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Published on: May 15, 2019
Bortezomib abrogates temozolomide-induced autophagic flux through an ATG5 dependent pathway
Mohummad Aminur Rahman1,2, Agnete S T Engelsen1,3, Shahin Sarowar1
1Department of Biomedicine, Faculty of Medicine, University of Bergen, Bergen, Norway.
Abstract:
Introduction: Glioblastoma (GBM) is invariably resistant to temozolomide (TMZ) chemotherapy. Inhibiting the proteasomal pathway is an emerging strategy to accumulate damaged proteins and inhibit their lysosomal degradation. We hypothesized that pre-treatment of glioblastoma with bortezomib (BTZ) might sensitize glioblastoma to temozolomide by abolishing autophagy survival signals to augment DNA damage and apoptosis. Methods: P3 patient-derived glioblastoma cells, as well as the tumour cell lines U87, HF66, A172, and T98G were investigated for clonogenic survival after single or combined treatment with temozolomide and bortezomib in vitro. We investigated the requirement of functional autophagy machinery by utilizing pharmacological inhibitors or CRISPR-Cas9 knockout (KO) of autophagy-related genes -5 and -7 (ATG5 and ATG7) in glioblastoma cells and monitored changes in autophagic flux after temozolomide and/or bortezomib treatments. P3 wild-type and P3 ATG5-/- (ATG5 KO) cells were implanted orthotopically into NOD-SCID mice to assess the efficacy of bortezomib and temozolomide combination therapy with and without functional autophagy machinery. Results: The chemo-resistant glioblastoma cells increased autophagic flux during temozolomide treatment as indicated by increased degradation of long-lived proteins, diminished expression of autophagy markers LC3A/B-II and p62 (SQSTM1), increased co-localisation of LC3A/B-II with STX17, augmented and no induction of apoptosis. In contrast, bortezomib treatment abrogated autophagic flux indicated by the accumulation of LC3A/B-II and p62 (SQSTM1) positive autophagosomes that did not fuse with lysosomes and thus reduced the degradation of long-lived proteins. Bortezomib synergistically enhanced temozolomide efficacy by attenuating cell proliferation, increased DNA double-strand breaks, and apoptosis in an autophagy-dependent manner. Abolishing autophagy in ATG5 KOs reversed the bortezomib-induced toxicity, rescued glioblastoma cell death and reduced animal survival. Discussion: We conclude that bortezomib abrogates temozolomide induced autophagy flux through an ATG5 dependent pathway.
Insights
Bortezomib (BTZ) sensitizes glioblastoma (GBM) to temozolomide (TMZ) by blocking autophagy, enhancing DNA damage and apoptosis. This combination therapy offers a promising strategy for treating chemo-resistant GBM by targeting the proteasomal and autophagy pathways.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Glioblastoma (GBM) exhibits resistance to temozolomide (TMZ) chemotherapy.
- The proteasomal pathway is a target for accumulating damaged proteins and inhibiting lysosomal degradation.
- Autophagy can promote cancer cell survival, particularly under chemotherapy stress.
Purpose of the Study:
- To investigate if bortezomib (BTZ) pre-treatment sensitizes glioblastoma to temozolomide (TMZ).
- To determine if BTZ abolishes autophagy survival signals, augmenting DNA damage and apoptosis in GBM.
- To elucidate the role of autophagy machinery in the combined efficacy of BTZ and TMZ.
Main Methods:
- Assessed clonogenic survival of patient-derived and established GBM cell lines treated with TMZ and/or BTZ.
- Utilized pharmacological inhibitors and CRISPR-Cas9 knockout (ATG5, ATG7) to investigate autophagy's role.
- Monitored autophagic flux and apoptosis markers.
- Evaluated combination therapy efficacy in an orthotopic mouse model using wild-type and ATG5 knockout GBM cells.
Main Results:
- TMZ treatment increased autophagic flux in chemo-resistant GBM cells, promoting survival.
- BTZ treatment abrogated autophagic flux, leading to accumulation of autophagosomes and reduced protein degradation.
- BTZ synergistically enhanced TMZ efficacy by increasing DNA damage and apoptosis in an autophagy-dependent manner.
- Abolishing autophagy in ATG5 knockout cells reversed BTZ-induced toxicity and reduced survival.
Conclusions:
- Bortezomib abrogates temozolomide-induced autophagy flux via an ATG5-dependent pathway.
- The combination of bortezomib and temozolomide demonstrates synergistic efficacy in glioblastoma treatment.
- Targeting autophagy is a viable strategy to overcome temozolomide resistance in glioblastoma.
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