The long-term goal of this proposal is to understand how mitotic chromosome condensation (MCC) occurs and how it is regulated during the cell cycle. Whereas the first observations of MCC pre-date the identification of chromosomes as the carriers of genetic information, the molecular mechanisms underlying the changes of chromosome structure during condensation are still poorly understood and virtually nothing is known about its cell cycle regulation. To better unerstand MCC we will use a combination of S. Cerevisiae molecular-genetics and a Xenopus cell free chromosome condensation system. We will focus on the roles of Top1P (DNA topoisomerase I) and the Topoisomerase Related Functions, Tfr4p and Trf5p. Involvement in MCC represents a novel and previously unrecognized biological function of Top1p that we have discovered. We have shown that top1 trf4-ts and trf4-ts trf5 mutants of s. Cerevisiae are defective in MCC of the rDNA array, and that Trf4p associates with Smc2p, a protein required for MCC in single copy regions. The SMC family of proteins are related to Xenopus proteins that are required for MCC in viro, suggesting that the mechanism of MCC is evolutionarity conserved. The TRF4 gene family is also highly conserved evolutionarily and represents only the third class of proteins known to be required for MCC. It is our hypothesis that the Trf4p/Smc2p complex is associated directly with all condensed chromosomal regions and that Top1p is required to relieve the torsional stress associated with the condensation process. We further hypothesize that the other members of the Trf4p/Smc2p complex are required for chromosome condensation and that function of the complex is regulated during the cell cycle by the Cdc28p/Clb2p kinase. In this proposal, we present experiments designed to est htis hypothesis directly.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM046877-10
Application #
6179385
Study Section
Microbial Physiology and Genetics Subcommittee 2 (MBC)
Program Officer
Carter, Anthony D
Project Start
1992-02-01
Project End
2001-03-31
Budget Start
2000-04-01
Budget End
2001-03-31
Support Year
10
Fiscal Year
2000
Total Cost
$280,863
Indirect Cost
Name
University of Virginia
Department
Microbiology/Immun/Virology
Type
Schools of Medicine
DUNS #
001910777
City
Charlottesville
State
VA
Country
United States
Zip Code
22904
Heralde 3rd, Francisco M; Kantor, Yuri I; Astilla, Mary Anne Q et al. (2010) THE INDO-PACIFIC GEMMULA SPECIES IN THE SUBFAMILY TURRINAE: ASPECTS OF FIELD DISTRIBUTION, MOLECULAR PHYLOGENY, RADULAR ANATOMY AND FEEDING ECOLOGY. Philipp Sci Lett 3:
Herbert, Alan; Gerry, Norman P; McQueen, Matthew B et al. (2006) A common genetic variant is associated with adult and childhood obesity. Science 312:279-83
Castano, I B; Brzoska, P M; Sadoff, B U et al. (1996) Mitotic chromosome condensation in the rDNA requires TRF4 and DNA topoisomerase I in Saccharomyces cerevisiae. Genes Dev 10:2564-76
Castano, I B; Heath-Pagliuso, S; Sadoff, B U et al. (1996) A novel family of TRF (DNA topoisomerase I-related function) genes required for proper nuclear segregation. Nucleic Acids Res 24:2404-10
Zhu, Y; Peterson, C L; Christman, M F (1995) HPR1 encodes a global positive regulator of transcription in Saccharomyces cerevisiae. Mol Cell Biol 15:1698-708
Sadoff, B U; Heath-Pagliuso, S; Castano, I B et al. (1995) Isolation of mutants of Saccharomyces cerevisiae requiring DNA topoisomerase I. Genetics 141:465-79
Murnane, J P; Zhu, Y; Young, B R et al. (1994) Expression of the candidate A-T gene ATDC is not detectable in a human cell line with a normal response to ionizing radiation. Int J Radiat Biol 66:S77-84