Back to Search Start Over

Using the Heat-Shock Response To Discover Anticancer Compounds that Target Protein Homeostasis

Authors :
Renee Kontnik
A. A. Leslie Gunatilaka
Ya Ming Xu
Susan Lindquist
Luke Whitesell
Sandro Santagata
E. M. Kithsiri Wijeratne
Santosh Kesari
Casey C. Perley
Hyoungtae Kwon
Jon Clardy
Christine Rooney
Source :
ACS Chemical Biology. 7:340-349
Publication Year :
2011
Publisher :
American Chemical Society (ACS), 2011.

Abstract

Unlike normal tissues, cancers experience profound alterations in protein homeostasis. Powerful innate adaptive mechanisms, especially the transcriptional response regulated by Heat Shock Factor 1 (HSF1), are activated in cancers to enable survival under these stressful conditions. Natural products that further tax these stress responses can overwhelm the ability to cope and could provide leads for the development of new, broadly effective anticancer drugs. To identify compounds that drive the HSF1-dependent stress response, we evaluated over 80,000 natural and synthetic compounds as well as partially purified natural product extracts using a reporter cell line optimized for high-throughput screening. Surprisingly, many of the strongly active compounds identified were natural products representing five diverse chemical classes (limonoids, curvularins, withanolides, celastraloids, and colletofragarones). All of these compounds share the same chemical motif, an α,β-unsaturated carbonyl functionality, with strong potential for thiol-reactivity. Despite the lack of a priori mechanistic requirements in our primary phenotypic screen, this motif was found to be necessary albeit not sufficient, for both heat-shock activation and inhibition of glioma tumor cell growth. Within the withanolide class, a promising therapeutic index for the compound withaferin A was demonstrated in vivo using a stringent orthotopic human glioma xenograft model in mice. Our findings reveal that diverse organisms elaborate structurally complex thiol-reactive metabolites that act on the stress responses of heterologous organisms including humans. From a chemical biology perspective, they define a robust approach for discovering candidate compounds that target the malignant phenotype by disrupting protein homeostasis.

Details

ISSN :
15548937 and 15548929
Volume :
7
Database :
OpenAIRE
Journal :
ACS Chemical Biology
Accession number :
edsair.doi.dedup.....486ae2279ac160964fccf0d1d984698e