Transcription of the human HSP70 gene is regulated during cell growth, in response to infection by certain DNA viruses and a plethora of conditions that cause physiological stress. Basal expression is modulated by serum stimulation and enhanced by many cellular and virus encoded oncoproteins that activate transcription. The level of basal HSP70 transcription varies among cell types and tissues and appears to be linked to a feedback loop that controls the activation of the stress-inducible response. One of the major questions on the stress response is to identify the biochemical sensor that responds to heat shock. To address this problem, we will continue our in vivo footprinting studies and in vitro activation of heat shock transcription factor (HSF) experiments to understand how physiological stress activates the DNA binding domain of HSF. We will also investigate the events involved in oligomerization and transcriptional activity of HSF and finally, we will study the events involved in attenuation of the heat shock transcriptional response. To obtain a detailed understanding of these events, we will dissect the binding and activation domains of two recently cloned mouse HSF genes, mHSF-1 that exhibits inducible sequence-specific DNA binding and mHSF-2 that exhibits constitutive DNA binding activity. We will overexpress the wild type and mutant factors to obtain a detailed biochemical analysis of HSF function in reconstituted transcription assays. The availability of cloned vertebrate heat shock and HSF genes will allow us to examine their expression during early mouse development and differentiation and to create transgenic mice which exhibit an altered stress response. This will be particularly important in the brain in which most cells types do not appear to have a stress response. Finally, we will investigate the role of the stress response in conditions of pathophysiology and disease including cancer, inflammation and aging.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM038109-07
Application #
3294168
Study Section
Molecular Cytology Study Section (CTY)
Project Start
1987-04-01
Project End
1996-03-31
Budget Start
1993-04-01
Budget End
1994-03-31
Support Year
7
Fiscal Year
1993
Total Cost
Indirect Cost
Name
Northwestern University at Chicago
Department
Type
Schools of Arts and Sciences
DUNS #
City
Evanston
State
IL
Country
United States
Zip Code
60201
Ciryam, Prajwal; Kundra, Rishika; Freer, Rosie et al. (2016) A transcriptional signature of Alzheimer's disease is associated with a metastable subproteome at risk for aggregation. Proc Natl Acad Sci U S A 113:4753-8
Labbadia, Johnathan; Morimoto, Richard I (2015) Repression of the Heat Shock Response Is a Programmed Event at the Onset of Reproduction. Mol Cell 59:639-50
Walther, Dirk M; Kasturi, Prasad; Zheng, Min et al. (2015) Widespread Proteome Remodeling and Aggregation in Aging C. elegans. Cell 161:919-32
Teixeira-Castro, Andreia; Jalles, Ana; Esteves, Sofia et al. (2015) Serotonergic signalling suppresses ataxin 3 aggregation and neurotoxicity in animal models of Machado-Joseph disease. Brain 138:3221-37
Nussbaum-Krammer, Carmen I; Neto, Mário F; Brielmann, Renée M et al. (2015) Investigating the spreading and toxicity of prion-like proteins using the metazoan model organism C. elegans. J Vis Exp :52321
Ciryam, Prajwal; Kundra, Rishika; Morimoto, Richard I et al. (2015) Supersaturation is a major driving force for protein aggregation in neurodegenerative diseases. Trends Pharmacol Sci 36:72-7
Labbadia, Johnathan; Morimoto, Richard I (2015) The biology of proteostasis in aging and disease. Annu Rev Biochem 84:435-64
Tatum, Marcus C; Ooi, Felicia K; Chikka, Madhusudana Rao et al. (2015) Neuronal serotonin release triggers the heat shock response in C. elegans in the absence of temperature increase. Curr Biol 25:163-174
Kirstein, Janine; Morito, Daisuke; Kakihana, Taichi et al. (2015) Proteotoxic stress and ageing triggers the loss of redox homeostasis across cellular compartments. EMBO J 34:2334-49
Nillegoda, Nadinath B; Kirstein, Janine; Szlachcic, Anna et al. (2015) Crucial HSP70 co-chaperone complex unlocks metazoan protein disaggregation. Nature 524:247-51

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