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ACT001 modulates the NF-κB/MnSOD/ROS axis by targeting IKKβ to inhibit glioblastoma cell growth
Qiuying Li1, Yu Sun2, Bowen Liu3
1State Key Laboratory of Medicinal Chemical Biology, College of Pharmacy and Tianjin Key Laboratory of Molecular Drug Research, Nankai University, Tianjin, 300353, China.
Abstract:
Glioblastomas are high-grade brain tumors with poor prognoses, and new therapeutic approaches for these tumors are critically needed. This study revealed the underlying mechanisms of a new orphan drug, ACT001, that is currently in clinical trials for the treatment of advanced glioblastoma in Australia and China. ACT001 significantly suppressed glioma cell proliferation and induced apoptosis and cell cycle arrest in vitro, as determined by Cell Counting Kit-8 assays and flow cytometry. In addition, U-118 MG cells with high expression of p-IKKβ were sensitive to ACT001. Changes in the oxidative stress pathway in U-118 MG cells were detected with the isobaric tags for relative and absolute quantitation (iTRAQ) method. We further verified that ACT001 elevated the levels of reactive oxygen species (ROS) by regulating NF-κB-targeted MnSOD. ACT001 markedly inhibited NF-κB activation by directly binding IKKβ and inhibiting its phosphorylation. Overexpression of IKKβ markedly attenuated the changes in MnSOD and NOX1, indicating that ACT001 increased the levels of ROS by reducing the protein expression of p-IKKβ. Furthermore, ACT001 reduced cyclin B1/CDC2 expression and triggered G2/M phase arrest by increasing ROS production. ACT001 also upregulated the expression of Bax and Bim and induced apoptosis in a ROS-dependent manner. ACT001 effectively suppressed the growth of U-118 MG tumors in BALB/c nude mice and GL-261-luciferase tumors in C57BL/6 J mice. Finally, ACT001 downregulated the expression of p-p65, MnSOD, cyclin B1, CDC2, and Ki67 in U-118 MG tumor tissues. Patients with activated NF-κB signaling should thus be given priority for enrollment in future phase II clinical trials. KEY MESSAGES: ACT001 directly bind to IKKβ and inhibited its phosphorylation. The inhibition of p-IKKβ induced the generation of ROS. ACT001 promoted the generation of ROS by regulating MnSOD expression to induce G2/M phase arrest.
Insights
The novel drug ACT001 targets glioblastoma by inhibiting IKKβ phosphorylation, increasing reactive oxygen species (ROS), and inducing cell cycle arrest. This mechanism effectively suppresses tumor growth and offers a new therapeutic avenue for brain cancer patients.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Glioblastomas are aggressive brain tumors with limited treatment options and poor patient outcomes.
- There is an urgent need for novel therapeutic strategies to combat advanced glioblastoma.
- ACT001 is an investigational drug currently in clinical trials for glioblastoma treatment.
Purpose of the Study:
- To elucidate the molecular mechanisms by which ACT001 exerts its anti-glioma effects.
- To investigate ACT001's impact on cell proliferation, apoptosis, and cell cycle progression.
- To determine ACT001's role in regulating oxidative stress pathways and NF-κB signaling.
Main Methods:
- In vitro assays including Cell Counting Kit-8 and flow cytometry to assess cell viability and cell cycle.
- Isobaric tags for relative and absolute quantitation (iTRAQ) to analyze proteomic changes.
- In vivo studies using mouse models (BALB/c nude and C57BL/6 J) to evaluate tumor growth inhibition.
- Western blotting and immunohistochemistry to confirm protein expression changes in tumor tissues.
Main Results:
- ACT001 suppressed glioma cell proliferation, induced apoptosis, and caused cell cycle arrest in vitro.
- ACT001 inhibited NF-κB activation by directly binding and inhibiting IKKβ phosphorylation, leading to increased reactive oxygen species (ROS).
- Increased ROS production by ACT001 resulted in G2/M phase arrest and apoptosis, and suppressed tumor growth in vivo.
- ACT001 downregulated key proteins including p-p65, MnSOD, cyclin B1, CDC2, and Ki67 in tumor tissues.
Conclusions:
- ACT001 demonstrates significant anti-tumor activity against glioblastoma through a ROS-dependent mechanism involving IKKβ inhibition.
- The drug's ability to induce cell cycle arrest and apoptosis highlights its therapeutic potential.
- Patients with activated NF-κB signaling may benefit most from ACT001, suggesting a targeted approach for future clinical trials.
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