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Targeted Disruption of Mouse Dip2B Leads to Abnormal Lung Development and Prenatal Lethality

Molecular and anatomical functions of mammalian Dip2 family members (Dip2A, Dip2B and Dip2C) during organogenesis are largely unknown. Here, we explored the indispensable role of Dip2B in mouse lung development. Using a LacZ reporter, we explored Dip2B expression during embryogenesis. This study sho...

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Autores principales: Sah, Rajiv Kumar, Ma, Jun, Bah, Fatoumata Binta, Xing, Zhenkai, Adlat, Salah, Oo, Zin Ma, Wang, Yajun, Bahadar, Noor, Bohio, Ameer Ali, Nagi, Farooq Hayel, Feng, Xuechao, Zhang, Luqing, Zheng, Yaowu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7663123/
https://www.ncbi.nlm.nih.gov/pubmed/33153107
http://dx.doi.org/10.3390/ijms21218223
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author Sah, Rajiv Kumar
Ma, Jun
Bah, Fatoumata Binta
Xing, Zhenkai
Adlat, Salah
Oo, Zin Ma
Wang, Yajun
Bahadar, Noor
Bohio, Ameer Ali
Nagi, Farooq Hayel
Feng, Xuechao
Zhang, Luqing
Zheng, Yaowu
author_facet Sah, Rajiv Kumar
Ma, Jun
Bah, Fatoumata Binta
Xing, Zhenkai
Adlat, Salah
Oo, Zin Ma
Wang, Yajun
Bahadar, Noor
Bohio, Ameer Ali
Nagi, Farooq Hayel
Feng, Xuechao
Zhang, Luqing
Zheng, Yaowu
author_sort Sah, Rajiv Kumar
collection PubMed
description Molecular and anatomical functions of mammalian Dip2 family members (Dip2A, Dip2B and Dip2C) during organogenesis are largely unknown. Here, we explored the indispensable role of Dip2B in mouse lung development. Using a LacZ reporter, we explored Dip2B expression during embryogenesis. This study shows that Dip2B expression is widely distributed in various neuronal, myocardial, endothelial, and epithelial cell types during embryogenesis. Target disruption of Dip2b leads to intrauterine growth restriction, defective lung formation and perinatal mortality. Dip2B is crucial for late lung maturation rather than early-branching morphogenesis. The morphological analysis shows that Dip2b loss leads to disrupted air sac formation, interstitium septation and increased cellularity. In BrdU incorporation assay, it is shown that Dip2b loss results in increased cell proliferation at the saccular stage of lung development. RNA-seq analysis reveals that 1431 genes are affected in Dip2b deficient lungs at E18.5 gestation age. Gene ontology analysis indicates cell cycle-related genes are upregulated and immune system related genes are downregulated. KEGG analysis identifies oxidative phosphorylation as the most overrepresented pathways along with the G2/M phase transition pathway. Loss of Dip2b de-represses the expression of alveolar type I and type II molecular markers. Altogether, the study demonstrates an important role of Dip2B in lung maturation and survival.
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spelling pubmed-76631232020-11-14 Targeted Disruption of Mouse Dip2B Leads to Abnormal Lung Development and Prenatal Lethality Sah, Rajiv Kumar Ma, Jun Bah, Fatoumata Binta Xing, Zhenkai Adlat, Salah Oo, Zin Ma Wang, Yajun Bahadar, Noor Bohio, Ameer Ali Nagi, Farooq Hayel Feng, Xuechao Zhang, Luqing Zheng, Yaowu Int J Mol Sci Article Molecular and anatomical functions of mammalian Dip2 family members (Dip2A, Dip2B and Dip2C) during organogenesis are largely unknown. Here, we explored the indispensable role of Dip2B in mouse lung development. Using a LacZ reporter, we explored Dip2B expression during embryogenesis. This study shows that Dip2B expression is widely distributed in various neuronal, myocardial, endothelial, and epithelial cell types during embryogenesis. Target disruption of Dip2b leads to intrauterine growth restriction, defective lung formation and perinatal mortality. Dip2B is crucial for late lung maturation rather than early-branching morphogenesis. The morphological analysis shows that Dip2b loss leads to disrupted air sac formation, interstitium septation and increased cellularity. In BrdU incorporation assay, it is shown that Dip2b loss results in increased cell proliferation at the saccular stage of lung development. RNA-seq analysis reveals that 1431 genes are affected in Dip2b deficient lungs at E18.5 gestation age. Gene ontology analysis indicates cell cycle-related genes are upregulated and immune system related genes are downregulated. KEGG analysis identifies oxidative phosphorylation as the most overrepresented pathways along with the G2/M phase transition pathway. Loss of Dip2b de-represses the expression of alveolar type I and type II molecular markers. Altogether, the study demonstrates an important role of Dip2B in lung maturation and survival. MDPI 2020-11-03 /pmc/articles/PMC7663123/ /pubmed/33153107 http://dx.doi.org/10.3390/ijms21218223 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sah, Rajiv Kumar
Ma, Jun
Bah, Fatoumata Binta
Xing, Zhenkai
Adlat, Salah
Oo, Zin Ma
Wang, Yajun
Bahadar, Noor
Bohio, Ameer Ali
Nagi, Farooq Hayel
Feng, Xuechao
Zhang, Luqing
Zheng, Yaowu
Targeted Disruption of Mouse Dip2B Leads to Abnormal Lung Development and Prenatal Lethality
title Targeted Disruption of Mouse Dip2B Leads to Abnormal Lung Development and Prenatal Lethality
title_full Targeted Disruption of Mouse Dip2B Leads to Abnormal Lung Development and Prenatal Lethality
title_fullStr Targeted Disruption of Mouse Dip2B Leads to Abnormal Lung Development and Prenatal Lethality
title_full_unstemmed Targeted Disruption of Mouse Dip2B Leads to Abnormal Lung Development and Prenatal Lethality
title_short Targeted Disruption of Mouse Dip2B Leads to Abnormal Lung Development and Prenatal Lethality
title_sort targeted disruption of mouse dip2b leads to abnormal lung development and prenatal lethality
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7663123/
https://www.ncbi.nlm.nih.gov/pubmed/33153107
http://dx.doi.org/10.3390/ijms21218223
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