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J. Cell Sci., February 15, 2008; 121(4): 428 - 436.
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J. Cell Biol.Home page
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Katanin regulates dynamics of microtubules and biogenesis of motile cilia
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Home page
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Mol. Biol. Cell, January 1, 2006; 17(1): 485 - 497.
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Home page
J. Cell Biol.Home page
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Mutational analyses reveal a novel function of the nucleotide-binding domain of {gamma}-tubulin in the regulation of basal body biogenesis
J. Cell Biol., December 19, 2005; 171(6): 1035 - 1044.
[Abstract] [Full Text] [PDF]


Home page
Mol. Cell. Biol.Home page
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[Abstract] [Full Text] [PDF]


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Holoenzyme proteins required for the physiological assembly and activity of telomerase
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Home page
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Mol. Biol. Cell, August 1, 2003; 14(8): 3192 - 3207.
[Abstract] [Full Text] [PDF]


Home page
Mol. Cell. Biol.Home page
Q. Ren and M. A. Gorovsky
The Nonessential H2A N-Terminal Tail Can Function as an Essential Charge Patch on the H2A.Z Variant N-Terminal Tail
Mol. Cell. Biol., April 15, 2003; 23(8): 2778 - 2789.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
N. R. Bradshaw, N. D. Chilcoat, J. W. Verbsky, and A. P. Turkewitz
Proprotein Processing within Secretory Dense Core Granules of Tetrahymena thermophila
J. Biol. Chem., January 31, 2003; 278(6): 4087 - 4095.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Biol.Home page
Y. Shang, B. Li, and M. A. Gorovsky
Tetrahymena thermophila contains a conventional {gamma}-tubulin that is differentially required for the maintenance of different microtubule-organizing centers
J. Cell Biol., September 29, 2002; 158(7): 1195 - 1206.
[Full Text] [PDF]


Home page
Eukaryot CellHome page
A. Haddad, G. R. Bowman, and A. P. Turkewitz
New Class of Cargo Protein in Tetrahymena thermophila Dense Core Secretory Granules
Eukaryot. Cell, August 1, 2002; 1(4): 583 - 593.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
Y. Shang, X. Song, J. Bowen, R. Corstanje, Y. Gao, J. Gaertig, and M. A. Gorovsky
A robust inducible-repressible promoter greatly facilitates gene knockouts, conditional expression, and overexpression of homologous and heterologous genes in Tetrahymenathermophila
PNAS, March 19, 2002; 99(6): 3734 - 3739.
[Abstract] [Full Text] [PDF]


Home page
GeneticsHome page
T. C. Marsh, E. S. Cole, and D. P. Romero
The Transition From Conjugal Development to the First Vegetative Cell Division Is Dependent on RAD51 Expression in the Ciliate Tetrahymena thermophila
Genetics, April 1, 2001; 157(4): 1591 - 1598.
[Abstract] [Full Text]


Home page
GeneticsHome page
V. Praitis, E. Casey, D. Collar, and J. Austin
Creation of Low-Copy Integrated Transgenic Lines in Caenorhabditis elegans
Genetics, March 1, 2001; 157(3): 1217 - 1226.
[Abstract] [Full Text]


Home page
Nucleic Acids ResHome page
Q. Lu and E. Henderson
Two Tetrahymena G-DNA-binding proteins, TGP1 and TGP3, share novel motifs and may play a role in micronuclear division
Nucleic Acids Res., August 1, 2000; 28(15): 2993 - 3001.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Biol.Home page
L. Xia, B. Hai, Y. Gao, D. Burnette, R. Thazhath, J. Duan, M.-H. Bre, N. Levilliers, M. A. Gorovsky, and J. Gaertig
Polyglycylation of Tubulin Is Essential and Affects Cell Motility and Division in Tetrahymena thermophila
J. Cell Biol., May 29, 2000; 149(5): 1097 - 1106.
[Abstract] [Full Text] [PDF]


Home page
GeneticsHome page
T. C. Marsh, E. S. Cole, K. R. Stuart, C. Campbell, and D. P. Romero
RAD51 Is Required for Propagation of the Germinal Nucleus in Tetrahymena thermophila
Genetics, April 1, 2000; 154(4): 1587 - 1596.
[Abstract] [Full Text]


Home page
Genes Dev.Home page
M. A. Nikiforov, J. F. Smothers, M. A. Gorovsky, and C. D. Allis
Excision of micronuclear-specific DNA requires parental expression of Pdd2p andoccursindependentlyfromDNA replication in Tetrahymena thermophila
Genes & Dev., November 1, 1999; 13(21): 2852 - 2862.
[Abstract] [Full Text]


Home page
Mol. Biol. CellHome page
J. M. Brown, C. Marsala, R. Kosoy, and J. Gaertig
Kinesin-II Is Preferentially Targeted to Assembling Cilia and Is Required for Ciliogenesis and Normal Cytokinesis in Tetrahymena
Mol. Biol. Cell, October 1, 1999; 10(10): 3081 - 3096.
[Abstract] [Full Text]


Home page
Mol. Cell. Biol.Home page
H. Huang, J. F. Smothers, E. A. Wiley, and C. D. Allis
A Nonessential HP1-Like Protein Affects Starvation-Induced Assembly of Condensed Chromatin and Gene Expression in Macronuclei of Tetrahymena thermophila
Mol. Cell. Biol., May 1, 1999; 19(5): 3624 - 3634.
[Abstract] [Full Text] [PDF]


Home page
Mol. Biol. CellHome page
S. Lee, J. C. Wisniewski, W. L. Dentler, and D. J. Asai
Gene Knockouts Reveal Separate Functions for Two Cytoplasmic Dyneins in Tetrahymena thermophila
Mol. Biol. Cell, March 1, 1999; 10(3): 771 - 784.
[Abstract] [Full Text]


Home page
GeneticsHome page
S. L. Allen, M. I. Altschuler, P. J. Bruns, J. Cohen, F. P. Doerder, J. Gaertig, M. Gorovsky, E. Orias, and A. Turkewitz
Proposed Genetic Nomenclature Rules for Tetrahymena thermophila, Paramecium primaurelia and Paramecium tetraurelia
Genetics, May 1, 1998; 149(1): 459 - 462.
[Abstract] [Full Text] [PDF]


Home page
Genome ResHome page
E. Orias
Mapping the Germ-Line and Somatic Genomes of a Ciliated Protozoan, Tetrahymena thermophila
Genome Res., February 1, 1998; 8(2): 91 - 99.
[Abstract] [Full Text]


Home page
Mol. Biol. CellHome page
J. W. Verbsky and A. P. Turkewitz
Proteolytic Processing and Ca2+-binding Activity of Dense-Core Vesicle Polypeptides in Tetrahymena
Mol. Biol. Cell, February 1, 1998; 9(2): 497 - 511.
[Abstract] [Full Text]


Home page
J. Cell Sci.Home page
S. Melia, E. Cole, and A. Turkewitz
Mutational analysis of regulated exocytosis in Tetrahymena
J. Cell Sci., January 1, 1998; 111(1): 131 - 140.
[Abstract] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
J. C. Hutton
Tetrahymena: The key to the genetic analysis of the regulated pathway of polypeptide secretion?
PNAS, September 30, 1997; 94(20): 10490 - 10492.
[Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
A. Haddad and A. P. Turkewitz
Analysis of exocytosis mutants indicates close coupling between regulated secretion and transcription activation in Tetrahymena
PNAS, September 30, 1997; 94(20): 10675 - 10680.
[Abstract] [Full Text] [PDF]