Literature DB >> 23382203

Ikaros promotes early-born neuronal fates in the cerebral cortex.

Jessica M Alsiö1, Basile Tarchini, Michel Cayouette, Frederick J Livesey.   

Abstract

During cerebral cortex development, a series of projection neuron types is generated in a fixed temporal order. In Drosophila neuroblasts, the transcription factor hunchback encodes first-born identity within neural lineages. One of its mammalian homologs, Ikaros, was recently reported to play an equivalent role in retinal progenitor cells, raising the question as to whether Ikaros/Hunchback proteins could be general factors regulating the development of early-born fates throughout the nervous system. Ikaros is also expressed in progenitor cells of the mouse cerebral cortex, and this expression is highest during the early stages of neurogenesis and thereafter decreases over time. Transgenic mice with sustained Ikaros expression in cortical progenitor cells and neurons have developmental defects, including displaced progenitor cells within the cortical plate, increased early neural differentiation, and disrupted cortical lamination. Sustained Ikaros expression results in a prolonged period of generation of deep layer neurons into the stages when, normally, only late-born upper layer neurons are generated, as well as a delayed production of late-born neurons. Consequently, more early-born and fewer late-born neurons are present in the cortex of these mice at birth. This phenotype was observed in all parts of the cortex, including those with minimal structural defects, demonstrating that it is not secondary to abnormalities in cortical morphogenesis. These data suggest that Ikaros plays a similar role in regulating early temporal fates in the mammalian cerebral cortex as Ikaros/Hunchback proteins do in the Drosophila nerve cord.

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Year:  2013        PMID: 23382203      PMCID: PMC3581915          DOI: 10.1073/pnas.1215707110

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


  66 in total

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Authors:  Robert F Hevner; Ray A M Daza; John L R Rubenstein; Henk Stunnenberg; Jaime F Olavarria; Chris Englund
Journal:  Dev Neurosci       Date:  2003 Mar-Aug       Impact factor: 2.984

2.  Regulation of neuroblast competence in Drosophila.

Authors:  Bret J Pearson; Chris Q Doe
Journal:  Nature       Date:  2003-10-09       Impact factor: 49.962

3.  Basic local alignment search tool.

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Journal:  Science       Date:  1991-10-11       Impact factor: 47.728

5.  The Ikaros gene encodes a family of functionally diverse zinc finger DNA-binding proteins.

Authors:  A Molnár; K Georgopoulos
Journal:  Mol Cell Biol       Date:  1994-12       Impact factor: 4.272

6.  The Caenorhabditis elegans hunchback-like gene lin-57/hbl-1 controls developmental time and is regulated by microRNAs.

Authors:  Juan E Abrahante; Aric L Daul; Ming Li; Mandy L Volk; Jason M Tennessen; Eric A Miller; Ann E Rougvie
Journal:  Dev Cell       Date:  2003-05       Impact factor: 12.270

7.  The C elegans hunchback homolog, hbl-1, controls temporal patterning and is a probable microRNA target.

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Journal:  Dev Cell       Date:  2003-05       Impact factor: 12.270

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Authors:  Peter Papathanasiou; Andrew C Perkins; Bradley S Cobb; Roger Ferrini; Rupa Sridharan; Gerard F Hoyne; Keats A Nelms; Stephen T Smale; Christopher C Goodnow
Journal:  Immunity       Date:  2003-07       Impact factor: 31.745

9.  The Ikaros gene is required for the development of all lymphoid lineages.

Authors:  K Georgopoulos; M Bigby; J H Wang; A Molnar; P Wu; S Winandy; A Sharpe
Journal:  Cell       Date:  1994-10-07       Impact factor: 41.582

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Authors:  S Winandy; P Wu; K Georgopoulos
Journal:  Cell       Date:  1995-10-20       Impact factor: 41.582

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  40 in total

Review 1.  Temporal fate specification and neural progenitor competence during development.

Authors:  Minoree Kohwi; Chris Q Doe
Journal:  Nat Rev Neurosci       Date:  2013-12       Impact factor: 34.870

2.  Neurog2 and Ascl1 together regulate a postmitotic derepression circuit to govern laminar fate specification in the murine neocortex.

Authors:  Daniel J Dennis; Grey Wilkinson; Saiqun Li; Rajiv Dixit; Lata Adnani; Anjali Balakrishnan; Sisu Han; Christopher Kovach; Nicole Gruenig; Deborah M Kurrasch; Richard H Dyck; Carol Schuurmans
Journal:  Proc Natl Acad Sci U S A       Date:  2017-06-05       Impact factor: 11.205

Review 3.  Timing temporal transitions during brain development.

Authors:  Anthony M Rossi; Vilaiwan M Fernandes; Claude Desplan
Journal:  Curr Opin Neurobiol       Date:  2016-12-13       Impact factor: 6.627

Review 4.  Subtype Specification of Cerebral Cortical Neurons in Their Immature Stages.

Authors:  Koji Oishi; Kazunori Nakajima
Journal:  Neurochem Res       Date:  2017-11-28       Impact factor: 3.996

5.  Common temporal identity factors regulate neuronal diversity in fly ventral nerve cord and mouse retina.

Authors:  Nikolaos Konstantinides; Anthony M Rossi; Claude Desplan
Journal:  Neuron       Date:  2015-02-04       Impact factor: 17.173

6.  A conserved regulatory logic controls temporal identity in mouse neural progenitors.

Authors:  Pierre Mattar; Johan Ericson; Seth Blackshaw; Michel Cayouette
Journal:  Neuron       Date:  2015-02-04       Impact factor: 17.173

7.  Drosophila embryonic type II neuroblasts: origin, temporal patterning, and contribution to the adult central complex.

Authors:  Kathleen T Walsh; Chris Q Doe
Journal:  Development       Date:  2017-11-20       Impact factor: 6.868

8.  Sliced Human Cortical Organoids for Modeling Distinct Cortical Layer Formation.

Authors:  Xuyu Qian; Yijing Su; Christopher D Adam; Andre U Deutschmann; Sarshan R Pather; Ethan M Goldberg; Kenong Su; Shiying Li; Lu Lu; Fadi Jacob; Phuong T T Nguyen; Sooyoung Huh; Ahmet Hoke; Sarah E Swinford-Jackson; Zhexing Wen; Xiaosong Gu; R Christopher Pierce; Hao Wu; Lisa A Briand; H Isaac Chen; John A Wolf; Hongjun Song; Guo-Li Ming
Journal:  Cell Stem Cell       Date:  2020-03-05       Impact factor: 24.633

9.  Conserved microRNA pathway regulates developmental timing of retinal neurogenesis.

Authors:  Anna La Torre; Sean Georgi; Thomas A Reh
Journal:  Proc Natl Acad Sci U S A       Date:  2013-06-10       Impact factor: 11.205

Review 10.  Retinal Ganglion Cell Replacement: Current Status and Challenges Ahead.

Authors:  Adam M Miltner; Anna La Torre
Journal:  Dev Dyn       Date:  2018-10-11       Impact factor: 3.780

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