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Targeting NAD+ Biosynthesis Overcomes Panobinostat and Bortezomib-Induced Malignant Glioma Resistance
Esther P Jane1,2, Daniel R Premkumar3,2,4, Swetha Thambireddy1
1Department of Neurosurgery, University of Pittsburgh, Pittsburgh, Pennsylvania.
Abstract:
To improve therapeutic responses in patients with glioma, new combination therapies that exploit a mechanistic understanding of the inevitable emergence of drug resistance are needed. Intratumoral heterogeneity enables a low barrier to resistance in individual patients with glioma. We reasoned that targeting two or more fundamental processes that gliomas are particularly dependent upon could result in pleiotropic effects that would reduce the diversity of resistant subpopulations allowing convergence to a more robust therapeutic strategy. In contrast to the cytostatic responses observed with each drug alone, the combination of the histone deacetylase inhibitor panobinostat and the proteasome inhibitor bortezomib synergistically induced apoptosis of adult and pediatric glioma cell lines at clinically achievable doses. Resistance that developed was examined using RNA-sequencing and pharmacologic screening of resistant versus drug-naïve cells. Quinolinic acid phosphoribosyltransferase (QPRT), the rate-determining enzyme for de novo synthesis of NAD+ from tryptophan, exhibited particularly high differential gene expression in resistant U87 cells and protein expression in all resistant lines tested. Reducing QPRT expression reversed resistance, suggesting that QPRT is a selective and targetable dependency for the panobinostat-bortezomib resistance phenotype. Pharmacologic inhibition of either NAD+ biosynthesis or processes such as DNA repair that consume NAD+ or their simultaneous inhibition with drug combinations, specifically enhanced apoptosis in treatment-resistant cells. Concomitantly, de novo vulnerabilities to known drugs were observed. IMPLICATIONS: These data provide new insights into mechanisms of treatment resistance in gliomas, hold promise for targeting recurrent disease, and provide a potential strategy for further exploration of next-generation inhibitors.
Insights
Combining panobinostat and bortezomib induces glioma cell death. Targeting quinolinic acid phosphoribosyltransferase (QPRT) overcomes resistance by inhibiting NAD+ synthesis, offering a new strategy for glioma treatment.
Area of Science:
- Neuro-oncology
- Cancer Pharmacology
- Molecular Biology
Background:
- Glioma treatment faces challenges due to inevitable drug resistance.
- Intratumoral heterogeneity contributes to a low barrier for resistance development.
- Novel combination therapies are needed to overcome resistance and improve therapeutic responses.
Purpose of the Study:
- To investigate a combination therapy targeting fundamental glioma-dependent processes.
- To identify mechanisms of resistance to combined treatment with panobinostat and bortezomib.
- To explore strategies for overcoming acquired drug resistance in glioma.
Main Methods:
- Combination therapy with panobinostat (HDAC inhibitor) and bortezomib (proteasome inhibitor).
- RNA-sequencing and pharmacologic screening to analyze resistant vs. drug-naïve glioma cells.
- Assessment of quinolinic acid phosphoribosyltransferase (QPRT) expression and function.
Main Results:
- The combination synergistically induced apoptosis in glioma cell lines at clinical doses.
- Quinolinic acid phosphoribosyltransferase (QPRT) was identified as a key enzyme in acquired resistance.
- Reducing QPRT expression reversed resistance, and QPRT inhibition enhanced apoptosis in resistant cells.
- Inhibition of NAD+ biosynthesis or consumption pathways sensitized resistant cells to therapy.
Conclusions:
- The combination of panobinostat and bortezomib offers a promising synergistic approach against glioma.
- QPRT is a targetable dependency driving resistance to this combination therapy.
- Targeting NAD+ metabolism presents a viable strategy to overcome glioma treatment resistance and improve outcomes.
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