Related Experiment Video
Updated: May 1, 2026

Extraction and Visualization of Protein Aggregates after Treatment of Escherichia coli with a Proteotoxic Stressor
Published on: June 29, 2021
Molecular stress-inducing compounds increase osteoclast formation in a heat shock factor 1 protein-dependent manner
Ryan C Chai1, Michelle M Kouspou, Benjamin J Lang
1From the Department of Biochemistry and Molecular Biology, Monash University, Clayton, Victoria 3800, Australia.
Abstract:
Many anticancer therapeutic agents cause bone loss, which increases the risk of fractures that severely reduce quality of life. Thus, in drug development, it is critical to identify and understand such effects. Anticancer therapeutic and HSP90 inhibitor 17-(allylamino)-17-demethoxygeldanamycin (17-AAG) causes bone loss by increasing osteoclast formation, but the mechanism underlying this is not understood. 17-AAG activates heat shock factor 1 (Hsf1), the master transcriptional regulator of heat shock/cell stress responses, which may be involved in this negative action of 17-AAG upon bone. Using mouse bone marrow and RAW264.7 osteoclast differentiation models we found that HSP90 inhibitors that induced a heat shock response also enhanced osteoclast formation, whereas HSP90 inhibitors that did not (including coumermycin A1 and novobiocin) did not affect osteoclast formation. Pharmacological inhibition or shRNAmir knockdown of Hsf1 in RAW264.7 cells as well as the use of Hsf1 null mouse bone marrow cells demonstrated that 17-AAG-enhanced osteoclast formation was Hsf1-dependent. Moreover, ectopic overexpression of Hsf1 enhanced 17-AAG effects upon osteoclast formation. Consistent with these findings, protein levels of the essential osteoclast transcription factor microphthalmia-associated transcription factor were increased by 17-AAG in an Hsf1-dependent manner. In addition to HSP90 inhibitors, we also identified that other agents that induced cellular stress, such as ethanol, doxorubicin, and methotrexate, also directly increased osteoclast formation, potentially in an Hsf1-dependent manner. These results, therefore, indicate that cellular stress can enhance osteoclast differentiation via Hsf1-dependent mechanisms and may significantly contribute to pathological and therapeutic related bone loss.
Insights
Cellular stress, including from anticancer drugs, can cause bone loss by increasing osteoclast formation through heat shock factor 1 (Hsf1). This mechanism is critical for understanding and mitigating drug-induced bone damage.
Area of Science:
- Bone biology
- Pharmacology
- Cellular stress response
Background:
- Anticancer drugs can cause bone loss, increasing fracture risk and reducing quality of life.
- The heat shock protein 90 (HSP90) inhibitor 17-(allylamino)-17-demethoxygeldanamycin (17-AAG) promotes bone loss by enhancing osteoclast formation, but the underlying mechanism is unclear.
- Heat shock factor 1 (Hsf1) is activated by 17-AAG and regulates cellular stress responses, suggesting a potential role in 17-AAG-induced bone loss.
Purpose of the Study:
- To investigate the mechanism by which 17-AAG causes bone loss.
- To determine the role of Hsf1 in 17-AAG-induced osteoclast formation.
- To explore whether other cellular stressors also impact osteoclast differentiation via Hsf1.
Main Methods:
- Utilized mouse bone marrow and RAW264.7 cell models for osteoclast differentiation.
- Employed pharmacological inhibition and shRNA knockdown of Hsf1.
- Analyzed Hsf1 null mouse bone marrow cells and assessed protein levels of microphthalmia-associated transcription factor.
Main Results:
- HSP90 inhibitors inducing a heat shock response enhanced osteoclast formation; those that did not, did not affect it.
- 17-AAG-enhanced osteoclast formation was dependent on Hsf1, as inhibition or knockdown of Hsf1 blocked the effect.
- Overexpression of Hsf1 potentiated 17-AAG's effect on osteoclast formation.
- Ethanol, doxorubicin, and methotrexate also increased osteoclast formation, potentially via Hsf1-dependent pathways.
Conclusions:
- Cellular stress enhances osteoclast differentiation through Hsf1-dependent mechanisms.
- This Hsf1-mediated pathway contributes significantly to pathological and therapeutic-induced bone loss.
- Understanding this mechanism is crucial for developing strategies to prevent bone loss during cancer therapy.
Related Concept Videos
Other Stress Responses in Bacteria
Diversity of Archaea III
Molecular Chaperones and Protein Folding
Molecular Chaperones and Protein Folding
The...
Responses to Heat and Cold Stress
Osteoclasts in Bone Remodeling

