Mitochondrial ROS drive resistance to chemotherapy and immune-killing in hypoxic non-small cell lung cancer
Iris C Salaroglio1, Dimas Carolina Belisario1, Muhlis Akman1
1Department of Oncology, University of Torino, via Santena 5/bis, 10126, Torino, Italy.
Background:
Solid tumors subjected to intermittent hypoxia are characterized by resistance to chemotherapy and immune-killing by effector T-lymphocytes, particularly tumor-infiltrating Vγ9Vδ2 T-lymphocytes. The molecular circuitries determining this double resistance are not known.
Methods:
We analyzed a panel of 28 human non-small cell lung cancer (NSCLC) lines, using an in vitro system simulating continuous and intermittent hypoxia. Chemosensitivity to cisplatin and docetaxel was evaluated by chemiluminescence, ex vivo Vγ9Vδ2 T-lymphocyte expansion and immune-killing by flow cytometry. Targeted transcriptomics identified efflux transporters and nuclear factors involved in this chemo-immuno-resistance. The molecular mechanism linking Hypoxia-inducible factor-1α (HIF-1α), CCAAT/Enhancer Binding Protein-β (C/EBP-β) isoforms LAP and LIP, ABCB1, ABCC1 and ABCA1 transporters were evaluated by immunoblotting, RT-PCR, RNA-IP, ChIP. Oxidative phosphorylation, mitochondrial ATP, ROS, depolarization, O2 consumption were monitored by spectrophotometer and electronic sensors. The role of ROS/HIF-1α/LAP axis was validated in knocked-out or overexpressing cells, and in humanized (Hu-CD34+NSG) mice bearing LAP-overexpressing tumors. The clinical meaning of LAP was assessed in 60 NSCLC patients prospectively enrolled, treated with chemotherapy.
Results:
By up-regulating ABCB1 and ABCC1, and down-regulating ABCA1, intermittent hypoxia induced a stronger chemo-immuno-resistance than continuous hypoxia in NSCLC cells. Intermittent hypoxia impaired the electron transport chain and reduced O2 consumption, increasing mitochondrial ROS that favor the stabilization of C/EBP-β mRNA mediated by HIF-1α. HIF-1α/C/EBP-β mRNA binding increases the splicing of C/EBP-β toward the production of LAP isoform that transcriptionally induces ABCB1 and ABCC1, promoting the efflux of cisplatin and docetaxel. LAP also decreases ABCA1, limiting the efflux of isopentenyl pyrophosphate, i.e. the endogenous activator of Vγ9Vδ2 T-cells, and reducing the immune-killing. In NSCLC patients subjected to cisplatin-based chemotherapy, C/EBP-β LAP was abundant in hypoxic tumors and was associated with lower response to treatment and survival. LAP-overexpressing tumors in Hu-CD34+NSG mice recapitulated the patients' chemo-immuno-resistant phenotype. Interestingly, the ROS scavenger mitoquinol chemo-immuno-sensitized immuno-xenografts, by disrupting the ROS/HIF-1α/LAP cascade.
Conclusions:
The impairment of mitochondrial metabolism induced by intermittent hypoxia increases the ROS-dependent stabilization of HIF-1α/LAP complex in NSCLC, producing chemo-immuno-resistance. Clinically used mitochondrial ROS scavengers may counteract such double resistance. Moreover, we suggest C/EBP-β LAP as a new predictive and prognostic factor in NSCLC patients.
Insights
Intermittent hypoxia in non-small cell lung cancer (NSCLC) increases chemo-immuno-resistance by stabilizing the HIF-1α/LAP complex. Mitochondrial ROS scavengers can counteract this resistance, and LAP may serve as a predictive factor.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Solid tumors under intermittent hypoxia exhibit resistance to chemotherapy and T-cell mediated immune-killing.
- The molecular mechanisms underlying this dual resistance in non-small cell lung cancer (NSCLC) remain largely unknown.
Purpose of the Study:
- To elucidate the molecular circuitries responsible for chemo-immuno-resistance in NSCLC under intermittent hypoxia.
- To identify potential therapeutic targets and biomarkers for overcoming this resistance.
Main Methods:
- Analysis of 28 NSCLC cell lines under simulated hypoxia, assessing chemosensitivity and Vγ9Vδ2 T-cell killing.
- Transcriptomic analysis to identify key molecular players, including Hypoxia-inducible factor-1α (HIF-1α) and C/EBP-β isoforms.
- Validation of the ROS/HIF-1α/LAP axis in vitro and in humanized mouse models.
- Clinical assessment of C/EBP-β LAP in 60 NSCLC patients treated with chemotherapy.
Main Results:
- Intermittent hypoxia induced greater chemo-immuno-resistance than continuous hypoxia by up-regulating ABCB1/ABCC1 and down-regulating ABCA1.
- This resistance is mediated by increased mitochondrial ROS, stabilizing HIF-1α, which promotes C/EBP-β LAP isoform production.
- LAP up-regulates efflux transporters, reducing drug efficacy, and down-regulates ABCA1, impairing Vγ9Vδ2 T-cell activation.
- High C/EBP-β LAP levels in NSCLC patients correlated with poor treatment response and survival.
Conclusions:
- Intermittent hypoxia-induced mitochondrial dysfunction and ROS stabilize the HIF-1α/LAP complex, driving chemo-immuno-resistance in NSCLC.
- Mitochondrial ROS scavengers show potential in counteracting this dual resistance.
- C/EBP-β LAP is identified as a novel predictive and prognostic biomarker for NSCLC patients.
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