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ABCG2 and ABCB1 Limit the Efficacy of Dasatinib in a PDGF-B-Driven Brainstem Glioma Model
Rajendar K Mittapalli1, Alexander H Chung2, Karen E Parrish1
1Department of Pharmaceutics, Brain Barriers Research Center, University of Minnesota, Minneapolis, Minnesota.
Abstract:
Dasatinib is a multikinase inhibitor in clinical trials for glioma, and thus far has failed to demonstrate significant efficacy. We investigated whether the ABC efflux transporters ABCG2 and ABCB1 expressed in the blood-brain barrier (BBB), are limiting the efficacy of dasatinib in the treatment of glioma using genetic and pharmacologic approaches. We utilized a genetic brainstem glioma mouse model driven by platelet-derived growth factor-B and p53 loss using abcg2/abcb1 wild-type (ABC WT) or abcg2/abcb1 knockout mice (ABC KO). First, we observed that brainstem glioma tumor latency is significantly prolonged in ABC KO versus ABC WT mice (median survival of 47 vs. 34 days). Dasatinib treatment nearly doubles the survival of brainstem glioma-bearing ABC KO mice (44 vs. 80 days). Elacridar, an ABCG2 and ABCB1 inhibitor, significantly increases the efficacy of dasatinib in brainstem glioma-bearing ABC WT mice (42 vs. 59 days). Pharmacokinetic analysis demonstrates that dasatinib delivery into the normal brain, but not into the tumor core, is significantly increased in ABC KO mice compared with ABC WT mice. Surprisingly, elacridar did not significantly increase dasatinib delivery into the normal brain or the tumor core of ABC WT mice. Next, we demonstrate that the tight junctions of the BBB of this model are compromised as assessed by tissue permeability to Texas Red dextran. Finally, elacridar increases the cytotoxicity of dasatinib independent of ABCG2 and ABCB1 expression in vitro In conclusion, elacridar improves the efficacy of dasatinib in a brainstem glioma model without significantly increasing its delivery to the tumor core. Mol Cancer Ther; 15(5); 819-29. ©2016 AACR.
Insights
Blood-brain barrier efflux transporters limit dasatinib efficacy in glioma. Inhibiting these transporters, ABCG2 and ABCB1, with elacridar improves dasatinib effectiveness in treating brainstem glioma.
Area of Science:
- Oncology
- Pharmacology
- Neuroscience
Background:
- Dasatinib, a multikinase inhibitor, shows limited efficacy in glioma clinical trials.
- Blood-brain barrier (BBB) efflux transporters, ABCG2 and ABCB1, may restrict dasatinib's access to brain tumors.
- Understanding transporter roles is crucial for improving glioma treatment.
Purpose of the Study:
- To investigate if ABCG2 and ABCB1 limit dasatinib efficacy in glioma.
- To evaluate the impact of genetic knockout and pharmacologic inhibition of these transporters on dasatinib treatment.
Main Methods:
- Utilized a genetic brainstem glioma mouse model (PDGF-B/p53 loss).
- Compared wild-type (ABC WT) and knockout (ABC KO) mice lacking ABCG2/ABCB1.
- Administered dasatinib alone or in combination with elacridar (ABCG2/ABCB1 inhibitor).
- Assessed tumor latency, survival, drug pharmacokinetics, and in vitro cytotoxicity.
Main Results:
- Brainstem glioma latency was prolonged in ABC KO mice.
- Dasatinib nearly doubled survival in ABC KO mice.
- Elacridar significantly enhanced dasatinib efficacy in ABC WT mice.
- Dasatinib brain delivery increased in ABC KO mice, but not significantly with elacridar in ABC WT mice.
- Elacridar increased dasatinib cytotoxicity independently of transporter expression in vitro.
Conclusions:
- ABCG2 and ABCB1 efflux transporters limit dasatinib efficacy in a brainstem glioma model.
- Elacridar improves dasatinib effectiveness in brainstem glioma, potentially through mechanisms beyond increased brain delivery.
- Targeting efflux transporters offers a promising strategy to enhance dasatinib treatment for glioma.
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