Cell-specific abnormal prenylation of Rab proteins in platelets and melanocytes of the gunmetal mouse
Qing Zhang
Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, NY, USA,
Search for more papers by this authorLijie Zhen
Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, NY, USA,
Search for more papers by this authorWei Li
Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, NY, USA,
Search for more papers by this authorEdward K. Novak
Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, NY, USA,
Search for more papers by this authorLucy M. Collinson
Imperial College of Science and Technology, London, UK, and
Search for more papers by this authorElliott K. Jang
Department of Pathology and Molecular Medicine, McMaster University, Hamilton, ON, Canada
Search for more papers by this authorRichard J. Haslam
Department of Pathology and Molecular Medicine, McMaster University, Hamilton, ON, Canada
Search for more papers by this authorRosemary W. Elliott
Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, NY, USA,
Search for more papers by this authorRichard T. Swank
Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, NY, USA,
Search for more papers by this authorQing Zhang
Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, NY, USA,
Search for more papers by this authorLijie Zhen
Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, NY, USA,
Search for more papers by this authorWei Li
Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, NY, USA,
Search for more papers by this authorEdward K. Novak
Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, NY, USA,
Search for more papers by this authorLucy M. Collinson
Imperial College of Science and Technology, London, UK, and
Search for more papers by this authorElliott K. Jang
Department of Pathology and Molecular Medicine, McMaster University, Hamilton, ON, Canada
Search for more papers by this authorRichard J. Haslam
Department of Pathology and Molecular Medicine, McMaster University, Hamilton, ON, Canada
Search for more papers by this authorRosemary W. Elliott
Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, NY, USA,
Search for more papers by this authorRichard T. Swank
Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, NY, USA,
Search for more papers by this authorAbstract
Summary. The mutant gunmetal mouse exhibits reduced rates of platelet synthesis, abnormalities of platelet alpha and dense granules and hypopigmentation. Several of these features resemble those of human alpha/delta platelet storage pool disease, grey platelet syndrome and Hermansky–Pudlak syndrome. Gunmetal mice have reduced levels of Rab geranylgeranyltransferase (RabGGTase), which adds lipophilic prenyl groups to the carboxyl terminus of Rab proteins. The degree of prenylation and the subcellular distribution of several Rab proteins were evaluated in mutant platelets, melanocytes and other tissues. Significant deficits in prenylation and membrane binding of most Rabs were observed in platelets and melanocytes. In contrast, minimal alterations in Rab prenylation were apparent in several other gunmetal tissues despite the fact that RabGGTase activity was equally diminished in these tissues. The mutant tissue-specific effects are probably due to increased concentrations of Rab proteins in platelets and melanocytes. These experiments show that Rab proteins are differentially sensitive to levels of RabGGTase activity and that normal platelet synthesis, platelet organelle function and normal pigmentation are highly sensitive to the degree of prenylation and membrane association of Rab proteins. Further, the tissue-specific effects of the gunmetal mutation suggest that RabGGTase is a potential target for therapy of thrombocytosis.
References
- Anant, J.S., Desnoyers, L., Machius, M., Demeler, B., Hansen, J.C., Westover, K.D., Deisenhofer, J. & Seabra, M.C. (1998) Mechanism of Rab geranylgeranylation: formation of the catalytic ternary complex. Biochemistry, 37, 12559 – 12569.
- Bahadoran, O., Aberdam, E., Mantoux, F., Busca, R., Bille, K., Yalman, N., De Saint-Basile, G., Casaroli-Marano, R., Ortonne, J.-P. & Ballotti, R. (2001) Rab27a: a key to melanosome transport in human melanocytes. Journal of Cell Biology, 152, 843 – 850.
- Bennett, D.C., Cooper, P.J., Dexter, T.J., Devlin, L.M., Heasman, J. & Nester, B. (1989) Cloned mouse melanocyte lines carrying the germline mutations albino and brown: complementation in culture. Development, 105, 379 – 385.
- Bordier, C. (1981) Phase separation of integral membrane proteins in Triton X-114 solution. Journal of Biological Chemistry, 256, 1604 – 1607.
- Casey, P.J. & Seabra, M.C. (1996) Protein prenyltransferases. Journal of Biological Chemistry, 271, 5289 – 5292.
- Chavrier, P. & Goud, B. (1999) The role of ARF and Rab GTPases in membrane transport. Current Opinion in Cellular Biology, 11, 466 – 475.
- Chen, D., Guo, J., Miki, T., Tachibana, M. & Gahl, W.A. (1997) Molecular cloning and characterization of Rab27a and Rab27b, novel human Rab proteins shared by melanocytes and platelets. Biochemical Molecular Medicine, 60, 27 – 37.
- Chen, D., Bernstein, A.M., Lemons, P.P. & Whiteheart, S.W. (2000) Molecular mechansims of platelet exocytosis: role of SNAP-23 and syntaxin 2 in dense core granule release. Blood, 95, 921 – 929.
- Dell'Angelica, E.C., Mullins, C., Caplan, S. & Bonifacino, J.S. (2000) Lysosome-related organelles. FASEB Journal, 14, 1265 – 1278.
- Desnoyers, L. & Seabra, M.C. (1998) Single prenyl-binding site on protein prenyl transferases. Proceedings of the National Academy of Science of the United States of America, 95, 12266 – 12270.
- Detter, J.C., Zhang, Q., Mules, E.H., Novak, E.K., Mishra, V.S., Li, W., McMurtrie, E.B., Tchernev, V.T., Wallace, M.R., Seabra, M.C., Swank, R.T. & Kingsmore, S.F. (2000) Rab geranylgeranyl transferase a mutation in the gunmetal mouse reduces Rab prenylation and platelet synthesis. Proceedings of the National Academy of Science of the United States of America, 97, 4144 – 4149.
- Fitzgerald, M.L. & Reed, G.L. (1999) Rab6 is phosphorylated in thrombin-activated platelets by a protein kinase C-dependent mechanism: effects on GTP/GDP binding and cellular distribution. Biochemical Journal, 342, 353 – 360.DOI: 10.1042/0264-6021:3420353
- Flaumenhaft, R., Croce, K., Chen, E., Furie, B. & Furie, B.C. (1999) Proteins of the exocytotic core complex mediate platelet α-granule secretion. Journal of Biological Chemistry, 274, 2492 – 2501.
- Gibson, A., Futter, C.E., Maxwell, S., Allchin, E.H., Shipman, M., Kraehenbuhl, J.-P., Domingo, D., Odorizzi, G., Trowbridge, I.S. & Hopkins, C.R. (1998) Sorting mechanisms regulating membrane protein traffic in the apical transcytotic pathway of polarized MDCK cells. Journal of Cell Biology, 143, 81 – 94.
- Green, A.R. (1999) The pathogenesis and management of essential thrombocythaemia. Haematologica, 84, 36 – 39.
- Hume, A., Collinson, L.M., Rapak, A., Gomes, A.Q., Hopkins, C.R. & Seabra, M.C. (2001) Rab27a regulates the peripheral distribution of melanosomes in melanocytes. Journal of Cell Biology, 152, 795 – 808.
- Italiano, J.E., Lecine, P., Shivdasani, R.A. & Hartwig, J.H. (1999) Blood platelets are assembled principally at the ends of proplatelet processes produced by differentiated megakaryocytes. Journal of Cell Biology, 147, 1299 – 1312.
- Jilkina, O. & Bhullar, R.P. (1996) Generation of antibodies specific for the RalA and RalB GTP-binding proteins and determination of their concentration and distribution in human platelets. Biochimica et Biophysica Acta, 1314, 157 – 166.
- Karniguian, A., Zahraoui, A. & Tavitian, A. (1993) Identification of small GTP-binding Rab proteins in human platelets: thrombin-induced phosphorylation of Rab3B, Rab6, and Rab8 proteins. Proceedings of the National Academy of Science of the United States of America, 90, 7647 – 7651.
- Lemons, P.P., Chen, D. & Whiteheart, S.W. (2000) Molecular mechanisms of platelet exocytosis: requirements for α-granule release. Biochemical Biophysical Research Communication, 267, 875 – 880.
- Manning, D.R. & Brass, L.F. (1991) The role of GTP-binding proteins in platelet activation. Thrombosis and Haemostasis, 66, 393 – 399.
- Martinez, O. & Goud, B. (1998) Rab proteins. Biochimica et Biophysica Acta, 1404, 101 – 112.
- Novick, P. & Zerial, M. (1997) The diversity of Rab proteins in vesicle transport. Current Opinion in Cellular Biology, 9, 496 – 504.
- Novak, E.K., Reddington, M., Zhen, L., Stenberg, P.E., Jackson, C.W., McGarry, M.P. & Swank, R.T. (1995) Inherited thrombocytopenia caused by reduced platelet production in mice with the gunmetal pigment gene mutation. Blood, 85, 1781 – 1789.
- Pfeffer, S.R. (1999) Transport-vesicle targeting: tethers before SNAREs. Nature Cell Biology, 1, E17 – E22.
- Polgar, J. & Reed, G.L. (1999) A critical role for N-ethylmaleimide-sensitive fusion protein (NSF) in platelet granule secretion. Blood, 94, 1313 – 1318.
- Richards-Smith, B., Novak, E.K., Jang, E.K., He, P., Haslam, R.J., Castle, D., Whiteheart, S.W. & Swank, R.T. (1999) Analyses of proteins involved in vesicular trafficking in platelets of mouse models of Hermansky–Pudlak Syndrome. Molecular Genetics and Metabolism, 68, 14 – 23.DOI: 10.1006/mgme.1999.2891
- Rouille, Y., Rohn, W. & Hoflack, B. (2000) Targeting of lysosomal proteins. Seminars in Cell and Developmental Biology, 11, 165 – 171.
- Sanford, J.C., Foster, L., Kapadia, Z. & Wessling-Resnick, M. (1995) Analysis of the stoichiometry of Rab protein prenylation. Analytical Biochemistry, 224, 547 – 556.DOI: 10.1006/abio.1995.1086
- Schimmoller, F., Simon, I. & Pfeffer, S.R. (1998) Rab GTPases, directors of vesicle docking. Journal of Biological Chemistry, 273, 22161 – 22164.
- Seabra, M.C. (1998) Membrane association and targeting of prenylated Ras-like GTPases. Cell Signal, 10, 167 – 172.
- Shirakawa, R., Yoshioka, A., Horiuchi, H., Nishioka, H., Tabuchi, A. & Kita, T. (2000) Small GTPase Rab4 regulates Ca2+ -induced alpha-granule secretion in platelets. Journal of Biological Chemistry, 275, 33844 – 33849.
- Shotelersuk, V. & Gahl, W.A. (1998) Hermansky–Pudlak Syndrome: models for intracellular vesicle formation. Molecular Genetics and Metabolism, 65, 85 – 96.DOI: 10.1006/mgme.1998.2729
- Smith, M.P., Cramer, E.M. & Savidge, G.F. (1997) Megakaryocytes and platelets in α-granule disorders. Bailliere's Clinical Haematology, 10, 125 – 148.
- Spritz, R.A. (1999) Multi-organellar disorders of pigmentation: tied up in traffic. Clinical Genetics, 55, 309 – 317.DOI: 10.1034/j.1399-0004.1999.550503.x
- Swank, R.T., Sweet, H.O., Davisson, M.T., Reddington, M. & Novak, E.K. (1991) Sandy: a new mouse model for platelet storage pool deficiency. Genetic Research, Cambridge, 58, 51 – 62.
- Swank, R.T., Jiang, S.Y., Reddington, M., Conway, J., Stephenson, D., McGarry, M.P. & Novak, E.K. (1993) Inherited abnormalities in platelet organelles and platelet formation and associated altered expression of low molecular weight guanosine triphosphate-binding proteins in the mouse pigment mutant gunmetal. Blood, 81, 2626 – 2635.
- Swank, R.T., Novak, E.K., McGarry, M.P., Rusiniak, M.E. & Feng, L. (1998) Mouse models of Hermansky–Pudlak syndrome: a review. Pigment Cell Research, 11, 60 – 80.
- Weide, T., Koster, M. & Barnekow, A. (1999) Inactive and active mutants of rab1b are not tightly integrated into target membranes. International Journal of Oncology, 15, 727 – 736.
- Weiss, H.J., Witte, L.D., Kaplan, K.L., Lages, B.A., Chernoff, A., Nossel, H.L., Goodman, D.S. & Baumgartner, H.R. (1979) Heterogeneity in storage pool deficiency: studies on granule-bound substances in 18 patients including variants deficient in α-granules, platelet factor 4, β-thromboglobulin and platelet- derived growth factor. Blood, 54, 1296 – 1319.
- Wilson, S.M., Yip, R., Swing, D.A., O'Sullivan, T.N., Zhang, Y., Novak, E.K., Swank, R.T., Russell, L.B., Copeland, N.G. & Jenkins, N.A. (2000) A mutation in Rab27a causes the vesicle transport defects observed in ashen mice. Proceedings of the National Academy of Science of the United States of America, 97, 7933 – 7938.
- Wu, X., Bowers, M.B., Copeland, N.G., Jenkins, N.A. & Hammer, J.A. (2001) Rab27a enables myosin Va-dependent melanosome capture by recruiting the myosin to the organelle. Journal of Cell Science, 114, 1091 – 1100.
- Zerial, M. & McBride, H. (2001) Rab proteins as membrane organizers. Nature Reviews: Molecular Cell Biology, 2, 107 – 117.