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Intracranial Orthotopic Allografting of Medulloblastoma Cells in Immunocompromised Mice
Published on: October 3, 2010
MiR-34a deficiency accelerates medulloblastoma formation in vivo
Theresa Thor1, Annette Künkele, Kristian W Pajtler
1Department of Pediatric Oncology and Hematology, University Children's Hospital Essen, Hufelandstr. 55 45147, Essen, Germany; German Cancer Consortium (DKTK), Heidelberg, Germany; German Cancer Research Center (DKFZ), D-69120, Heidelberg, Germany.
Abstract:
Previous studies have evaluated the role of miRNAs in cancer initiation and progression. MiR-34a was found to be downregulated in several tumors, including medulloblastomas. Here we employed targeted transgenesis to analyze the function of miR-34a in vivo. We generated mice with a constitutive deletion of the miR-34a gene. These mice were devoid of mir-34a expression in all analyzed tissues, but were viable and fertile. A comprehensive standardized phenotypic analysis including more than 300 single parameters revealed no apparent phenotype. Analysis of miR-34a expression in human medulloblastomas and medulloblastoma cell lines revealed significantly lower levels than in normal human cerebellum. Re-expression of miR-34a in human medulloblastoma cells reduced cell viability and proliferation, induced apoptosis and downregulated the miR-34a target genes, MYCN and SIRT1. Activation of the Shh pathway by targeting SmoA1 transgene overexpression causes medulloblastoma in mice, which is dependent on the presence and upregulation of Mycn. Analysis of miR-34a in medulloblastomas derived from ND2:SmoA1(tg) mice revealed significant suppression of miR-34a compared to normal cerebellum. Tumor incidence was significantly increased and tumor formation was significantly accelerated in mice transgenic for SmoA1 and lacking miR-34a. Interestingly, Mycn and Sirt1 were strongly expressed in medulloblastomas derived from these mice. We here demonstrate that miR-34a is dispensable for normal development, but that its loss accelerates medulloblastomagenesis. Strategies aiming to re-express miR-34a in tumors could, therefore, represent an efficient therapeutic option.
Insights
MicroRNA 34a (miR-34a) is not essential for normal development but its absence accelerates medulloblastoma growth. Restoring miR-34a levels in tumors may offer a new therapeutic strategy.
Area of Science:
- Molecular Biology
- Genetics
- Oncology
Background:
- MicroRNAs (miRNAs) play a role in cancer development.
- MiR-34a is downregulated in various tumors, including medulloblastomas.
- Understanding miR-34a's function in vivo is crucial for cancer research.
Purpose of the Study:
- To investigate the in vivo function of miR-34a using a mouse model.
- To determine the role of miR-34a in medulloblastoma initiation and progression.
- To explore therapeutic strategies targeting miR-34a.
Main Methods:
- Generated mice with a constitutive deletion of the miR-34a gene.
- Performed comprehensive phenotypic analysis on miR-34a-deficient mice.
- Analyzed miR-34a expression in human and mouse medulloblastoma models.
- Utilized targeted transgenesis to study miR-34a's effect on tumor development.
Main Results:
- miR-34a knockout mice showed no apparent developmental phenotype.
- Reduced miR-34a levels were observed in human and mouse medulloblastomas.
- Re-expression of miR-34a in cancer cells decreased viability and induced apoptosis.
- Absence of miR-34a accelerated medulloblastoma formation in SmoA1-driven mouse models.
- MYCN and SIRT1 were upregulated in medulloblastomas lacking miR-34a.
Conclusions:
- miR-34a is dispensable for normal development but acts as a tumor suppressor in medulloblastomas.
- Loss of miR-34a accelerates medulloblastoma development by upregulating targets like MYCN and SIRT1.
- Restoring miR-34a expression presents a potential therapeutic avenue for medulloblastoma.

