Gasdermin B over-expression modulates HER2-targeted therapy resistance by inducing protective autophagy through Rab7
Manuel Gámez-Chiachio1,2, Ángela Molina-Crespo1, Carmen Ramos-Nebot1,2
1Departamento de Bioquímica, Universidad Autónoma de Madrid (UAM) Instituto de Investigaciones Biomédicas 'Alberto Sols' (CSIC-UAM), IdiPAZ, C/Arturo Duperier 4, 28029, Madrid, Spain.
Background:
Gasdermin B (GSDMB) over-expression promotes poor prognosis and aggressive behavior in HER2 breast cancer by increasing resistance to therapy. Decoding the molecular mechanism of GSDMB-mediated drug resistance is crucial to identify novel effective targeted treatments for HER2/GSDMB aggressive tumors.
Methods:
Different in vitro approaches (immunoblot, qRT-PCR, flow cytometry, proteomic analysis, immunoprecipitation, and confocal/electron microscopy) were performed in HER2 breast and gastroesophageal carcinoma cell models. Results were then validated using in vivo preclinical animal models and analyzing human breast and gastric cancer samples.
Results:
GSDMB up-regulation renders HER2 cancer cells more resistant to anti-HER2 agents by promoting protective autophagy. Accordingly, the combination of lapatinib with the autophagy inhibitor chloroquine increases the therapeutic response of GSDMB-positive cancers in vitro and in zebrafish and mice tumor xenograft in vivo models. Mechanistically, GSDMB N-terminal domain interacts with the key components of the autophagy machinery LC3B and Rab7, facilitating the Rab7 activation during pro-survival autophagy in response to anti-HER2 therapies. Finally, we validated these results in clinical samples where GSDMB/Rab7/LC3B co-expression associates significantly with relapse in HER2 breast and gastric cancers.
Conclusion:
Our findings uncover for the first time a functional link between GSDMB over-expression and protective autophagy in response to HER2-targeted therapies. GSDMB behaves like an autophagy adaptor and plays a pivotal role in modulating autophagosome maturation through Rab7 activation. Finally, our results provide a new and accessible therapeutic approach for HER2/GSDMB + cancers with adverse clinical outcome.
Insights
Gasdermin B (GSDMB) promotes drug resistance in HER2 cancers by enhancing protective autophagy. Inhibiting autophagy with chloroquine alongside lapatinib improves therapeutic response in GSDMB-positive HER2 cancers.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Gasdermin B (GSDMB) overexpression is linked to poor prognosis and therapeutic resistance in HER2-positive breast cancer.
- Understanding GSDMB's role in drug resistance is critical for developing targeted therapies for aggressive HER2/GSDMB tumors.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying GSDMB-mediated drug resistance in HER2-positive cancers.
- To identify novel therapeutic strategies targeting the GSDMB pathway.
Main Methods:
- In vitro studies using immunoblot, qRT-PCR, flow cytometry, proteomics, immunoprecipitation, and microscopy in HER2 breast and gastroesophageal cancer cells.
- In vivo validation in preclinical animal models and analysis of human cancer samples.
Main Results:
- GSDMB upregulation confers resistance to anti-HER2 agents by promoting protective autophagy.
- Combining lapatinib with autophagy inhibitor chloroquine enhances therapeutic response in GSDMB-positive cancers.
- GSDMB interacts with LC3B and Rab7, facilitating Rab7 activation in pro-survival autophagy.
Conclusions:
- A functional link between GSDMB overexpression and protective autophagy in response to HER2-targeted therapies is established.
- GSDMB acts as an autophagy adaptor, regulating autophagosome maturation via Rab7 activation.
- This study offers a new therapeutic approach for HER2/GSDMB-positive cancers with poor outcomes.
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