Research on the cell cycle seeks to understand the signals that inhibit or stimulate cell division and the mechanisms that transmit these signals to cellular targets. Cell division is intimately connected to growth and development and is therefore important for developmental diseases, birth defects, chromosome damage, aging and regeneration, as well as diseases of proliferation, such as cancer and atherosclerosis. Recently work supported by this grant and other work in many laboratories has identified the central components that regulate cell division. Cell division is regulated by the accumulation of unstable proteins called cyclins, which activate protein kinases in the cdc2 family, which serve as master regulators of the cell cycle. We plan to extend this work in three directions: 1) To study the regulation of the stability of the cyclin proteins and the mechanism of rapid cyclin degradation at specific points in the cell cycle. Biochemical experiments in frog egg extracts will examine the signals and steps in cyclin degradation. Genetic and biochemical experiments in yeast are aimed at identifying new molecules in the cyclin destruction pathway. 2) To study the steps in the cell cycle regulated by the G1 cyclins and to study the posttranslational regulation of these proteins. Both biochemical and genetic work in yeast will be combined with transfection experiments in mammalian cells to understand what events are regulated by G1 cyclins and what regulates the activity of the cdc2 kinase. The expression of G1 cyclins in frog embryos will be related to the different cyclin proteins. 3) To study the feedback inhibition by DNA damage through the weel pathway. Through biochemical experiments and genetic experiments in yeast we will study the pathway by which the cell responds to DNA damage and inhibits the cell cycle through the weel kinase.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM039023-08
Application #
2179639
Study Section
Molecular Cytology Study Section (CTY)
Project Start
1993-09-01
Project End
1997-03-31
Budget Start
1994-04-01
Budget End
1995-03-31
Support Year
8
Fiscal Year
1994
Total Cost
Indirect Cost
Name
Harvard University
Department
Anatomy/Cell Biology
Type
Schools of Medicine
DUNS #
082359691
City
Boston
State
MA
Country
United States
Zip Code
02115
Wan, Lixin; Chen, Ming; Cao, Juxiang et al. (2017) The APC/C E3 Ligase Complex Activator FZR1 Restricts BRAF Oncogenic Function. Cancer Discov 7:424-441
Lee, Byung-Hoon; Lu, Ying; Prado, Miguel A et al. (2016) USP14 deubiquitinates proteasome-bound substrates that are ubiquitinated at multiple sites. Nature 532:398-401
Lu, Ying; Wang, Weiping; Kirschner, Marc W (2015) Specificity of the anaphase-promoting complex: a single-molecule study. Science 348:1248737
Lu, Ying; Lee, Byung-hoon; King, Randall W et al. (2015) Substrate degradation by the proteasome: a single-molecule kinetic analysis. Science 348:1250834
Wang, Weiping; Wu, Tao; Kirschner, Marc W (2014) The master cell cycle regulator APC-Cdc20 regulates ciliary length and disassembly of the primary cilium. Elife 3:e03083
Merbl, Yifat; Kirschner, Marc W (2014) Post-Translational Modification Profiling--a High-Content Assay for Identifying Protein Modifications in Mammalian Cellular Systems. Curr Protoc Protein Sci 77:27.8.1-13
Wan, Lixin; Tan, Mingjia; Yang, Jie et al. (2014) APC(Cdc20) suppresses apoptosis through targeting Bim for ubiquitination and destruction. Dev Cell 29:377-91
Zhao, Rui; Deibler, Richard W; Lerou, Paul H et al. (2014) A nontranscriptional role for Oct4 in the regulation of mitotic entry. Proc Natl Acad Sci U S A 111:15768-73
Thompson, Joel W; Nagel, Jane; Hoving, Sjouke et al. (2014) Quantitative Lys-?-Gly-Gly (diGly) proteomics coupled with inducible RNAi reveals ubiquitin-mediated proteolysis of DNA damage-inducible transcript 4 (DDIT4) by the E3 ligase HUWE1. J Biol Chem 289:28942-55
Fukushima, Hidefumi; Ogura, Kohei; Wan, Lixin et al. (2013) SCF-mediated Cdh1 degradation defines a negative feedback system that coordinates cell-cycle progression. Cell Rep 4:803-16

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