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Updated: Jan 31, 2026

Zebrafish Model of Neuroblastoma Metastasis
Published on: March 14, 2021
Calreticulin regulates MYCN expression to control neuronal differentiation and stemness of neuroblastoma
Andy Chi-Lung Lee1,2, Yu-Yin Shih3, Fanfan Zhou4
1Department of Radiation Oncology, Chang Gung Memorial Hospital, Linkou, Taiwan.
Abstract:
Oncogenic N-MYC (MYCN) is widely used as a biomarker in clinics for neuroblastoma (NB) patients; nevertheless, mechanism that underlines MYCN regulation remains elusive. In the present study, we identified calreticulin (CRT) as a novel MYCN suppressor that downregulated MYCN promoter activity and protein expression to modulate neuronal differentiation and stemness. Our data showed that CRT-mediated MYCN suppression led to increased neurite length and commensurate elevation in differentiation marker GAP-43. We examined effect of radiotherapy and discovered that ionizing radiation (IR) was able to augment CRT expression dose-dependently in NB. Interestingly, neuronal differentiation and neurosphere formation (NSF) of NB were not only co-modulated by IR and CRT but were also dependent on Ca2+-buffering domain (C-domain) of CRT. Mutagenesis analysis showed that C-domain was indispensable for CRT-mediated MYCN regulation in NB differentiation and NSF. Of note, IR-induced formation of neural stem-like neurospheres (NS) was significantly impaired in CRT-overexpressed NB cells. The occupancy of CRT on MYCN 5' proximal promoter was confirmed by chromatin immunoprecipitation assays, revealing potential CRT binding sites that coincided with transcription factor E2F1 binding elements. In addition, we identified a physical interaction between CRT and E2F1, and demonstrated that CRT occupancy on MYCN promoter prevented E2F1-mediated MYCN upregulation. In line with in vitro findings, hampered tumor latency and retarded tumor growth in xenograft model corroborated IR and CRT co-mediated neuronal differentiation of NB. Together, our data delineated a novel mechanism of CRT-mediated MYCN regulation and warranted further preclinical investigation towards new therapeutic strategy for NB. CRT suppresses MYCN expression and promotes neuronal differentiation in NB. CRT regulates MYCN via interaction with E2F1 and direct binding to MYCN promoter. Ca2+-buffering domain of CRT is critical in MYCN regulation and NB differentiation. CRT-MYCN axis impacts on NB stemness by modulating neurosphere formation. Xenograft model corroborates in vitro NB differentiation mediated by CRT and IR.
Insights
Calreticulin (CRT) suppresses the oncogene N-MYC (MYCN) in neuroblastoma, promoting neuronal differentiation. This novel mechanism involves CRT
Area of Science:
- Neuro-oncology
- Molecular Biology
- Cellular Differentiation
Background:
- N-MYC (MYCN) is a critical oncogene and biomarker in neuroblastoma (NB).
- The precise mechanisms regulating MYCN expression in NB remain incompletely understood.
- Understanding MYCN regulation is crucial for developing targeted neuroblastoma therapies.
Purpose of the Study:
- To identify novel regulators of MYCN in neuroblastoma.
- To elucidate the role of calreticulin (CRT) in MYCN suppression and neuronal differentiation.
- To investigate the impact of ionizing radiation (IR) on CRT expression and function in NB.
Main Methods:
- Promoter activity assays to assess MYCN regulation by CRT.
- Western blotting to measure MYCN and GAP-43 protein levels.
- Chromatin immunoprecipitation (ChIP) assays to confirm CRT binding to the MYCN promoter.
- Co-immunoprecipitation to identify protein interactions.
- In vitro neurosphere formation assays and in vivo xenograft models.
Main Results:
- Calreticulin (CRT) was identified as a novel suppressor of MYCN, downregulating its promoter activity and protein expression.
- CRT-mediated MYCN suppression enhanced neuronal differentiation, evidenced by increased neurite length and GAP-43 expression.
- Ionizing radiation (IR) dose-dependently increased CRT expression in NB cells.
- The Ca2+-buffering domain of CRT was essential for MYCN regulation, neuronal differentiation, and neurosphere formation.
- CRT physically interacted with E2F1, preventing E2F1-mediated MYCN upregulation.
- IR and CRT co-treatment significantly hampered tumor growth and latency in xenograft models.
Conclusions:
- Calreticulin (CRT) acts as a novel suppressor of oncogenic MYCN in neuroblastoma, promoting neuronal differentiation.
- CRT regulates MYCN via direct binding to its promoter and interaction with transcription factor E2F1.
- The CRT-MYCN axis is a potential therapeutic target for neuroblastoma, influencing stemness and differentiation.
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