Literature DB >> 23942126

Differential transformation capacity of neuro-glial progenitors during development.

Diana Marcela Muñoz1, Sanjay Singh, Takyee Tung, Sameer Agnihotri, Andras Nagy, Abhijit Guha, Gelareh Zadeh, Cynthia Hawkins.   

Abstract

Gliomas represent the most common type of brain tumor, but show considerable variability in histologic appearance and clinical outcome. The phenotypic differences between types and grades of gliomas have not been explained solely on the grounds of differing oncogenic stimuli. Several studies have demonstrated that some phenotypic differences may be attributed to regional differences in the neural stem cells from which tumors arise. We hypothesized that temporal differences may also play a role, with tumor phenotypic variability reflecting intrinsic differences in neural stem cells at distinct developmental stages. To determine how the tumorigenic potential of lineally related stem cells changes over time, we used a conditional transgenic system that integrates Cre-Lox-mediated and Tet-regulated expression to drive K-ras(G12D) expression in neuro-glial progenitor populations at different developmental time points. Using this model, we demonstrate that K-ras(G12D)-induced transformation is dependent on the developmental stage at which it is introduced. Diffuse malignant brain tumors develop during early embryogenesis but not when K-ras(G12D) expression is induced during late embryogenesis or early postnatal life. We show that differential expression of cell-cycle regulators during development may be responsible for this differing susceptibility to malignant transformation and that loss of p53 can overcome the transformation resistance seen at later developmental stages. These results highlight the interplay between genetic alterations and the molecular changes that accompany specific developmental stages; early progenitors may lack the regulatory mechanisms present at later, more lineage-restrictive, developmental time points, making them more susceptible to transformation.

Entities:  

Keywords:  differentiation; lineage; mouse models; temporal specification

Mesh:

Substances:

Year:  2013        PMID: 23942126      PMCID: PMC3761617          DOI: 10.1073/pnas.1303504110

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  32 in total

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4.  Characterization of CNS precursor subtypes and radial glia.

Authors:  E Hartfuss; R Galli; N Heins; M Götz
Journal:  Dev Biol       Date:  2001-01-01       Impact factor: 3.582

5.  Histological and genetic diagnosis of gliomatosis cerebri: case report.

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Review 6.  Stem cells and cancer; the polycomb connection.

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8.  Epidermal growth factor receptor and Ink4a/Arf: convergent mechanisms governing terminal differentiation and transformation along the neural stem cell to astrocyte axis.

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9.  Isolation of radial glial cells by fluorescent-activated cell sorting reveals a neuronal lineage.

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Authors:  Jinghui Zhang; Gang Wu; Claudia P Miller; Ruth G Tatevossian; James D Dalton; Bo Tang; Wilda Orisme; Chandanamali Punchihewa; Matthew Parker; Ibrahim Qaddoumi; Fredrick A Boop; Charles Lu; Cyriac Kandoth; Li Ding; Ryan Lee; Robert Huether; Xiang Chen; Erin Hedlund; Panduka Nagahawatte; Michael Rusch; Kristy Boggs; Jinjun Cheng; Jared Becksfort; Jing Ma; Guangchun Song; Yongjin Li; Lei Wei; Jianmin Wang; Sheila Shurtleff; John Easton; David Zhao; Robert S Fulton; Lucinda L Fulton; David J Dooling; Bhavin Vadodaria; Heather L Mulder; Chunlao Tang; Kerri Ochoa; Charles G Mullighan; Amar Gajjar; Richard Kriwacki; Denise Sheer; Richard J Gilbertson; Elaine R Mardis; Richard K Wilson; James R Downing; Suzanne J Baker; David W Ellison
Journal:  Nat Genet       Date:  2013-04-14       Impact factor: 38.330

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  8 in total

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Review 2.  Developmental origins and oncogenic pathways in malignant brain tumors.

Authors:  Q Richard Lu; Lily Qian; Xianyao Zhou
Journal:  Wiley Interdiscip Rev Dev Biol       Date:  2019-04-03       Impact factor: 5.814

3.  ASYMMETRIC CELL DIVISION: IMPLICATIONS FOR GLIOMA DEVELOPMENT AND TREATMENT.

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4.  Developmental stage-specific transformation of neural progenitors.

Authors:  Diana Marcela Muñoz; Cynthia Hawkins
Journal:  Cell Cycle       Date:  2013-12-13       Impact factor: 4.534

5.  A Nuclear Role for miR-9 and Argonaute Proteins in Balancing Quiescent and Activated Neural Stem Cell States.

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6.  Revisit the Candidacy of Brain Cell Types as the Cell(s) of Origin for Human High-Grade Glioma.

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Review 8.  The developmental origin of brain tumours: a cellular and molecular framework.

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