Literature DB >> 21998302

The orchestration of mammalian tissue morphogenesis through a series of coherent feed-forward loops.

Qing Xie1, Ales Cvekl.   

Abstract

Tissue morphogenesis requires intricate temporal and spatial control of gene expression that is executed through specific gene regulatory networks (GRNs). GRNs are comprised from individual subcircuits of different levels of complexity. An important question is to elucidate the mutual relationship between those genes encoding DNA-binding factors that trigger the subcircuit with those that play major "later" roles during terminal differentiation via expression of specific genes that constitute the phenotype of individual tissues. The ocular lens is a classical model system to study tissue morphogenesis. Pax6 is essential for both lens placode formation and subsequent stages of lens morphogenesis, whereas c-Maf controls terminal differentiation of lens fibers, including regulation of crystallins, key lens structural proteins required for its transparency and refraction. Here, we show that Pax6 directly regulates c-Maf expression during lens development. A 1.3-kb c-Maf promoter with a 1.6-kb upstream enhancer (CR1) recapitulated the endogenous c-Maf expression pattern in lens and retinal pigmented epithelium. ChIP assays revealed binding of Pax6 and c-Maf to multiple regions of the c-Maf locus in lens chromatin. To predict functional Pax6-binding sites, nine novel variants of Pax6 DNA-binding motifs were identified and characterized. Two of these motifs predicted a pair of Pax6-binding sites in the CR1. Mutagenesis of these Pax6-binding sites inactivated transgenic expression in the lens but not in retinal pigmented epithelium. These data establish a novel regulatory role for Pax6 during lens development, link together the Pax6/c-Maf/crystallin regulatory network, and suggest a novel type of GRN subcircuit that controls a major part of embryonic lens development.

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Year:  2011        PMID: 21998302      PMCID: PMC3234836          DOI: 10.1074/jbc.M111.264580

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  81 in total

Review 1.  Getting your Pax straight: Pax proteins in development and disease.

Authors:  Neil Chi; Jonathan A Epstein
Journal:  Trends Genet       Date:  2002-01       Impact factor: 11.639

2.  Core transcriptional regulatory circuitry in human embryonic stem cells.

Authors:  Laurie A Boyer; Tong Ihn Lee; Megan F Cole; Sarah E Johnstone; Stuart S Levine; Jacob P Zucker; Matthew G Guenther; Roshan M Kumar; Heather L Murray; Richard G Jenner; David K Gifford; Douglas A Melton; Rudolf Jaenisch; Richard A Young
Journal:  Cell       Date:  2005-09-23       Impact factor: 41.582

Review 3.  Autoregulation of eukaryotic transcription factors.

Authors:  E Bateman
Journal:  Prog Nucleic Acid Res Mol Biol       Date:  1998

4.  ARK5 is transcriptionally regulated by the Large-MAF family and mediates IGF-1-induced cell invasion in multiple myeloma: ARK5 as a new molecular determinant of malignant multiple myeloma.

Authors:  Atsushi Suzuki; Shinsuke Iida; Miyuki Kato-Uranishi; Emi Tajima; Fenghuang Zhan; Ichiro Hanamura; Yongsheng Huang; Tsutomu Ogura; Satoru Takahashi; Ryuzo Ueda; Bart Barlogie; John Shaughnessy; Hiroyasu Esumi
Journal:  Oncogene       Date:  2005-10-20       Impact factor: 9.867

5.  c-Maf plays a crucial role for the definitive erythropoiesis that accompanies erythroblastic island formation in the fetal liver.

Authors:  Manabu Kusakabe; Kazuteru Hasegawa; Michito Hamada; Megumi Nakamura; Takayuki Ohsumi; Hirona Suzuki; Mai Thi Nhu Tran; Takashi Kudo; Kazuhiko Uchida; Haruhiko Ninomiya; Shigeru Chiba; Satoru Takahashi
Journal:  Blood       Date:  2011-05-31       Impact factor: 22.113

Review 6.  Emerging properties of animal gene regulatory networks.

Authors:  Eric H Davidson
Journal:  Nature       Date:  2010-12-16       Impact factor: 49.962

7.  Transcriptional regulation of mouse alphaB- and gammaF-crystallin genes in lens: opposite promoter-specific interactions between Pax6 and large Maf transcription factors.

Authors:  Ying Yang; Bharesh K Chauhan; Kveta Cveklova; Ales Cvekl
Journal:  J Mol Biol       Date:  2004-11-19       Impact factor: 5.469

8.  Functional properties of natural human PAX6 and PAX6(5a) mutants.

Authors:  Bharesh K Chauhan; Ying Yang; Kveta Cveklová; Ales Cvekl
Journal:  Invest Ophthalmol Vis Sci       Date:  2004-02       Impact factor: 4.799

9.  Pax-6, a murine paired box gene, is expressed in the developing CNS.

Authors:  C Walther; P Gruss
Journal:  Development       Date:  1991-12       Impact factor: 6.868

10.  The role of Pax-6 in eye and nasal development.

Authors:  J C Grindley; D R Davidson; R E Hill
Journal:  Development       Date:  1995-05       Impact factor: 6.868

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  31 in total

1.  Regulation of c-Maf and αA-Crystallin in Ocular Lens by Fibroblast Growth Factor Signaling.

Authors:  Qing Xie; Rebecca McGreal; Raven Harris; Chun Y Gao; Wei Liu; Lixing W Reneker; Linda S Musil; Ales Cvekl
Journal:  J Biol Chem       Date:  2015-12-30       Impact factor: 5.157

2.  Differential effect of cataract-associated mutations in MAF on transactivation of MAF target genes.

Authors:  Vanita Vanita; Gao Guo; Daljit Singh; Claus-Eric Ott; Peter N Robinson
Journal:  Mol Cell Biochem       Date:  2014-07-27       Impact factor: 3.396

3.  Gene profiling involved in fate determination of salivary gland type in mouse embryogenesis.

Authors:  Nirpesh Adhikari; Sanjiv Neupane; Jiyeon Roh; Yam Prasad Aryal; Eui-Seon Lee; Jae-Kwang Jung; Hitoshi Yamamoto; Youngkyun Lee; Wern-Joo Sohn; Jae-Young Kim; Ji-Youn Kim
Journal:  Genes Genomics       Date:  2018-06-22       Impact factor: 1.839

4.  Functional dissection of the paired domain of Pax6 reveals molecular mechanisms of coordinating neurogenesis and proliferation.

Authors:  Tessa Walcher; Qing Xie; Jian Sun; Martin Irmler; Johannes Beckers; Timucin Öztürk; Dierk Niessing; Anastassia Stoykova; Ales Cvekl; Jovica Ninkovic; Magdalena Götz
Journal:  Development       Date:  2013-03       Impact factor: 6.868

Review 5.  Molecular mechanisms governing differential robustness of development and environmental responses in plants.

Authors:  Jennifer Lachowiec; Christine Queitsch; Daniel J Kliebenstein
Journal:  Ann Bot       Date:  2015-10-14       Impact factor: 4.357

6.  Regulation of mouse lens maturation and gene expression by Krüppel-like factor 4.

Authors:  Divya Gupta; Stephen A K Harvey; Doreswamy Kenchegowda; Sudha Swamynathan; Shivalingappa K Swamynathan
Journal:  Exp Eye Res       Date:  2013-09-25       Impact factor: 3.467

7.  A developmental gene regulatory network for C. elegans anchor cell invasion.

Authors:  Taylor N Medwig-Kinney; Jayson J Smith; Nicholas J Palmisano; Sujata Tank; Wan Zhang; David Q Matus
Journal:  Development       Date:  2020-01-02       Impact factor: 6.868

Review 8.  Signaling and Gene Regulatory Networks in Mammalian Lens Development.

Authors:  Ales Cvekl; Xin Zhang
Journal:  Trends Genet       Date:  2017-08-31       Impact factor: 11.639

9.  Proteome-transcriptome analysis and proteome remodeling in mouse lens epithelium and fibers.

Authors:  Yilin Zhao; Phillip A Wilmarth; Catherine Cheng; Saima Limi; Velia M Fowler; Deyou Zheng; Larry L David; Ales Cvekl
Journal:  Exp Eye Res       Date:  2018-10-22       Impact factor: 3.467

10.  Pax6 regulates gene expression in the vertebrate lens through miR-204.

Authors:  Ohad Shaham; Karen Gueta; Eyal Mor; Pazit Oren-Giladi; Dina Grinberg; Qing Xie; Ales Cvekl; Noam Shomron; Noa Davis; Maya Keydar-Prizant; Shaul Raviv; Metsada Pasmanik-Chor; Rachel E Bell; Carmit Levy; Raffaella Avellino; Sandro Banfi; Ivan Conte; Ruth Ashery-Padan
Journal:  PLoS Genet       Date:  2013-03-14       Impact factor: 5.917

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