Literature DB >> 17640820

Disruption of Foxg1 expression by knock-in of cre recombinase: effects on the development of the mouse telencephalon.

K L Eagleson1, L J Schlueter McFadyen-Ketchum, E T Ahrens, P H Mills, M D Does, J Nickols, P Levitt.   

Abstract

The cre/loxP system is used routinely to manipulate gene expression in the mouse nervous system. In order to delete genes specifically from the telencephalon, the Foxg1-cre line was created previously by replacing the intron-less Foxg1 coding region with cre, resulting in a Foxg1 heterozygous mouse. As the telencephalon of heterozygous Foxg1 mice was reported to be normal, this genotype often has been used as the control in subsequent analyses. Here we describe substantial disruption of forebrain development of heterozygous mice in the Foxg1-cre line, maintained on the C57BL/6J background. High resolution magnetic resonance microscopy reveals a significant reduction in the volume of the neocortex, hippocampus and striatum. The alteration in the neocortex results, in part, from a decrease in its tangential dimension, although gross patterning of the cortical sheet appears normal. This decrease is observed in three different Foxg1 heterozygous mouse lines, independent of the method of achieving deletion of the Foxg1 gene. Although Foxg1 is not expressed in the diencephalon, three-dimensional magnetic resonance microscopy revealed that thalamic volume in the adult is reduced. In contrast, at postnatal day 4, thalamic volume is normal, suggesting that interactions between cortex and dorsal thalamus postnatally produce the final adult thalamic phenotype. In the Foxg1-cre line maintained on the C57BL/6J background, the radial domain of the cerebral cortex also is disrupted substantially, particularly in supragranular layers. However, neither Foxg1 heterozygous mice of the Foxg1-tet (tetracycline transactivator) line, nor those of the Foxg1-lacZ and Foxg1-cre lines maintained on a mixed background, displayed a reduced cortical thickness. Thus Cre recombinase contributes to the radial phenotype, although only in the context of the congenic C57BL/6J background. These observations highlight an important role for Foxg1 in cortical development, reveal noteworthy complexity in the invocation of specific mechanisms underlying phenotypes expressed following genetic manipulations and stress the importance of including appropriate controls of all genotypes.

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Year:  2007        PMID: 17640820      PMCID: PMC2194757          DOI: 10.1016/j.neuroscience.2007.06.012

Source DB:  PubMed          Journal:  Neuroscience        ISSN: 0306-4522            Impact factor:   3.590


  67 in total

1.  Layer specification of transplanted interneurons in developing mouse neocortex.

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2.  Behavioral and neuroanatomical characterization of the Fmr1 knockout mouse.

Authors:  Yann S Mineur; Frans Sluyter; Sanne de Wit; Ben A Oostra; Wim E Crusio
Journal:  Hippocampus       Date:  2002       Impact factor: 3.899

3.  Dual role of brain factor-1 in regulating growth and patterning of the cerebral hemispheres.

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Journal:  Cereb Cortex       Date:  1999-09       Impact factor: 5.357

4.  Behavioral and physiological mouse assays for anxiety: a survey in nine mouse strains.

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Journal:  Behav Brain Res       Date:  2002-11-15       Impact factor: 3.332

5.  Embryonic signaling centers expressing BMP, WNT and FGF proteins interact to pattern the cerebral cortex.

Authors:  Tomomi Shimogori; Victoria Banuchi; Hanyann Y Ng; Jonathan B Strauss; Elizabeth A Grove
Journal:  Development       Date:  2004-11       Impact factor: 6.868

6.  cDNA cloning and structural analysis of the human limbic-system-associated membrane protein (LAMP).

Authors:  A F Pimenta; I Fischer; P Levitt
Journal:  Gene       Date:  1996-05-08       Impact factor: 3.688

7.  Factors in the genetic background suppress the engrailed-1 cerebellar phenotype.

Authors:  Natalie A Bilovocky; Rita R Romito-DiGiacomo; Crystal L Murcia; Stephen M Maricich; Karl Herrup
Journal:  J Neurosci       Date:  2003-06-15       Impact factor: 6.167

8.  Brn-1 and Brn-2 share crucial roles in the production and positioning of mouse neocortical neurons.

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Journal:  Genes Dev       Date:  2002-07-15       Impact factor: 11.361

9.  Dissecting complex genetic interactions that influence the Engrailed-1 limb phenotype.

Authors:  Crystal L Murcia; Natalie A Bilovocky; Karl Herrup
Journal:  Mamm Genome       Date:  2004-05       Impact factor: 2.957

10.  Stressor-provoked behavioral changes in six strains of mice.

Authors:  N Shanks; H Anisman
Journal:  Behav Neurosci       Date:  1988-12       Impact factor: 1.912

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  41 in total

Review 1.  Conditional gene expression in the mouse inner ear using Cre-loxP.

Authors:  Brandon C Cox; Zhiyong Liu; Marcia M Mellado Lagarde; Jian Zuo
Journal:  J Assoc Res Otolaryngol       Date:  2012-04-24

2.  Dynamic FoxG1 expression coordinates the integration of multipolar pyramidal neuron precursors into the cortical plate.

Authors:  Goichi Miyoshi; Gord Fishell
Journal:  Neuron       Date:  2012-06-21       Impact factor: 17.173

3.  FOXG1 Orchestrates Neocortical Organization and Cortico-Cortical Connections.

Authors:  Francesca Cargnin; Ji-Sun Kwon; Sol Katzman; Bin Chen; Jae W Lee; Soo-Kyung Lee
Journal:  Neuron       Date:  2018-11-01       Impact factor: 17.173

4.  HESX1- and TCF3-mediated repression of Wnt/β-catenin targets is required for normal development of the anterior forebrain.

Authors:  Cynthia L Andoniadou; Massimo Signore; Rodrigo M Young; Carles Gaston-Massuet; Stephen W Wilson; Elaine Fuchs; Juan Pedro Martinez-Barbera
Journal:  Development       Date:  2011-10-17       Impact factor: 6.868

5.  Foxg1 haploinsufficiency reduces the population of cortical intermediate progenitor cells: effect of increased p21 expression.

Authors:  Julie A Siegenthaler; Barbara A Tremper-Wells; Michael W Miller
Journal:  Cereb Cortex       Date:  2007-12-07       Impact factor: 5.357

6.  Phenotypic Landscape of Schizophrenia-Associated Genes Defines Candidates and Their Shared Functions.

Authors:  Summer B Thyme; Lindsey M Pieper; Eric H Li; Shristi Pandey; Yiqun Wang; Nathan S Morris; Carrie Sha; Joo Won Choi; Kristian J Herrera; Edward R Soucy; Steve Zimmerman; Owen Randlett; Joel Greenwood; Steven A McCarroll; Alexander F Schier
Journal:  Cell       Date:  2019-03-28       Impact factor: 41.582

7.  Sp8 and COUP-TF1 reciprocally regulate patterning and Fgf signaling in cortical progenitors.

Authors:  Ugo Borello; Mayur Madhavan; Ilya Vilinsky; Andrea Faedo; Alessandra Pierani; John Rubenstein; Kenneth Campbell
Journal:  Cereb Cortex       Date:  2013-01-10       Impact factor: 5.357

8.  The core FOXG1 syndrome phenotype consists of postnatal microcephaly, severe mental retardation, absent language, dyskinesia, and corpus callosum hypogenesis.

Authors:  Fanny Kortüm; Soma Das; Max Flindt; Deborah J Morris-Rosendahl; Irina Stefanova; Amy Goldstein; Denise Horn; Eva Klopocki; Gerhard Kluger; Peter Martin; Anita Rauch; Agathe Roumer; Sulagna Saitta; Laurence E Walsh; Dagmar Wieczorek; Gökhan Uyanik; Kerstin Kutsche; William B Dobyns
Journal:  J Med Genet       Date:  2011-03-25       Impact factor: 6.318

9.  Organization of somatosensory cortex in the Northern grasshopper mouse (Onychomys leucogaster), a predatory rodent.

Authors:  Diana K Sarko; Duncan B Leitch; Isabelle Girard; Robert S Sikes; Kenneth C Catania
Journal:  J Comp Neurol       Date:  2011-01-01       Impact factor: 3.215

10.  Foxg1 promotes olfactory neurogenesis by antagonizing Gdf11.

Authors:  Shimako Kawauchi; Joon Kim; Rosaysela Santos; Hsiao-Huei Wu; Arthur D Lander; Anne L Calof
Journal:  Development       Date:  2009-03-18       Impact factor: 6.868

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