UPF2 is a critical regulator of liver development, function and regeneration.

<h4>Background</h4>Nonsense-mediated mRNA decay (NMD) is a post-transcriptional RNA surveillance process that facilitates the recognition and destruction of mRNAs bearing premature terminations codons (PTCs). Such PTC-containing (PTC+) mRNAs may arise from different processes, including...

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Main Authors: Lina A Thoren, Gitte A Nørgaard, Joachim Weischenfeldt, Johannes Waage, Janus S Jakobsen, Inge Damgaard, Frida C Bergström, Anna M Blom, Rehannah Borup, Hanne Cathrine Bisgaard, Bo T Porse
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2010-07-01
Series:PLoS ONE
Online Access:https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/20657840/?tool=EBI
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spelling doaj-ebbde6b63c394befb3c39ee3b75904052021-03-04T02:23:53ZengPublic Library of Science (PLoS)PLoS ONE1932-62032010-07-0157e1165010.1371/journal.pone.0011650UPF2 is a critical regulator of liver development, function and regeneration.Lina A ThorenGitte A NørgaardJoachim WeischenfeldtJohannes WaageJanus S JakobsenInge DamgaardFrida C BergströmAnna M BlomRehannah BorupHanne Cathrine BisgaardBo T Porse<h4>Background</h4>Nonsense-mediated mRNA decay (NMD) is a post-transcriptional RNA surveillance process that facilitates the recognition and destruction of mRNAs bearing premature terminations codons (PTCs). Such PTC-containing (PTC+) mRNAs may arise from different processes, including erroneous processing and expression of pseudogenes, but also from more regulated events such as alternative splicing coupled NMD (AS-NMD). Thus, the NMD pathway serves both as a silencer of genomic noise and a regulator of gene expression. Given the early embryonic lethality in NMD deficient mice, uncovering the full regulatory potential of the NMD pathway in mammals will require the functional assessment of NMD in different tissues.<h4>Methodology/principal findings</h4>Here we use mouse genetics to address the role of UPF2, a core NMD component, in the development, function and regeneration of the liver. We find that loss of NMD during fetal liver development is incompatible with postnatal life due to failure of terminal differentiation. Moreover, deletion of Upf2 in the adult liver results in hepatosteatosis and disruption of liver homeostasis. Finally, NMD was found to be absolutely required for liver regeneration.<h4>Conclusion/significance</h4>Collectively, our data demonstrate the critical role of the NMD pathway in liver development, function and regeneration and highlights the importance of NMD for mammalian biology.https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/20657840/?tool=EBI
collection DOAJ
language English
format Article
sources DOAJ
author Lina A Thoren
Gitte A Nørgaard
Joachim Weischenfeldt
Johannes Waage
Janus S Jakobsen
Inge Damgaard
Frida C Bergström
Anna M Blom
Rehannah Borup
Hanne Cathrine Bisgaard
Bo T Porse
spellingShingle Lina A Thoren
Gitte A Nørgaard
Joachim Weischenfeldt
Johannes Waage
Janus S Jakobsen
Inge Damgaard
Frida C Bergström
Anna M Blom
Rehannah Borup
Hanne Cathrine Bisgaard
Bo T Porse
UPF2 is a critical regulator of liver development, function and regeneration.
PLoS ONE
author_facet Lina A Thoren
Gitte A Nørgaard
Joachim Weischenfeldt
Johannes Waage
Janus S Jakobsen
Inge Damgaard
Frida C Bergström
Anna M Blom
Rehannah Borup
Hanne Cathrine Bisgaard
Bo T Porse
author_sort Lina A Thoren
title UPF2 is a critical regulator of liver development, function and regeneration.
title_short UPF2 is a critical regulator of liver development, function and regeneration.
title_full UPF2 is a critical regulator of liver development, function and regeneration.
title_fullStr UPF2 is a critical regulator of liver development, function and regeneration.
title_full_unstemmed UPF2 is a critical regulator of liver development, function and regeneration.
title_sort upf2 is a critical regulator of liver development, function and regeneration.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2010-07-01
description <h4>Background</h4>Nonsense-mediated mRNA decay (NMD) is a post-transcriptional RNA surveillance process that facilitates the recognition and destruction of mRNAs bearing premature terminations codons (PTCs). Such PTC-containing (PTC+) mRNAs may arise from different processes, including erroneous processing and expression of pseudogenes, but also from more regulated events such as alternative splicing coupled NMD (AS-NMD). Thus, the NMD pathway serves both as a silencer of genomic noise and a regulator of gene expression. Given the early embryonic lethality in NMD deficient mice, uncovering the full regulatory potential of the NMD pathway in mammals will require the functional assessment of NMD in different tissues.<h4>Methodology/principal findings</h4>Here we use mouse genetics to address the role of UPF2, a core NMD component, in the development, function and regeneration of the liver. We find that loss of NMD during fetal liver development is incompatible with postnatal life due to failure of terminal differentiation. Moreover, deletion of Upf2 in the adult liver results in hepatosteatosis and disruption of liver homeostasis. Finally, NMD was found to be absolutely required for liver regeneration.<h4>Conclusion/significance</h4>Collectively, our data demonstrate the critical role of the NMD pathway in liver development, function and regeneration and highlights the importance of NMD for mammalian biology.
url https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/20657840/?tool=EBI
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