The fully linked HTML version of this article has now been published.
Development ePress online publication date 3 Aug 2005
doi: 10.1242/dev.01968
Research article
Genomic characterisation of a Fgf-regulated gradient-based neocortical protomap
Stephen N. Sansom,
Jean M. Hébert,
Uruporn Thammongkol,
James Smith,
Grace Nisbet,
M. Azim Surani,
Susan K. McConnell,
and
Frederick J. Livesey*
* Author for correspondence (e-mail: rick{at}gurdon.cam.ac.uk)
Recent findings support a model for neocortical area formation in which neocortical progenitor cells become patterned by extracellular signals to generate a protomap of progenitor cell areas that in turn generate area-specific neurons. The protomap is thought to be underpinned by spatial differences in progenitor cell identity that are reflected at the transcriptional level. We systematically investigated the nature and composition of the protomap by genomic analyses of spatial and temporal neocortical progenitor cell gene expression. We did not find gene expression evidence for progenitor cell organisation into domains or compartments, instead finding rostrocaudal gradients of gene expression across the entire neocortex. Given the role of Fgf signalling in rostrocaudal neocortical patterning, we carried out an in vivo global analysis of cortical gene expression in Fgfr1 mutant mice, identifying consistent alterations in the expression of candidate protomap elements. One such gene, Mest, was predicted by those studies to be a direct target of Fgf8 signalling and to be involved in setting up, rather than implementing, the progenitor cell protomap. In support of this, we confirmed Mest as a direct transcriptional target of Fgf8-regulated signalling in vitro. Functional studies demonstrated that this gene has a role in establishing patterned gene expression in the developing neocortex, potentially by acting as a negative regulator of the Fgf8-controlled patterning system.

CiteULike
Complore
Connotea
Del.icio.us
Digg
Reddit
Technorati
Twitter What's this?
This article has been cited by other articles:

|
 |

|
 |
 
S. N. Sansom and F. J. Livesey
Gradients in the Brain: The Control of the Development of Form and Function in the Cerebral Cortex
Cold Spring Harb Perspect Biol,
August 1, 2009;
1(2):
a002519 - a002519.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
C. A. Leamey, K. A. Glendining, G. Kreiman, N.-D. Kang, K. H. Wang, R. Fassler, A. Sawatari, S. Tonegawa, and M. Sur
Differential Gene Expression between Sensory Neocortical Areas: Potential Roles for Ten_m3 and Bcl6 in Patterning Visual and Somatosensory Pathways
Cereb Cortex,
January 1, 2008;
18(1):
53 - 66.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
L. C. Kudo, S. L. Karsten, J. Chen, P. Levitt, and D. H. Geschwind
Genetic Analysis of Anterior Posterior Expression Gradients in the Developing Mammalian Forebrain
Cereb Cortex,
September 1, 2007;
17(9):
2108 - 2122.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
A. Takeuchi, T. Hamasaki, E. D. Litwack, and D. D.M. O'Leary
Novel IgCAM, MDGA1, Expressed in Unique Cortical Area- and Layer-Specific Patterns and Transiently by Distinct Forebrain Populations of Cajal-Retzius Neurons
Cereb Cortex,
July 1, 2007;
17(7):
1531 - 1541.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
E. E. Storm, S. Garel, U. Borello, J. M. Hebert, S. Martinez, S. K. McConnell, G. R. Martin, and J. L. R. Rubenstein
Dose-dependent functions of Fgf8 in regulating telencephalic patterning centers
Development,
May 1, 2006;
133(9):
1831 - 1844.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
J.-G. Chen, M.-R. Rasin, K. Y. Kwan, and N. Sestan
Zfp312 is required for subcortical axonal projections and dendritic morphology of deep-layer pyramidal neurons of the cerebral cortex
PNAS,
December 6, 2005;
102(49):
17792 - 17797.
[Abstract]
[Full Text]
[PDF]
|
 |
|
© The Company of Biologists Ltd 2005