The cells of an organisms respond to mild temperature elevation (and many other forms of stress) by synthesizing a small group of highly conserved proteins called the heat-shock proteins (hsps). A good deal of indirect evidence suggests that these proteins provide protection from the toxic effects of heat, but little is known about their specific molecular functions. Recent work has shown that some of these proteins are induced during the normal course of development, a finding that suggests they may play important roles in normal cellular processes, as well as during exposure to stress. The experiments outlined in this proposal focus on the heat- shock response of the fruit fly, Drosophila melanogester. They address two major issues: what are the functions of the hsps, and how is their synthesis regulated? Specifically, we seek answers to the following: What features of the heat shock genes (in addition to the heat shock consensus elements) are required for proper transcriptional regulation? What is the effect of heat and of heat shock proteins on RNA processing? Which heat-shock proteins are involved in regulating the response and in conferring upon the cell resistance to high temperatures? With what molecules do hsps associate, and how do their associations relate to its cellular functions?

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
2R01GM025874-09A1
Application #
3273400
Study Section
Molecular Biology Study Section (MBY)
Project Start
1978-12-01
Project End
1992-06-30
Budget Start
1987-07-01
Budget End
1988-06-30
Support Year
9
Fiscal Year
1987
Total Cost
Indirect Cost
Name
University of Chicago
Department
Type
Schools of Medicine
DUNS #
225410919
City
Chicago
State
IL
Country
United States
Zip Code
60637
Kayatekin, Can; Amasino, Audra; Gaglia, Giorgio et al. (2018) Translocon Declogger Ste24 Protects against IAPP Oligomer-Induced Proteotoxicity. Cell 173:62-73.e9
Frederick, Kendra K; Michaelis, Vladimir K; Caporini, Marc A et al. (2017) Combining DNP NMR with segmental and specific labeling to study a yeast prion protein strain that is not parallel in-register. Proc Natl Acad Sci U S A 114:3642-3647
Frederick, Kendra K; Michaelis, Vladimir K; Corzilius, Björn et al. (2015) Sensitivity-enhanced NMR reveals alterations in protein structure by cellular milieus. Cell 163:620-8
Reymer, Anna; Frederick, Kendra K; Rocha, Sandra et al. (2014) Orientation of aromatic residues in amyloid cores: structural insights into prion fiber diversity. Proc Natl Acad Sci U S A 111:17158-63
Frederick, Kendra K; Debelouchina, Galia T; Kayatekin, Can et al. (2014) Distinct prion strains are defined by amyloid core structure and chaperone binding site dynamics. Chem Biol 21:295-305
Kayatekin, Can; Matlack, Kent E S; Hesse, William R et al. (2014) Prion-like proteins sequester and suppress the toxicity of huntingtin exon 1. Proc Natl Acad Sci U S A 111:12085-90
Lancaster, Alex K; Nutter-Upham, Andrew; Lindquist, Susan et al. (2014) PLAAC: a web and command-line application to identify proteins with prion-like amino acid composition. Bioinformatics 30:2501-2
Halfmann, Randal; Wright, Jessica R; Alberti, Simon et al. (2012) Prion formation by a yeast GLFG nucleoporin. Prion 6:391-9
Bryan Jr, Allen W; O'Donnell, Charles W; Menke, Matthew et al. (2012) STITCHER: Dynamic assembly of likely amyloid and prion ?-structures from secondary structure predictions. Proteins 80:410-20
Krishnan, Rajaraman; Goodman, Jessica L; Mukhopadhyay, Samrat et al. (2012) Conserved features of intermediates in amyloid assembly determine their benign or toxic states. Proc Natl Acad Sci U S A 109:11172-7

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