing MeSH
- Lymphocyte Activation * MeSH
- CD3 Complex metabolism MeSH
- CSK Tyrosine-Protein Kinase MeSH
- Phosphoproteins genetics metabolism MeSH
- Glycosphingolipids metabolism MeSH
- Cloning, Molecular MeSH
- DNA, Complementary genetics MeSH
- Humans MeSH
- Membrane Proteins genetics metabolism MeSH
- Molecular Sequence Data MeSH
- Receptors, Antigen, T-Cell metabolism MeSH
- Amino Acid Sequence MeSH
- Signal Transduction MeSH
- src-Family Kinases MeSH
- T-Lymphocytes immunology MeSH
- Protein-Tyrosine Kinases metabolism MeSH
- Protein Binding MeSH
- Check Tag
- Humans MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Names of Substances
- Adaptor Proteins, Signal Transducing MeSH
- CD3 Complex MeSH
- CSK Tyrosine-Protein Kinase MeSH
- CSK protein, human MeSH Browser
- Phosphoproteins MeSH
- Glycosphingolipids MeSH
- DNA, Complementary MeSH
- Membrane Proteins MeSH
- PAG1 protein, human MeSH Browser
- Receptors, Antigen, T-Cell MeSH
- src-Family Kinases MeSH
- Protein-Tyrosine Kinases MeSH
According to a recently proposed hypothesis, initiation of signal transduction via immunoreceptors depends on interactions of the engaged immunoreceptor with glycosphingolipid-enriched membrane microdomains (GEMs). In this study, we describe a novel GEM-associated transmembrane adaptor protein, termed phosphoprotein associated with GEMs (PAG). PAG comprises a short extracellular domain of 16 amino acids and a 397-amino acid cytoplasmic tail containing ten tyrosine residues that are likely phosphorylated by Src family kinases. In lymphoid cell lines and in resting peripheral blood alpha/beta T cells, PAG is expressed as a constitutively tyrosine-phosphorylated protein and binds the major negative regulator of Src kinases, the tyrosine kinase Csk. After activation of peripheral blood alpha/beta T cells, PAG becomes rapidly dephosphorylated and dissociates from Csk. Expression of PAG in COS cells results in recruitment of endogenous Csk, altered Src kinase activity, and impaired phosphorylation of Src-specific substrates. Moreover, overexpression of PAG in Jurkat cells downregulates T cell receptor-mediated activation of the transcription factor nuclear factor of activated T cells. These findings collectively suggest that in the absence of external stimuli, the PAG-Csk complex transmits negative regulatory signals and thus may help to keep resting T cells in a quiescent state.
See more in PubMed
Tamir I., Cambier J.C. Antigen receptor signalingintegration of protein tyrosine kinase functions. Oncogene. 1998;17:1353–1364. PubMed
Simons K., Ikonen E. Functional rafts in cell membranes. Nature. 1997;387:569–572. PubMed
Xavier R., Seed B. Membrane compartmentation and the response to antigen. Curr. Opin. Immunol. 1999;11:265–269. PubMed
Brown D.A., London E. Structure and origin of ordered lipid domains in biological membranes. J. Membr. Biol. 1998;164:103–114. PubMed
Harder T., Simons K. Caveolae, DIGs, and the dynamics of sphingolipid-cholesterol microdomains. Curr. Opin. Cell Biol. 1997;9:534–542. PubMed
Schroeder R., London E., Brown D. Interactions between saturated acyl chains confer detergent resistance on lipids and glycosylphosphatidylinositol (GPI)-anchored proteinsGPI-anchored proteins in liposomes and cells show similar behavior. Proc. Natl. Acad. Sci. USA. 1994;91:12130–12134. PubMed PMC
Schroeder R.J., Ahmed S.N., Zhu Y., London E., Brown D.A. Cholesterol and sphingolipid enhance the Triton X-100 insolubility of glycosylphosphatidylinositol-anchored proteins by promoting the formation of detergent-insoluble ordered membrane domains. J. Biol. Chem. 1998;273:1150–1157. PubMed
Brown D.A., Rose J.K. Sorting of GPI-anchored proteins to glycolipid-enriched membrane subdomains during transport to the apical cell surface. Cell. 1992;68:533–544. PubMed
Cinek T., Hor̆ejs̆í V. The nature of large noncovalent complexes containing glycosyl-phosphatidylinositol-anchored membrane glycoproteins and protein tyrosine kinases. J. Immunol. 1992;149:2262–2270. PubMed
Dráberová L., Dráber P. Thy-1 glycoprotein and src-like protein-tyrosine kinase p53/p56lyn are associated in large detergent-resistant complexes in rat basophilic leukemia cells. Proc. Natl. Acad. Sci. USA. 1993;90:3611–3615. PubMed PMC
Hor̆ejs̆í V., Drbal K., Cebecauer M., C̆erný J., Brdic̆ka T., Angelisová P., Stockinger H. GPI-microdomainsa role in signalling via immunoreceptors. Immunol. Today. 1999;20:356–361. PubMed
Ilangumaran S., He H.-T., Hoessli D. Microdomains in lymphocyte signallingbeyond GPI-anchored proteins. Immunol. Today. 2000;21:2–7. PubMed
Zhang W., Sloan-Lancaster J., Kitchen J., Trible R.P., Samelson L.E. LATthe ZAP70 tyrosine kinase substrate that links T cell receptor to cellular activation. Cell. 1998;92:83–92. PubMed
Brdic̆ka T., C̆erný J., Hor̆ejs̆í V. T cell receptor signalling results in rapid tyrosine phosphorylation of the linker protein LAT present in detergent-resistant membrane microdomains. Biochem. Biophys. Res. Commun. 1998;248:356–360. PubMed
Zhang W., Trible R.P., Samelson L.E. LAT palmitoylationits essential role in membrane microdomain targeting and tyrosine phosphorylation during T cell activation. Immunity. 1998;9:239–246. PubMed
Rodgers W., Crise B., Rose J.K. Signals determining protein tyrosine kinase and glycosyl-phosphatidylinositol-anchored protein targeting to a glycolipid-enriched membrane fraction. Mol. Cell. Biol. 1994;14:5384–5391. PubMed PMC
Melkonian K.A., Ostermeyer A.G., Chen J.Z., Roth M.G., Brown D.A. Role of lipid modifications in targeting proteins to detergent-resistant membrane rafts. Many raft proteins are acylated, while few are prenylated. J. Biol. Chem. 1999;274:3910–3917. PubMed
Cinek T., Hilgert I., Hor̆ejs̆í V. An alternative way of CD4 and CD8 association with protein kinases of the Src family. Immunogenetics. 1995;41:110–116. PubMed
Veillette A., Bookman M.A., Horak E.M., Bolen J.B. The CD4 and CD8 T cell surface antigens are associated with the internal membrane tyrosine-protein kinase p56lck . Cell. 1988;55:301–308. PubMed
Bosselut R., Zhang W., Ashe J.M., Kopacz J.L., Samelson L.E., Singer A. Association of the adaptor molecule LAT with CD4 and CD8 coreceptors identifies a new coreceptor function in T cell receptor signal transduction. J. Exp. Med. 1999;190:1517–1526. PubMed PMC
Field K.A., Holowka D., Baird B. FcεRI-mediated recruitment of p53/56lyn to detergent-resistant membrane domains accompanies cellular signaling. Proc. Natl. Acad. Sci. USA. 1995;92:9201–9205. PubMed PMC
Xavier R., Brennan T., Li Q., McCormack C., Seed B. Membrane compartmentalization is required for efficient T cell activation. Immunity. 1998;8:723–732. PubMed
Montixi C., Langlet C., Bernard A.M., Thimonier J., Dubois C., Wurbel M.A., Chauvin J.P., Pierres M., He H.T. Engagement of T cell receptor triggers its recruitment to low-density detergent-insoluble membrane domains. EMBO (Eur. Mol. Biol. Organ.) J. 1998;17:5334–5348. PubMed PMC
Viola A., Schroeder S., Sakakibara Y., Lanzavecchia A. T lymphocyte costimulation mediated by reorganization of membrane microdomains. Science. 1999;283:680–682. PubMed
Cheng P.C., Dykstra M.L., Mitchell R.N., Pierce S.K. A role for lipid rafts in B cell antigen receptor signaling and antigen targeting. J. Exp. Med. 1999;190:1549–1560. PubMed PMC
Janes P.W., Ley S.C., Magee A.I. Aggregation of lipid rafts accompanies signaling via the T cell antigen receptor. J. Cell. Biol. 1999;147:447–461. PubMed PMC
Kosugi A., Saitoh S., Noda S., Yasuda K., Hayashi F., Ogata M., Hamaoka T. Translocation of tyrosine-phosphorylated TCRζ chain to glycolipid-enriched membrane domains upon T cell activation. Int. Immunol. 1999;11:1395–1401. PubMed
Sheets E.D., Holowka D., Baird B. Critical role for cholesterol in Lyn-mediated tyrosine phosphorylation of FcεRI and their association with detergent-resistant membranes. J. Cell Biol. 1999;145:877–887. PubMed PMC
Stulnig T.M., Berger M., Sigmund T., Raederstorff D., Stockinger H., Waldhausl W. Polyunsaturated fatty acids inhibit T cell signal transduction by modification of detergent-insoluble membrane domains. J. Cell Biol. 1998;143:637–644. PubMed PMC
Garnett D., Barclay A.N., Carmo A.M., Beyers A.D. The association of the protein tyrosine kinases p56lck and p60fyn with the glycosyl phosphatidylinositol-anchored proteins Thy-1 and CD48 in rat thymocytes is dependent on the state of cellular activation. Eur. J. Immunol. 1993;23:2540–2544. PubMed
Ilangumaran S., Arni S., van Echten-Deckert G., Borisch B., Hoessli D.C. Microdomain-dependent regulation of Lck and Fyn protein-tyrosine kinases in T lymphocyte plasma membranes. Mol. Biol. Cell. 1999;10:891–905. PubMed PMC
Marie-Cardine A., Bruyns E., Eckerskorn C., Kirchgessner H., Meuer S.C., Schraven B. Molecular cloning of SKAP55, a novel protein that associates with the protein tyrosine kinase p59fyn in human T-lymphocytes. J. Biol. Chem. 1997;272:16077–16080. PubMed
Marie-Cardine A., Kirchgessner H., Schraven B. Molecular alterations of the Fyn-complex occur as late events of human T cell activation. Eur. J. Immunol. 1999;29:1175–1187. PubMed
Schraven B., Bruyns E., Kirchgessner H., Meuer S., Marie-Cardine A. Identification and molecular characterisation of novel phosphoproteins associated with signaling receptor complexes in human T-lymphocytes. In: Yakura H., editor. Kinases and Phosphatases in Lymphocyte and Neuronal Signaling. Springer Verlag; Berlin: 1997. pp. 100–111.
Williams B.L., Schreiber K.L., Zhang W., Wange R.L., Samelson L.E., Leibson P.J., Abraham R.T. Genetic evidence for differential coupling of Syk family kinases to the T cell receptorreconstitution studies in a ZAP70-deficient Jurkat T-cell line. Mol. Cell. Biol. 1998;18:1388–1399. PubMed PMC
Goldsmith M.A., Weiss A. Isolation and characterization of a T-lymphocyte somatic mutant with altered signal transduction by the antigen receptor. Proc. Natl. Acad. Sci. USA. 1987;84:6879–6883. PubMed PMC
Schraven B., Ratnofsky S., Gaumont Y., Lindegger H., Kirchgessner H., Bruyns E., Moebius U., Meuer S.C. Identification of a novel dimeric phosphoprotein (PP29/30) associated with signaling receptors in human T lymphocytes and natural killer cells. J. Exp. Med. 1994;180:897–906. PubMed PMC
Bruyns E., Marie-Cardine A., Kirchgessner H., Sagolla K., Shevchenko A., Mann M., Autschbach F., Bensussan A., Meuer S., Schraven B. T cell receptor (TCR) interacting molecule (TRIM), a novel disulfide-linked dimer associated with the TCR-CD3-ζ complex, recruits intracellular signaling proteins to the plasma membrane. J. Exp. Med. 1998;188:561–575. PubMed PMC
Shevchenko A., Wilm M., Vorm O., Mann M. Mass spectrometric sequencing of proteins silver-stained polyacrylamide gels. Anal. Chem. 1996;68:850–858. PubMed
Wilm M., Mann M. Analytical properties of the nanoelectrospray ion source. Anal. Chem. 1996;68:1–8. PubMed
Wilm M., Shevchenko A., Houthaeve T., Breit S., Schweigerer L., Fotsis T., Mann M. Femtomole sequencing of proteins from polyacrylamide gels by nano-electrospray mass spectrometry. Nature. 1996;379:466–469. PubMed
Mizushima S., Nagata S. pEF-BOS, a powerful mammalian expression vector. Nucleic Acids Res. 1990;18:5322. PubMed PMC
C̆erný J., Stockinger H., Hor̆ejs̆í V. Noncovalent associations of T lymphocyte surface proteins. Eur. J. Immunol. 1996;26:2335–2343. PubMed
Marie-Cardine A., Kirchgessner H., Bruyns E., Shevchenko A., Mann M., Autschbach F., Ratnofsky S., Meuer S., Schraven B. SHP2-interacting transmembrane adaptor protein (SIT), a novel disulfide-linked dimer regulating human T cell activation. J. Exp. Med. 1999;189:1181–1194. PubMed PMC
Hanke J.H., Gardner J.P., Dow R.L., Changelian P.S., Brissette W.H., Weringer E.J., Pollok B.A., Connelly P.A. Discovery of a novel, potent, and Src family-selective tyrosine kinase inhibitor. Study of Lck- and FynT-dependent T cell activation. J. Biol. Chem. 1996;271:695–701. PubMed
Mayer B.J., Eck M.J. Minding your p's and q's. Curr. Biol. 1995;5:364–367. PubMed
Schraven B., Marie-Cardine A., Hubener C., Bruyns E., Ding I. Integration of receptor-mediated signals in T cells by transmembrane adaptor proteins. Immunol. Today. 1999;20:431–434. PubMed
Marie-Cardine A., Schraven B. Coupling the TCR to downstream signalling pathwaysthe role of cytoplasmic and transmembrane adaptor proteins. Cell. Signal. 1999;11:705–712. PubMed
Motto D.G., Ross S.E., Wu J., Hendricks-Taylor L.R., Koretzky G.A. Implication of the GRB2-associated phosphoprotein SLP-76 in T cell receptor–mediated interleukin 2 production. J. Exp. Med. 1996;183:1937–1943. PubMed PMC
Cloutier J.F., Veillette A. Association of inhibitory tyrosine protein kinase p50csk with protein tyrosine phosphatase PEP in T cells and other hemopoietic cells. EMBO (Eur. Mol. Biol. Organ.) J. 1996;15:4909–4918. PubMed PMC
Davidson D., Cloutier J.F., Gregorieff A., Veillette A. Inhibitory tyrosine protein kinase p50csk is associated with protein-tyrosine phosphatase PTP-PEST in hemopoietic and non-hemopoietic cells. J. Biol. Chem. 1997;272:23455–23462. PubMed
Okada M., Nada S., Yamanashi Y., Yamamoto T., Nakagawa H. CSKa protein-tyrosine kinase involved in regulation of src family kinases. J. Biol. Chem. 1991;266:24249–24252. PubMed
Bergman M., Mustelin T., Oetken C., Partanen J., Flint N.A., Amrein K.E., Autero M., Burn P., Alitalo K. The human p50csk tyrosine kinase phosphorylates p56lck at Tyr-505 and down regulates its catalytic activity. EMBO (Eur. Mol. Biol. Organ.) J. 1992;11:2919–2924. PubMed PMC
Chow L.M., Fournel M., Davidson D., Veillette A. Negative regulation of T cell receptor signalling by tyrosine protein kinase p50csk . Nature. 1993;365:156–159. PubMed
Nada S., Yagi T., Takeda H., Tokunaga T., Nakagawa H., Ikawa Y., Okada M., Aizawa S. Constitutive activation of Src family kinases in mouse embryos that lack Csk. Cell. 1993;73:1125–1135. PubMed
Imamoto A., Soriano P. Disruption of the csk gene, encoding a negative regulator of Src family tyrosine kinases, leads to neural tube defects and embryonic lethality in mice. Cell. 1993;73:1117–1124. PubMed
Schmedt C., Saijo K., Niidome T., Kuhn R., Aizawa S., Tarakhovsky A. Csk controls antigen receptor-mediated development and selection of T-lineage cells. Nature. 1998;394:901–904. PubMed
Cloutier J.F., Veillette A. Cooperative inhibition of T-cell antigen receptor signaling by a complex between a kinase and a phosphatase. J. Exp. Med. 1999;189:111–121. PubMed PMC
Gjorloff-Wingren A., Saxena M., Williams S., Hammi D., Mustelin T. Characterization of TCR-induced receptor-proximal signaling events negatively regulated by the protein tyrosine phosphatase PEP. Eur. J. Immunol. 1999;29:3845–3854. PubMed
Timms J.F., Swanson K.D., Marie-Cardine A., Raab M., Rudd C.E., Schraven B., Neel B.G. SHPS-1 is a scaffold for assembling distinct adhesion-regulated multi-protein complexes in macrophages. Curr. Biol. 1999;9:927–930. PubMed
Hunter A.J., Ottoson N., Boerth N., Koretzky G.A., Shimizu Y. A novel function for the SLAP-130/FYB adapter protein in β1 integrin signaling and T lymphocyte migration. J. Immunol. 2000;164:1143–1147. PubMed
Biemann K. Contributions of mass spectrometry to peptide and protein structure. Biomed. Environ. Mass Spectrom. 1988;16:99–111. PubMed
Mann M., Wilm M. Error-tolerant identification of peptides in sequence databases by peptide sequence tags. Anal. Chem. 1994;66:4390–4399. PubMed
Signal transduction and chemotaxis in mast cells
Lck, Membrane Microdomains, and TCR Triggering Machinery: Defining the New Rules of Engagement
The transmembrane region is responsible for targeting of adaptor protein LAX into "heavy rafts"
Transmembrane adaptor proteins in the high-affinity IgE receptor signaling
LIME: a new membrane Raft-associated adaptor protein involved in CD4 and CD8 coreceptor signaling