The tubulin gene family in the flagellated unicellular eukaryote, Chlamydomonas reinhardtii, consists of two beta tubulin genes coding for identical proteins, and two alpha tubulin genes coding for slightly different products. Why this haploid organism maintains duplicate genes for the tubulins, and what rules are played by the genes in the life cycle, are questions to be addressed. The isolation of mutants resistant to anti-microtubule herbicides has identified both tubulin and non- tubulin genes that may be important for microtubule organization and function. Techniques of molecular biology and genetics will be used to understand the functions of these genes. Mutant lines resistant to anti- microtubule drugs will be characterized. Comparison of the distribution, stability, and assembly properties of microtubules in mutant and wild- type cells, in the presence and absence of the anti-microtubule drugs, will be obtained by using immunofluorescence techniques and by examining flagellar assembly and disassembly. Conditional-lethal mutants will be examined to determine the cell cycle stage at which they are blocked. The role of the genes in chromosome transmission will be examined. Genetic techniques will be used to identify other genes whose products interact with alpha tubulin in the cell. Isolation of genes identified by mutational analysis will be accomplished using transformation to complement Chlamydomonas mutations with cloned Chlamydomonas genes. Transposon mutagenesis will also be developed as a tool for gene isolation. Transformation will be used to identify cis-acting sequence elements important for transcriptional chemotherapeutic agents. The proposed research will provide insight into the action of anti-tubulin drugs, as well as the more generally important question of identifying genes involved in microtubule function in eukaryotic systems.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM031159-09
Application #
3279098
Study Section
Molecular Cytology Study Section (CTY)
Project Start
1982-07-01
Project End
1993-06-30
Budget Start
1991-07-01
Budget End
1993-06-30
Support Year
9
Fiscal Year
1991
Total Cost
Indirect Cost
Name
University of Minnesota Twin Cities
Department
Type
Schools of Arts and Sciences
DUNS #
168559177
City
Minneapolis
State
MN
Country
United States
Zip Code
55455
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Vassilev, A; Kimble, M; Silflow, C D et al. (1995) Identification of intrinsic dimer and overexpressed monomeric forms of gamma-tubulin in Sf9 cells infected with baculovirus containing the Chlamydomonas gamma-tubulin sequence. J Cell Sci 108 ( Pt 3):1083-92
James, S W; Silflow, C D; Stroom, P et al. (1993) A mutation in the alpha 1-tubulin gene of Chlamydomonas reinhardtii confers resistance to anti-microtubule herbicides. J Cell Sci 106 ( Pt 1):209-18
Conner, T W; Thompson, M D; Silflow, C D (1989) Structure of the three beta-tubulin-encoding genes of the unicellular alga, Polytomella agilis. Gene 84:345-58
Larkin, J C; Lefebvre, P A; Silflow, C D (1989) A gene essential for viability and flagellar regeneration maps to the uni linkage group of Chlamydomonas reinhardtii. Curr Genet 15:377-84
James, S W; Silflow, C D; Thompson, M D et al. (1989) Extragenic suppression and synthetic lethality among Chlamydomonas reinhardtii mutants resistant to anti-microtubule drugs. Genetics 122:567-77
Zimmer, W E; Schloss, J A; Silflow, C D et al. (1988) Structural organization, DNA sequence, and expression of the calmodulin gene. J Biol Chem 263:19370-83
James, S W; Ranum, L P; Silflow, C D et al. (1988) Mutants resistant to anti-microtubule herbicides map to a locus on the uni linkage group in Chlamydomonas reinhardtii. Genetics 118:141-7
Ranum, L P; Thompson, M D; Schloss, J A et al. (1988) Mapping flagellar genes in Chlamydomonas using restriction fragment length polymorphisms. Genetics 120:109-22