Literature DB >> 36214448

Decoding the IGF1 signaling gene regulatory network behind alveologenesis from a mouse model of bronchopulmonary dysplasia.

Feng Gao1, Changgong Li1, Susan M Smith1, Neil Peinado1, Golenaz Kohbodi1, Evelyn Tran2,3, Yong-Hwee Eddie Loh4, Wei Li5, Zea Borok6, Parviz Minoo1,7.   

Abstract

Lung development is precisely controlled by underlying gene regulatory networks (GRN). Disruption of genes in the network can interrupt normal development and cause diseases such as bronchopulmonary dysplasia (BPD) - a chronic lung disease in preterm infants with morbid and sometimes lethal consequences characterized by lung immaturity and reduced alveolarization. Here, we generated a transgenic mouse exhibiting a moderate severity BPD phenotype by blocking IGF1 signaling in secondary crest myofibroblasts (SCMF) at the onset of alveologenesis. Using approaches mirroring the construction of the model GRN in sea urchin's development, we constructed the IGF1 signaling network underlying alveologenesis using this mouse model that phenocopies BPD. The constructed GRN, consisting of 43 genes, provides a bird's eye view of how the genes downstream of IGF1 are regulatorily connected. The GRN also reveals a mechanistic interpretation of how the effects of IGF1 signaling are transduced within SCMF from its specification genes to its effector genes and then from SCMF to its neighboring alveolar epithelial cells with WNT5A and FGF10 signaling as the bridge. Consistently, blocking WNT5A signaling in mice phenocopies BPD as inferred by the network. A comparative study on human samples suggests that a GRN of similar components and wiring underlies human BPD. Our network view of alveologenesis is transforming our perspective to understand and treat BPD. This new perspective calls for the construction of the full signaling GRN underlying alveologenesis, upon which targeted therapies for this neonatal chronic lung disease can be viably developed.
© 2022, Gao et al.

Entities:  

Keywords:  IGF1 signaling; alveologenesis; bronchopulmonary dysplasia; cell biology; developmental GRN; developmental biology; human; mouse

Mesh:

Substances:

Year:  2022        PMID: 36214448      PMCID: PMC9581530          DOI: 10.7554/eLife.77522

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.713


  87 in total

1.  Genomic spectra of biliary tract cancer.

Authors:  Hiromi Nakamura; Yasuhito Arai; Yasushi Totoki; Tomoki Shirota; Asmaa Elzawahry; Mamoru Kato; Natsuko Hama; Fumie Hosoda; Tomoko Urushidate; Shoko Ohashi; Nobuyoshi Hiraoka; Hidenori Ojima; Kazuaki Shimada; Takuji Okusaka; Tomoo Kosuge; Shinichi Miyagawa; Tatsuhiro Shibata
Journal:  Nat Genet       Date:  2015-08-10       Impact factor: 38.330

Review 2.  A gene regulatory network orchestrates neural crest formation.

Authors:  Tatjana Sauka-Spengler; Marianne Bronner-Fraser
Journal:  Nat Rev Mol Cell Biol       Date:  2008-06-04       Impact factor: 94.444

3.  Hyperoxia Injury in the Developing Lung Is Mediated by Mesenchymal Expression of Wnt5A.

Authors:  Jennifer M S Sucre; Kasey C Vickers; John T Benjamin; Erin J Plosa; Christopher S Jetter; Alissa Cutrone; Meaghan Ransom; Zachary Anderson; Quanhu Sheng; Benjamin A Fensterheim; Namasivayam Ambalavanan; Bryan Millis; Ethan Lee; Andries Zijlstra; Melanie Königshoff; Timothy S Blackwell; Susan H Guttentag
Journal:  Am J Respir Crit Care Med       Date:  2020-05-15       Impact factor: 21.405

4.  Age-determined expression of priming protease TMPRSS2 and localization of SARS-CoV-2 in lung epithelium.

Authors:  Bryce A Schuler; A Christian Habermann; Erin J Plosa; Chase J Taylor; Christopher Jetter; Nicholas M Negretti; Meghan E Kapp; John T Benjamin; Peter Gulleman; David S Nichols; Lior Z Braunstein; Alice Hackett; Michael Koval; Susan H Guttentag; Timothy S Blackwell; Steven A Webber; Nicholas E Banovich; Jonathan A Kropski; Jennifer Ms Sucre
Journal:  J Clin Invest       Date:  2021-01-04       Impact factor: 14.808

5.  Insulin-like growth factor-I stimulates differentiation of ATII cells to ATI-like cells through activation of Wnt5a.

Authors:  Manik C Ghosh; Vijay Gorantla; Patrudu S Makena; Charlean Luellen; Scott E Sinclair; Andreas Schwingshackl; Christopher M Waters
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2013-05-24       Impact factor: 5.464

6.  A draft network of ligand-receptor-mediated multicellular signalling in human.

Authors:  Jordan A Ramilowski; Tatyana Goldberg; Jayson Harshbarger; Edda Kloppmann; Edda Kloppman; Marina Lizio; Venkata P Satagopam; Masayoshi Itoh; Hideya Kawaji; Piero Carninci; Burkhard Rost; Alistair R R Forrest
Journal:  Nat Commun       Date:  2015-07-22       Impact factor: 14.919

7.  Quantitative lung morphology: semi-automated measurement of mean linear intercept.

Authors:  George Crowley; Sophia Kwon; Erin J Caraher; Syed Hissam Haider; Rachel Lam; Prag Batra; Daniel Melles; Mengling Liu; Anna Nolan
Journal:  BMC Pulm Med       Date:  2019-11-09       Impact factor: 3.317

8.  IGF1R controls mechanosignaling in myofibroblasts required for pulmonary alveologenesis.

Authors:  Hua He; John Snowball; Fei Sun; Cheng-Lun Na; Jeffrey A Whitsett
Journal:  JCI Insight       Date:  2021-03-22

9.  Transcriptional programs controlling perinatal lung maturation.

Authors:  Yan Xu; Yanhua Wang; Valérie Besnard; Machiko Ikegami; Susan E Wert; Caleb Heffner; Stephen A Murray; Leah Rae Donahue; Jeffrey A Whitsett
Journal:  PLoS One       Date:  2012-08-20       Impact factor: 3.240

Review 10.  Insulin-like growth factor 1 has multisystem effects on foetal and preterm infant development.

Authors:  Ann Hellström; David Ley; Ingrid Hansen-Pupp; Boubou Hallberg; Chatarina Löfqvist; Linda van Marter; Mirjam van Weissenbruch; Luca A Ramenghi; Kathryn Beardsall; David Dunger; Anna-Lena Hård; Lois E H Smith
Journal:  Acta Paediatr       Date:  2016-03-08       Impact factor: 2.299

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.