Literature DB >> 27143755

RGMB and neogenin control cell differentiation in the developing olfactory epithelium.

Joseph Wai Keung Kam1, Emilie Dumontier1, Christopher Baim1, Alexandra C Brignall1, David Mendes da Silva2, Mitra Cowan3, Timothy E Kennedy4, Jean-François Cloutier5.   

Abstract

Cellular interactions are key for the differentiation of distinct cell types within developing epithelia, yet the molecular mechanisms engaged in these interactions remain poorly understood. In the developing olfactory epithelium (OE), neural stem/progenitor cells give rise to odorant-detecting olfactory receptor neurons (ORNs) and glial-like sustentacular (SUS) cells. Here, we show in mice that the transmembrane receptor neogenin (NEO1) and its membrane-bound ligand RGMB control the balance of neurons and glial cells produced in the OE. In this layered epithelium, neogenin is expressed in progenitor cells, while RGMB is restricted to adjacent newly born ORNs. Ablation of Rgmb via gene-targeting increases the number of dividing progenitor cells in the OE and leads to supernumerary SUS cells. Neogenin loss-of-function phenocopies these effects observed in Rgmb(-/-) mice, supporting the proposal that RGMB-neogenin signaling regulates progenitor cell numbers and SUS cell production. Interestingly, Neo1(-/-) mice also exhibit increased apoptosis of ORNs, implicating additional ligands in the neogenin-dependent survival of ORNs. Thus, our results indicate that RGMB-neogenin-mediated cell-cell interactions between newly born neurons and progenitor cells control the ratio of glia and neurons produced in the OE.
© 2016. Published by The Company of Biologists Ltd.

Entities:  

Keywords:  Cellular differentiation; Gliogenesis; Mouse; Neogenin; Neurogenesis; Olfactory epithelium; RGM

Mesh:

Substances:

Year:  2016        PMID: 27143755     DOI: 10.1242/dev.118638

Source DB:  PubMed          Journal:  Development        ISSN: 0950-1991            Impact factor:   6.868


  15 in total

1.  5HTR3A-driven GFP labels immature olfactory sensory neurons.

Authors:  Thomas E Finger; Dianna L Bartel; Nicole Shultz; Noah B Goodson; Charles A Greer
Journal:  J Comp Neurol       Date:  2017-02-27       Impact factor: 3.215

2.  Diverse spinal commissural neuron populations revealed by fate mapping and molecular profiling using a novel Robo3Cre mouse.

Authors:  Alastair J Tulloch; Shaun Teo; Brigett V Carvajal; Marc Tessier-Lavigne; Alexander Jaworski
Journal:  J Comp Neurol       Date:  2019-06-14       Impact factor: 3.215

3.  Distinct functions for netrin 1 in chicken and murine semicircular canal morphogenesis.

Authors:  Allison M Nishitani; Sho Ohta; Andrea R Yung; Tony Del Rio; Michael I Gordon; Victoria E Abraira; Evelyn C Avilés; Gary C Schoenwolf; Donna M Fekete; Lisa V Goodrich
Journal:  Development       Date:  2017-08-29       Impact factor: 6.868

4.  Optimizing Nervous System-Specific Gene Targeting with Cre Driver Lines: Prevalence of Germline Recombination and Influencing Factors.

Authors:  Lin Luo; Mateusz C Ambrozkiewicz; Fritz Benseler; Cui Chen; Emilie Dumontier; Susanne Falkner; Elisabetta Furlanis; Andrea M Gomez; Naosuke Hoshina; Wei-Hsiang Huang; Mary Anne Hutchison; Yu Itoh-Maruoka; Laura A Lavery; Wei Li; Tomohiko Maruo; Junko Motohashi; Emily Ling-Lin Pai; Kenneth A Pelkey; Ariane Pereira; Thomas Philips; Jennifer L Sinclair; Jeff A Stogsdill; Lisa Traunmüller; Jiexin Wang; Joke Wortel; Wenjia You; Nashat Abumaria; Kevin T Beier; Nils Brose; Harold A Burgess; Constance L Cepko; Jean-François Cloutier; Cagla Eroglu; Sandra Goebbels; Pascal S Kaeser; Jeremy N Kay; Wei Lu; Liqun Luo; Kenji Mandai; Chris J McBain; Klaus-Armin Nave; Marco A M Prado; Vania F Prado; Jeffrey Rothstein; John L R Rubenstein; Gesine Saher; Kenji Sakimura; Joshua R Sanes; Peter Scheiffele; Yoshimi Takai; Hisashi Umemori; Matthijs Verhage; Michisuke Yuzaki; Huda Yahya Zoghbi; Hiroshi Kawabe; Ann Marie Craig
Journal:  Neuron       Date:  2020-02-05       Impact factor: 17.173

Review 5.  RGMs: Structural Insights, Molecular Regulation, and Downstream Signaling.

Authors:  Christian Siebold; Toshihide Yamashita; Philippe P Monnier; Bernhard K Mueller; R Jeroen Pasterkamp
Journal:  Trends Cell Biol       Date:  2016-12-19       Impact factor: 20.808

6.  Hippocampal astrocytic neogenin regulating glutamate uptake, a critical pathway for preventing epileptic response.

Authors:  Dong Sun; Zhi-Bing Tan; Xiang-Dong Sun; Zhi-Peng Liu; Wen-Bing Chen; Leena Milibari; Xiao Ren; Ling-Ling Yao; Daehoon Lee; Chen Shen; Jin-Xiu Pan; Zhi-Hui Huang; Lin Mei; Wen-Cheng Xiong
Journal:  Proc Natl Acad Sci U S A       Date:  2021-04-20       Impact factor: 11.205

7.  Chitinase-Like Protein Ym2 (Chil4) Regulates Regeneration of the Olfactory Epithelium via Interaction with Inflammation.

Authors:  Li Wang; Wenwen Ren; Xuewen Li; Xiujuan Zhang; Huikai Tian; Janardhan P Bhattarai; Rosemary C Challis; Anderson C Lee; Shaohua Zhao; Hongmeng Yu; Minghong Ma; Yiqun Yu
Journal:  J Neurosci       Date:  2021-05-20       Impact factor: 6.167

8.  Neogenin, a regulator of adult hippocampal neurogenesis, prevents depressive-like behavior.

Authors:  Dong Sun; Xiang-Dong Sun; Lu Zhao; Dae-Hoon Lee; Jin-Xia Hu; Fu-Lei Tang; Jin-Xiu Pan; Lin Mei; Xiao-Juan Zhu; Wen-Cheng Xiong
Journal:  Cell Death Dis       Date:  2018-01-08       Impact factor: 8.469

9.  Sox2 is required for olfactory pit formation and olfactory neurogenesis through BMP restriction and Hes5 upregulation.

Authors:  Tamilarasan K Panaliappan; Walter Wittmann; Vijay K Jidigam; Sara Mercurio; Jessica A Bertolini; Soufien Sghari; Raj Bose; Cedric Patthey; Silvia K Nicolis; Lena Gunhaga
Journal:  Development       Date:  2018-01-19       Impact factor: 6.868

10.  Role of Rb during Neurogenesis and Axonal Guidance in the Developing Olfactory System.

Authors:  Carine Jaafar; Saad Omais; Sawsan Al Lafi; Nadim El Jamal; Mohammad Noubani; Larissa Skaf; Noël Ghanem
Journal:  Front Mol Neurosci       Date:  2016-09-09       Impact factor: 5.639

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