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Updated: May 6, 2026

Intracellular Refolding Assay
Published on: January 24, 2012
Implication of heat shock factors in tumorigenesis: therapeutical potential
Aurelie De Thonel1, Valerie Mezger, Carmen Garrido
1INSERM U866, Dijon, France. valerie.mezger@univ-paris-diderot.fr.
Abstract:
Heat Shock Factors (HSF) form a family of transcription factors (four in mammals) which were named according to the discovery of their activation by a heat shock. HSFs trigger the expression of genes encoding Heat Shock Proteins (HSPs) that function as molecular chaperones, contributing to establish a cytoprotective state to various proteotoxic stresses and in pathological conditions. Increasing evidence indicates that this ancient transcriptional protective program acts genome-widely and performs unexpected functions in the absence of experimentally defined stress. Indeed, HSFs are able to re-shape cellular pathways controlling longevity, growth, metabolism and development. The most well studied HSF, HSF1, has been found at elevated levels in tumors with high metastatic potential and is associated with poor prognosis. This is partly explained by the above-mentioned cytoprotective (HSP-dependent) function that may enable cancer cells to adapt to the initial oncogenic stress and to support malignant transformation. Nevertheless, HSF1 operates as major multifaceted enhancers of tumorigenesis through, not only the induction of classical heat shock genes, but also of "non-classical" targets. Indeed, in cancer cells, HSF1 regulates genes involved in core cellular functions including proliferation, survival, migration, protein synthesis, signal transduction, and glucose metabolism, making HSF1 a very attractive target in cancer therapy. In this review, we describe the different physiological roles of HSFs as well as the recent discoveries in term of non-cogenic potential of these HSFs, more specifically associated to the activation of "non-classical" HSF target genes. We also present an update on the compounds with potent HSF1-modulating activity of potential interest as anti-cancer therapeutic agents.
Insights
Heat Shock Factors (HSFs) are key transcription factors involved in cellular protection and stress response. New research reveals their significant role in cancer progression and potential as therapeutic targets.
Area of Science:
- Molecular Biology
- Cellular Stress Response
- Cancer Biology
Background:
- Heat Shock Factors (HSFs) are transcription factors that activate Heat Shock Proteins (HSPs) for cellular protection against stress.
- HSFs have diverse physiological roles beyond stress response, influencing longevity, metabolism, and development.
- Elevated Heat Shock Factor 1 (HSF1) levels correlate with tumor progression and poor prognosis in various cancers.
Purpose of the Study:
- To review the physiological functions of HSFs.
- To explore the non-canonical roles of HSFs in cancer development.
- To provide an update on HSF1-modulating compounds as potential anti-cancer agents.
Main Methods:
- Literature review of HSFs and their roles in cellular pathways.
- Analysis of HSF1's involvement in cancer cell functions.
- Survey of therapeutic compounds targeting HSF1.
Main Results:
- HSFs regulate genome-wide protective programs and influence fundamental cellular processes.
- HSF1 promotes tumorigenesis by regulating both classical heat shock genes and non-classical targets involved in proliferation, migration, and metabolism.
- Numerous compounds targeting HSF1 activity show promise for cancer therapy.
Conclusions:
- HSFs, particularly HSF1, are critical regulators of cellular homeostasis with significant implications in cancer.
- HSF1's multifaceted roles in promoting cancer highlight its potential as a therapeutic target.
- Targeting HSF1 offers a promising strategy for developing novel anti-cancer treatments.
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