NF2 regulates IP3R-mediated Ca2+ signal and apoptosis in meningiomas
Zhaoying Lei1, Jie Niu1, Huajian Cai1
1College of Life Sciences, Zhejiang University, Hangzhou, Zhejiang, China.
Abstract:
Meningiomas are the most common primary intracranial tumors and account for nearly 30% of all nervous system tumors. Approximately half of meningioma patients exhibit neurofibromin 2 (NF2) gene inactivation. Here, NF2 was shown to interact with the endoplasmic reticulum (ER) calcium (Ca2+) channel inositol 1,4,5-trisphosphate receptor 1 (IP3R1) in IOMM-Lee, a high-grade malignant meningioma cell line, and the F1 subdomain of NF2 plays a critical role in this interaction. Functional assays indicated that NF2 promotes the phosphorylation of IP3R (Ser 1756) and IP3R-mediated endoplasmic reticulum (ER) Ca2+ release by binding to IP3R1, which results in Ca2+-dependent apoptosis. Knockout of NF2 decreased Ca2+ release and promoted resistance to apoptosis, which was rescued by wild-type NF2 overexpression but not by F1 subdomain deletion truncation overexpression. The effects of NF2 defects on the development of tumors were further studied in mouse models. The decreased expression level of NF2 caused by NF2 gene knockout or mutation affects the activity of the IP3R channel, which reduces Ca2+-dependent apoptosis, thereby promoting the development of tumors. We elucidated the interaction patterns of NF2 and IP3R1, revealed the molecular mechanism through which NF2 regulates IP3R1-mediated Ca2+ release, and elucidated the new pathogenic mechanism of meningioma-related NF2 variants. Our study broadens the current understanding of the biological function of NF2 and provides ideas for drug screening of NF2-associated meningioma.
Insights
Neurofibromin 2 (NF2) interacts with the IP3R1 channel, regulating calcium release and promoting apoptosis in meningioma cells. NF2 defects impair this process, driving tumor development and offering new therapeutic targets.
Area of Science:
- Neuro-oncology
- Molecular Cell Biology
- Calcium Signaling
Background:
- Meningiomas are the most common primary brain tumors, with NF2 gene inactivation observed in about half of patients.
- The precise molecular mechanisms linking NF2 to meningioma pathogenesis are not fully understood.
Purpose of the Study:
- To elucidate the interaction between NF2 and the endoplasmic reticulum calcium channel IP3R1.
- To investigate the role of this interaction in regulating calcium release and apoptosis in meningioma.
- To explore the pathogenic mechanism of NF2 variants in meningioma development.
Main Methods:
- Utilized the IOMM-Lee meningioma cell line for in vitro studies.
- Performed functional assays to assess NF2's effect on IP3R1 phosphorylation and calcium release.
- Employed NF2 knockout and overexpression models in cell lines and mouse models.
Main Results:
- NF2 directly interacts with IP3R1, with the F1 subdomain being critical for this binding.
- NF2 binding promotes IP3R1 phosphorylation and enhances endoplasmic reticulum calcium release, leading to calcium-dependent apoptosis.
- NF2 deficiency results in reduced calcium release, apoptosis resistance, and promotes tumor development, as confirmed in mouse models.
Conclusions:
- NF2 regulates IP3R1-mediated calcium release, a novel mechanism contributing to meningioma pathogenesis.
- NF2 variants impairing this interaction promote tumor development by reducing apoptosis.
- This study provides insights into meningioma-related NF2 mutations and potential avenues for drug screening.
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