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Identification of an HSP90 modulated multi-step process for ERBB2 degradation in breast cancer cells
Patrizio Castagnola1, Grazia Bellese2, Filippo Birocchi2
1Dipartimento di Terapie Oncologiche Integrate, IRCCS AOU San Martino - IST, Genova, Italy.
Abstract:
The receptor tyrosine kinase ERBB2 interacts with HSP90 and is overexpressed in aggressive breast cancers. Therapeutic HSP90 inhibitors, i.e. Geldanamycin (GA), target ERBB2 to degradation. We have previously shown that HSP90 is responsible for the missorting of recycling ERBB2 to degradation compartments. In this study, we used biochemical, immunofluorescence and electron microscopy techniques to demonstrate that in SKBR3 human breast cancer cells, GA strongly induces polyubiquitination and internalization of the full-length p185-ERBB2, and promotes its cleavage, with the formation of a p116-ERBB2 form in EEA1-positive endosomes (EE). p116-ERBB2 corresponds to a non-ubiquitinated, signaling-impaired, membrane-bound fragment, which is readily sorted to lysosomes and degraded. To define the sequence of events leading to p116-ERBB2 degradation, we first blocked the EE maturation/trafficking to late endosomes/lysosomes with wortmannin, and found an increase in GA-dependent formation of p116-ERBB2; we then inhibited the proteasome activity with MG-132 or lactacystin, and observed an efficient block of p185-ERBB2 cleavage, and its accumulation in EE, suggesting that p185-ERBB2 polyubiquitination is necessary for proteasome-dependent p116-ERBB2 generation occurring in EE. As polyubiquitination has also been implicated in autophagy-mediated degradation of ERBB2 under different experimental conditions, we exploited this possibility and demonstrate that GA strongly inhibits early autophagy, and reduces the levels of the autophagy markers atg5-12 and LC3-II, irrespective of GA-induced ERBB2 polyubiquitination, ruling out a GA-dependent autophagic degradation of ERBB2. In conclusion, we propose that HSP90 inhibition fosters ERBB2 polyubiquitination and proteasome-dependent generation of a non-ubiquitinated and inactive p116-ERBB2 form in EE, which is trafficked from altered EE to lysosomes.
Insights
HSP90 inhibition with Geldanamycin causes ERBB2 polyubiquitination and cleavage in breast cancer cells. This generates an inactive p116-ERBB2 fragment degraded via the proteasome, not autophagy.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- ERBB2 is a receptor tyrosine kinase overexpressed in aggressive breast cancers.
- HSP90 inhibitors like Geldanamycin (GA) target ERBB2 for degradation.
- HSP90 mediates missorting of recycling ERBB2 to degradation pathways.
Purpose of the Study:
- To elucidate the mechanism of ERBB2 degradation induced by HSP90 inhibition.
- To define the sequence of events leading to p116-ERBB2 degradation.
- To investigate the role of autophagy in GA-induced ERBB2 degradation.
Main Methods:
- Biochemical assays
- Immunofluorescence microscopy
- Electron microscopy
- Pharmacological inhibition of endosomal trafficking and proteasome activity
Main Results:
- GA induces ERBB2 polyubiquitination and internalization in SKBR3 cells.
- GA promotes cleavage of p185-ERBB2 to p116-ERBB2 within early endosomes (EE).
- p116-ERBB2 is non-ubiquitinated, signaling-impaired, and trafficked to lysosomes for degradation.
- Proteasome inhibition blocks p185-ERBB2 cleavage, suggesting its necessity for p116-ERBB2 generation.
- GA inhibits early autophagy, ruling out autophagic degradation of ERBB2.
Conclusions:
- HSP90 inhibition triggers ERBB2 polyubiquitination and proteasome-dependent generation of inactive p116-ERBB2 in EE.
- The generated p116-ERBB2 is degraded via lysosomal trafficking from altered EE.
- This pathway represents a novel mechanism for ERBB2 downregulation in breast cancer therapy.
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