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Lucanthone, a Potential PPT1 Inhibitor, Perturbs Stemness, Reduces Tumor Microtube Formation, and Slows the Growth of
Daniel P Radin1, Sophie Shifman1, Ian R Outhwaite1
1Department of Pharmacological Sciences (D.P.R., S.S., I.R.O., A.S., M.A.S., S.E.T.) and Stony Brook Medical Scientist Training Program (D.P.R., S.S., I.R.O.), Renaissance School of Medicine at Stony Brook University, Stony Brook, New York.
Abstract:
Glioblastoma (GBM) is the most frequently diagnosed primary central nervous system tumor in adults. Despite the standard of care therapy, which includes surgical resection, temozolomide chemotherapy, radiation and the newly added tumor-treating fields, median survival remains only ∼20 months. Unfortunately, GBM has a ∼100% recurrence rate, but after recurrence there are no Food and Drug Administration-approved therapies to limit tumor growth and enhance patient survival, as these tumors are resistant to temozolomide (TMZ). Recently, our laboratory reported that lucanthone slows GBM by inhibiting autophagic flux through lysosome targeting and decreases the number of Olig2+ glioma stem-like cells (GSC) in vitro and in vivo. We now additionally report that lucanthone efficiently abates stemness in patient-derived GSC and reduces tumor microtube formation in GSC, an emerging hallmark of treatment resistance in GBM. In glioma tumors derived from cells with acquired resistance to TMZ, lucanthone retains the ability to perturb tumor growth, inhibits autophagy by targeting lysosomes, and reduces Olig2 positivity. We also find that lucanthone may act as an inhibitor of palmitoyl protein thioesterase 1. Our results suggest that lucanthone may function as a potential treatment option for GBM tumors that are not amenable to TMZ treatment. SIGNIFICANCE STATEMENT: We report that the antischistosome agent lucanthone impedes tumor growth in a preclinical model of temozolomide-resistant glioblastoma and reduces the numbers of stem-like glioma cells. In addition, it acts as an autophagy inhibitor, and its mechanism of action may be via inhibition of palmitoyl protein thioesterase 1. As there are no defined therapies approved for recurrent, TMZ-resistant tumor, lucanthone could emerge as a treatment for glioblastoma tumors that may not be amenable to TMZ both in the newly diagnosed and recurrent settings.
Insights
Lucanthone, an antischistosome drug, effectively slows glioblastoma growth and reduces stem-like cells in temozolomide-resistant tumors. This autophagy inhibitor shows promise as a new treatment option for glioblastoma, especially recurrent or TMZ-resistant cases.
Area of Science:
- Neuro-oncology
- Cancer biology
- Drug discovery
Background:
- Glioblastoma (GBM) is an aggressive brain tumor with poor median survival (~20 months) despite standard therapies.
- Recurrent GBM often exhibits resistance to temozolomide (TMZ), a standard chemotherapy, with no FDA-approved treatments available.
- Glioma stem-like cells (GSCs) and tumor microtube formation are implicated in GBM treatment resistance and recurrence.
Purpose of the Study:
- To investigate the efficacy of lucanthone in preclinical models of temozolomide-resistant glioblastoma.
- To evaluate lucanthone's effects on glioma stem-like cells (GSCs), stemness, and tumor microtube formation.
- To explore lucanthone's mechanism of action, including its role as an autophagy inhibitor and potential target.
Main Methods:
- Lucanthone treatment was assessed in patient-derived GSCs and in vivo models of acquired TMZ resistance.
- Inhibition of autophagic flux via lysosome targeting was analyzed.
- Effects on Olig2+ GSCs, stemness, tumor microtube formation, and palmitoyl protein thioesterase 1 (PPT1) activity were evaluated.
Main Results:
- Lucanthone significantly slowed tumor growth in TMZ-resistant GBM models.
- Lucanthone reduced stemness in patient-derived GSCs and inhibited tumor microtube formation.
- Lucanthone inhibited autophagy by targeting lysosomes, reduced Olig2 positivity, and may inhibit palmitoyl protein thioesterase 1.
Conclusions:
- Lucanthone demonstrates significant anti-tumor activity in preclinical models of TMZ-resistant glioblastoma.
- Lucanthone's ability to target GSCs and inhibit autophagy suggests a potential therapeutic strategy for resistant GBM.
- Lucanthone represents a promising candidate for treating both newly diagnosed and recurrent TMZ-resistant glioblastoma.
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