Search Results - "KARESS, R. E"

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  1. 1

    The ZW10 and Rough Deal checkpoint proteins function together in a large, evolutionarily conserved complex targeted to the kinetochore by Scaërou, F, Starr, D A, Piano, F, Papoulas, O, Karess, R E, Goldberg, M L

    Published in Journal of cell science (01-09-2001)
    “…The zeste-white 10 (zw10) and rough deal (rod) genes of Drosophila both encode kinetochore components, and mutations in either gene greatly increase the…”
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    Journal Article
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    The regulatory light chain of nonmuscle myosin is encoded by spaghetti-squash, a gene required for cytokinesis in Drosophila by Karess, R E, Chang, X J, Edwards, K A, Kulkarni, S, Aguilera, I, Kiehart, D P

    Published in Cell (28-06-1991)
    “…Two independent approaches to understanding the molecular mechanism of cytokinesis have converged on the gene spaghetti-squash (sqh). A genetic screen for…”
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    Journal Article
  4. 4

    Recruitment of Mad2 to the Kinetochore Requires the Rod/Zw10 Complex by Buffin, Eulalie, Lefebvre, Christophe, Huang, Junyong, Gagou, Mary Elisabeth, Karess, Roger E.

    Published in Current biology (10-05-2005)
    “…Compromising the activity of the spindle checkpoint permits mitotic exit in the presence of unattached kinetochores and, consequently, greatly increases the…”
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    Journal Article
  5. 5

    rough deal: A Gene Required for Proper Mitotic Segregation in Drosophila by Karess, Roger E., Glover, David M.

    Published in The Journal of cell biology (01-12-1989)
    “…We describe a genetic locus rough deal (rod) in Drosophila melanogaster, identified by mutations that interfere with the faithful transmission of chromosomes…”
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    Journal Article
  6. 6

    Structurally distinct genes for the surface protease of Leishmania mexicana are developmentally regulated by Medina-Acosta, E, Karess, R E, Russell, D G

    Published in Molecular and biochemical parasitology (01-01-1993)
    “…gp63 is a highly abundant glycosylphosphatidylinositol (GPI)-anchored membrane protein expressed in both the promastigote and the amastigote forms of…”
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    Journal Article
  7. 7

    Abnormal anaphase resolution (aar): a locus required for progression through mitosis in Drosophila by Gomes, R, Karess, R.E, Ohkura, R.E, Glover, D.M, Sunkel, C.E

    Published in Journal of cell science (01-02-1993)
    “…We describe a new mitotic locus of Drosophila melanogaster required for the progression through mitosis in the syncytial embryo and in late larval development…”
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    Journal Article
  8. 8

    Rough Deal and Zw10 are required for the metaphase checkpoint in Drosophila by Karess, Roger E, Basto, Renata, Gomes, Rui

    Published in Nature cell biology (01-12-2000)
    “…The metaphase-anaphase transition during mitosis is carefully regulated in order to assure high-fidelity transmission of genetic information to the daughter…”
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    Journal Article
  9. 9

    The promastigote surface protease (gp63) of Leishmania is expressed but differentially processed and localized in the amastigote stage by Medina-Acosta, E, Karess, R E, Schwartz, H, Russell, D G

    Published in Molecular and biochemical parasitology (01-12-1989)
    “…The expression, processing and localization of the promastigote surface glycoprotein, gp63, in the amastigote form of Leishmania mexicana was examined…”
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    Journal Article
  10. 10

    Genes encoding the major surface glycoprotein in Leishmania are tandemly linked at a single chromosomal locus and are constitutively transcribed by Button, L L, Russell, D G, Klein, H L, Medina-Acosta, E, Karess, R E, McMaster, W R

    Published in Molecular and biochemical parasitology (15-01-1989)
    “…The major surface glycoprotein of Leishmania, gp63, is encoded by a small multi-gene family of tandemly linked genes which map to a single chromosome. For…”
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    Journal Article
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    Characterization of the Transforming Gene of Fujinami Sarcoma Virus by Hanafusa, T., L.-H. Wang, Anderson, S. M., Karess, R. E., Hayward, W. S., Hanafusa, H.

    “…The src gene present in all avian sarcoma viruses is not present in the genome of Fujinami sarcoma virus, a potent sarcoma-inducing virus in chickens. Fujinami…”
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    Journal Article
  12. 12

    polo encodes a protein kinase homolog required for mitosis in Drosophila by Llamazares, S, Moreira, A, Tavares, A, Girdham, C, Spruce, B A, Gonzalez, C, Karess, R E, Glover, D M, Sunkel, C E

    Published in Genes & development (01-12-1991)
    “…We show that mutation in polo leads to a variety of abnormal mitoses in Drosophila larval neuroblasts. These include otherwise normal looking mitotic spindles…”
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  13. 13

    Cellular information in the genome of recovered avian sarcoma virus directs the synthesis of transforming protein by Karess, Roger E., Hayward, William S., Hanafusa, Hidesaburo

    “…Recovered avian sarcoma viruses, whose sarcomagenic information is largely derived from cellular sequences [Wang, L.-H., Halpern, C. C., Nadel, M. & Hanafusa,…”
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    Journal Article
  14. 14

    Mitosis in Drosophila development by GLOVER, D. M, ALPHEY, L, LLAMAZARES, S, MALDONADO-CODINA, M. G, RAFF, J. W, SAUNDERS, R, SUNKEL, C. E, WHITFIELD, W. G. F, AXTON, J. M, CHESHIRE, A, DALBY, B, FREEMAN, M, GIRDHAM, C, GONZALEZ, C, KARESS, R. E, LEIBOWITZ, M. H

    Published in Journal of Cell Science (01-01-1989)
    “…Many aspects of the mitotic cycle can take place independently in syncytial Drosophila embryos. Embryos from females homozygous for the mutation gnu undergo…”
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    Conference Proceeding Journal Article
  15. 15

    Role of p60src kinase activity in the induction of neuroretinal cell proliferation by rous sarcoma virus by Poirier, F, Calothy, G, Karess, R E, Erikson, E, Hanafusa, H

    Published in Journal of Virology (01-06-1982)
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  16. 16

    Analysis of the src gene of sarcoma viruses generated by recombination between transformation-defective mutants and quail cellular sequences by Wang, L H, Moscovici, C, Karess, R E, Hanafusa, H

    Published in Journal of Virology (01-11-1979)
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  17. 17

    Analysis of P transposable element functions in Drosophila by Karess, R E, Rubin, G M

    Published in Cell (01-01-1984)
    “…We have made a P-element derivative called Pc[ry], which carries the selectable marker gene rosy, but which acts like a nondefective, intact P element. It…”
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    Journal Article
  18. 18

    Tryptic peptide analysis of avian oncovirus gag and pol gene products by Rettenmier, C.W, Karess, R.E, Anderson, S.M, Hanafusa, H

    Published in Journal of Virology (01-10-1979)
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  19. 19

    A Genetic Approach to the Dissection of P Transposable Element Functions in Drosophila by Karess, R. E., Rubin, G. M.

    “…We have made a P element derivative that carries the selectable marker gene rosy, but which acts like a non-defective, intact P element. When introduced into…”
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    Journal Article
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    A maternal effect rough deal mutation suggests that multiple pathways regulate Drosophila RZZ kinetochore recruitment by Défachelles, Lénaïg, Hainline, Sarah G, Menant, Alexandra, Lee, Laura A, Karess, Roger E

    Published in Journal of cell science (01-08-2015)
    “…Proper kinetochore recruitment and regulation of dynein and the Mad1-Mad2 complex requires the Rod-Zw10-Zwilch (RZZ) complex. Here, we describe rod(Z3), a…”
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