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Updated: Oct 23, 2025

Isolation and Functional Assessment of Human Breast Cancer Stem Cells from Cell and Tissue Samples
Published on: October 2, 2020
PGK1-coupled HSP90 stabilizes GSK3β expression to regulate the stemness of breast cancer stem cells
1Key Laboratory of Marine Drugs, Chinese Ministry of Education, School of Medicine and Pharmacy, Ocean University of China, Qingdao 266003, China.
Objective:
Glycogen synthase kinase-3β (GSK3β) has been recognized as a suppressor of Wnt/β-catenin signaling, which is critical for the stemness maintenance of breast cancer stem cells. However, the regulatory mechanisms of GSK3β protein expression remain elusive.
Methods:
Co-immunoprecipitation and mass spectral assays were performed to identify molecules binding to GSK3β, and to characterize the interactions of GSK3β, heat shock protein 90 (Hsp90), and co-chaperones. The role of PGK1 in Hsp90 chaperoning GSK3β was evaluated by constructing 293T cells stably expressing different domains/mutants of Hsp90α, and by performing a series of binding assays with bacterially purified proteins and clinical specimens. The influences of Hsp90 inhibitors on breast cancer stem cell stemness were investigated by Western blot and mammosphere formation assays.
Results:
We showed that GSK3β was a client protein of Hsp90. Hsp90, which did not directly bind to GSK3β, interacted with phosphoglycerate kinase 1 via its C-terminal domain, thereby facilitating the binding of GSK3β to Hsp90. GSK3β-bound PGK1 interacted with Hsp90 in the "closed" conformation and stabilized GSK3β expression in an Hsp90 activity-dependent manner. The Hsp90 inhibitor, 17-AAG, rather than HDN-1, disrupted the interaction between Hsp90 and PGK1, and reduced GSK3β expression, resulting in significantly reduced inhibition of β-catenin expression, to maintain the stemness of breast cancer stem cells.
Conclusions:
Our findings identified a novel regulatory mechanism of GSK3β expression involving metabolic enzyme PGK1-coupled Hsp90, and highlighted the potential for more effective cancer treatment by selecting Hsp90 inhibitors that do not affect PGK1-regulated GSK3β expression.
Insights
Heat shock protein 90 (Hsp90) stabilizes breast cancer stem cell regulators like Glycogen synthase kinase-3β (GSK3β) via phosphoglycerate kinase 1 (PGK1). Targeting Hsp90 interactions with PGK1 offers a novel therapeutic strategy for breast cancer.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Glycogen synthase kinase-3β (GSK3β) suppresses Wnt/β-catenin signaling, crucial for breast cancer stem cell (BCSC) stemness.
- Regulatory mechanisms of GSK3β protein expression are not fully understood.
Purpose of the Study:
- To elucidate the regulatory mechanisms of GSK3β protein expression.
- To investigate the role of heat shock protein 90 (Hsp90) and phosphoglycerate kinase 1 (PGK1) in GSK3β regulation.
- To explore therapeutic strategies targeting Hsp90 in breast cancer.
Main Methods:
- Co-immunoprecipitation and mass spectrometry to identify GSK3β-interacting molecules.
- Analysis of Hsp90-PGK1-GSK3β interactions using cell-based assays and purified proteins.
- Evaluation of Hsp90 inhibitors' effects on BCSCs via Western blot and mammosphere assays.
Main Results:
- GSK3β is a client protein of Hsp90, with PGK1 mediating the interaction.
- PGK1 binding to Hsp90 stabilizes GSK3β expression in an Hsp90 activity-dependent manner.
- The Hsp90 inhibitor 17-AAG disrupted Hsp90-PGK1 interaction, reducing GSK3β and consequently β-catenin levels, impacting BCSC stemness.
Conclusions:
- A novel regulatory pathway for GSK3β expression involving PGK1-coupled Hsp90 was identified.
- Targeting specific Hsp90 inhibitors that spare the PGK1 interaction may offer improved breast cancer treatment strategies.
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