Literature DB >> 28595297

FGFR2 mutations in bent bone dysplasia syndrome activate nucleolar stress and perturb cell fate determination.

Cynthia L Neben1,2, Creighton T Tuzon1,2, Xiaojing Mao1,2, Fides D Lay2, Amy E Merrill1,2.   

Abstract

Fibroblast Growth Factor (FGF) signaling promotes self-renewal in progenitor cells by encouraging proliferation and inhibiting cellular senescence. Yet, these beneficial effects can be hijacked by disease-causing mutations in FGF receptor (FGFR) during embryogenesis. By studying dominant FGFR2 mutations that are germline in bent bone dysplasia syndrome (BBDS), we reveal a mechanistic connection between FGFR2, ribosome biogenesis, and cellular stress that links cell fate determination to disease pathology. We previously showed that FGFR2 mutations in BBDS, which amplify nucleolar targeting of FGFR2, activate ribosomal DNA (rDNA) transcription and delay differentiation in osteoprogenitor cells and patient-derived bone. Here we find that the BBDS mutations augment the ability of FGFR2 to recruit histone-remodeling factors that epigenetically activate transcriptionally silent rDNA. Nucleolar morphology is controlled by chromatin structure, and the high levels of euchromatic rDNA induced by the BBDS mutations direct nucleolar disorganization, alter ribosome biogenesis, and activate the Rpl11-Mdm2-p53 nucleolar stress response pathway. Inhibition of p53 in cells expressing the FGFR2 mutations in BBDS rescues delayed osteoblast differentiation, suggesting that p53 activation is an essential pathogenic factor in, and potential therapeutic target for, BBDS. This work establishes rDNA as developmentally regulated loci that receive direct input from FGF signaling to balance self-renewal and cell fate determination.
© The Author 2017. Published by Oxford University Press. All rights reserved. For Permissions, please email: journals.permissions@oup.com.

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Year:  2017        PMID: 28595297      PMCID: PMC5886181          DOI: 10.1093/hmg/ddx209

Source DB:  PubMed          Journal:  Hum Mol Genet        ISSN: 0964-6906            Impact factor:   6.150


  104 in total

1.  The chromatin remodeling complex NoRC targets HDAC1 to the ribosomal gene promoter and represses RNA polymerase I transcription.

Authors:  Yonggang Zhou; Raffaella Santoro; Ingrid Grummt
Journal:  EMBO J       Date:  2002-09-02       Impact factor: 11.598

2.  Mitotic occupancy and lineage-specific transcriptional control of rRNA genes by Runx2.

Authors:  Daniel W Young; Mohammad Q Hassan; Jitesh Pratap; Mario Galindo; Sayyed K Zaidi; Suk-hee Lee; Xiaoqing Yang; Ronglin Xie; Amjad Javed; Jean M Underwood; Paul Furcinitti; Anthony N Imbalzano; Sheldon Penman; Jeffrey A Nickerson; Martin A Montecino; Jane B Lian; Janet L Stein; Andre J van Wijnen; Gary S Stein
Journal:  Nature       Date:  2007-01-25       Impact factor: 49.962

3.  Functional cooperativity between transcription factors UBF1 and SL1 mediates human ribosomal RNA synthesis.

Authors:  S P Bell; R M Learned; H M Jantzen; R Tjian
Journal:  Science       Date:  1988-09-02       Impact factor: 47.728

4.  rDNA transcription and pre-rRNA processing during the differentiation of a mouse myoblast cell line.

Authors:  L H Bowman
Journal:  Dev Biol       Date:  1987-01       Impact factor: 3.582

5.  Stress-mediated nuclear stabilization of p53 is regulated by ubiquitination and importin-alpha3 binding.

Authors:  N D Marchenko; W Hanel; D Li; K Becker; N Reich; U M Moll
Journal:  Cell Death Differ       Date:  2009-11-20       Impact factor: 15.828

6.  Disruption of the nucleolus mediates stabilization of p53 in response to DNA damage and other stresses.

Authors:  Carlos P Rubbi; Jo Milner
Journal:  EMBO J       Date:  2003-11-17       Impact factor: 11.598

7.  Activation of RNA polymerase I transcription by cockayne syndrome group B protein and histone methyltransferase G9a.

Authors:  Xuejun Yuan; Weijun Feng; Axel Imhof; Ingrid Grummt; Yonggang Zhou
Journal:  Mol Cell       Date:  2007-08-17       Impact factor: 17.970

8.  Osteoblast differentiation and skeletal development are regulated by Mdm2-p53 signaling.

Authors:  Christopher J Lengner; Heather A Steinman; James Gagnon; Thomas W Smith; Janet E Henderson; Barbara E Kream; Gary S Stein; Jane B Lian; Stephen N Jones
Journal:  J Cell Biol       Date:  2006-03-13       Impact factor: 10.539

9.  Downregulation of rRNA transcription triggers cell differentiation.

Authors:  Yuki Hayashi; Takao Kuroda; Hiroyuki Kishimoto; Changshan Wang; Atsushi Iwama; Keiji Kimura
Journal:  PLoS One       Date:  2014-05-30       Impact factor: 3.240

10.  Involvement of human ribosomal proteins in nucleolar structure and p53-dependent nucleolar stress.

Authors:  Emilien Nicolas; Pascaline Parisot; Celina Pinto-Monteiro; Roxane de Walque; Christophe De Vleeschouwer; Denis L J Lafontaine
Journal:  Nat Commun       Date:  2016-06-06       Impact factor: 14.919

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Authors:  Creighton T Tuzon; Diana Rigueur; Amy E Merrill
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2.  Dynamic regulation and requirement for ribosomal RNA transcription during mammalian development.

Authors:  Karla T Falcon; Kristin E N Watt; Soma Dash; Ruonan Zhao; Daisuke Sakai; Emma L Moore; Sharien Fitriasari; Melissa Childers; Mihaela E Sardiu; Selene Swanson; Dai Tsuchiya; Jay Unruh; George Bugarinovic; Lin Li; Rita Shiang; Annita Achilleos; Jill Dixon; Michael J Dixon; Paul A Trainor
Journal:  Proc Natl Acad Sci U S A       Date:  2022-07-26       Impact factor: 12.779

3.  Pulling back the curtain: The hidden functions of receptor tyrosine kinases in development.

Authors:  James F Clark; Philippe M Soriano
Journal:  Curr Top Dev Biol       Date:  2022-02-28       Impact factor: 5.242

4.  tp53-dependent and independent signaling underlies the pathogenesis and possible prevention of Acrofacial Dysostosis-Cincinnati type.

Authors:  Kristin E N Watt; Cynthia L Neben; Shawn Hall; Amy E Merrill; Paul A Trainor
Journal:  Hum Mol Genet       Date:  2018-08-01       Impact factor: 6.150

5.  Integrated Transcriptome and Network Analysis Reveals Spatiotemporal Dynamics of Calvarial Suturogenesis.

Authors:  Greg Holmes; Ana S Gonzalez-Reiche; Na Lu; Xianxiao Zhou; Joshua Rivera; Divya Kriti; Robert Sebra; Anthony A Williams; Michael J Donovan; S Steven Potter; Dalila Pinto; Bin Zhang; Harm van Bakel; Ethylin Wang Jabs
Journal:  Cell Rep       Date:  2020-07-07       Impact factor: 9.423

Review 6.  Fibroblast growth factors signaling in bone metastasis.

Authors:  Estefania Labanca; Elba S Vazquez; Paul G Corn; Justin M Roberts; Fen Wang; Christopher J Logothetis; Nora M Navone
Journal:  Endocr Relat Cancer       Date:  2020-07       Impact factor: 5.678

7.  Nucleolin loss of function leads to aberrant Fibroblast Growth Factor signaling and craniofacial anomalies.

Authors:  Soma Dash; Paul A Trainor
Journal:  Development       Date:  2022-06-28       Impact factor: 6.862

Review 8.  FGF/FGFR signaling in health and disease.

Authors:  Yangli Xie; Nan Su; Jing Yang; Qiaoyan Tan; Shuo Huang; Min Jin; Zhenhong Ni; Bin Zhang; Dali Zhang; Fengtao Luo; Hangang Chen; Xianding Sun; Jian Q Feng; Huabing Qi; Lin Chen
Journal:  Signal Transduct Target Ther       Date:  2020-09-02
  8 in total

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