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Repurposing T-type calcium channel blocker lomerizine as a therapeutic strategy for glioblastoma
Toshiya Ichinose, Sho Tamai, Nozomi Hirai, Takashi Maejima, Kosuke Nambu, Hemragul Sabit, Shingo Tanaka, Masashi Kinoshita, Masahiko Kobayashi, Michihiro Mieda, Atsushi Hirao, Mitsutoshi Nakada
Toshiya Ichinose, Sho Tamai, Nozomi Hirai, Takashi Maejima, Kosuke Nambu, Hemragul Sabit, Shingo Tanaka, Masashi Kinoshita, Masahiko Kobayashi, Michihiro Mieda, Atsushi Hirao, Mitsutoshi Nakada
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Research Article Cell biology Oncology

Repurposing T-type calcium channel blocker lomerizine as a therapeutic strategy for glioblastoma

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Abstract

Glioblastoma (GBM) is the most malignant primary brain tumor. The presence of glioma stem/initiating cells (GICs) is known to cause strong treatment resistance; therefore, GICs are a major target for GBM therapy, although there are no therapies targeting GICs clinically. To identify novel treatments for GBMs, we performed drug repurposing screening using GICs and identified the T-type calcium channel blocker lomerizine — a migraine prophylactic drug. Lomerizine inhibited proliferation, migration, invasion, and cell cycle progression and induced apoptosis in GICs and differentiated glioma cells. Lomerizine had antitumor effects by inactivating STAT3 in all cell lines. Furthermore, lomerizine also dephosphorylated AKT and ERK only in GICs and had strong tumor-suppressive ability. Lomerizine also reduced tumor volume and prolonged overall survival in vivo. Based on our data from in vitro and in vivo experiments, lomerizine has potential as a GBM therapeutic agent targeting both GICs and differentiated glioma cells and could benefit GBM patients.

Authors

Toshiya Ichinose, Sho Tamai, Nozomi Hirai, Takashi Maejima, Kosuke Nambu, Hemragul Sabit, Shingo Tanaka, Masashi Kinoshita, Masahiko Kobayashi, Michihiro Mieda, Atsushi Hirao, Mitsutoshi Nakada

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Figure 8

Effects of lomerizine treatment on the xenograft mouse model in vivo.

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Effects of lomerizine treatment on the xenograft mouse model in vivo.
We...
We generated a mouse brain tumor model by transplanting KGS01 and KGS10 cells into the brain, and the mice were randomly assigned to receive human-dose lomerizine (4.68 mg/kg), high-dose lomerizine (30 mg/kg), or vehicle (DMSO) through daily oral administration. (A) Hematoxylin and eosin staining (left column) and immunohistochemistry for nestin (right column in serial coronal sections of xenograft mouse brains 55 days after lomerizine treatment. Bar graphs indicating the tumor size (mm2) of mice in each treatment group. (B) Overall survival of mice treated with lomerizine and DMSO (control). Lomerizine significantly prolonged the survival of KGS01 and KGS10 mice in a dose-dependent manner. Log-rank test: KGS01, P = 0.402 (human-dose lomerizine group) and 0.0190 (high-dose lomerizine group); KGS10, P = 0.036 (human-dose lomerizine group) and 0.0003 (high-dose lomerizine group). Scale bars: 100 μm (A). Bars represent mean values ± SD (A). Data were analyzed by 1-way ANOVA with Tukey’s multiple-comparison test (A) and log-rank test (B). *P < 0.05, **P < 0.01, ***P < 0.005 vs. vehicle.

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ISSN 2379-3708

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