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Postnatal prolongation of mammalian nephrogenesis by excess fetal GDNF

Nephron endowment, defined during the fetal period, dictates renal and related cardiovascular health throughout life. We show here that, despite its negative effects on kidney growth, genetic increase of GDNF prolongs the nephrogenic program beyond its normal cessation. Multi-stage mechanistic analy...

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Autores principales: Li, Hao, Kurtzeborn, Kristen, Kupari, Jussi, Gui, Yujuan, Siefker, Edward, Lu, Benson, Mätlik, Kärt, Olfat, Soophie, Montaño-Rodríguez, Ana R., Huh, Sung-Ho, Costantini, Franklin, Andressoo, Jaan-Olle, Kuure, Satu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Ltd 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8180252/
https://www.ncbi.nlm.nih.gov/pubmed/34032268
http://dx.doi.org/10.1242/dev.197475
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author Li, Hao
Kurtzeborn, Kristen
Kupari, Jussi
Gui, Yujuan
Siefker, Edward
Lu, Benson
Mätlik, Kärt
Olfat, Soophie
Montaño-Rodríguez, Ana R.
Huh, Sung-Ho
Costantini, Franklin
Andressoo, Jaan-Olle
Kuure, Satu
author_facet Li, Hao
Kurtzeborn, Kristen
Kupari, Jussi
Gui, Yujuan
Siefker, Edward
Lu, Benson
Mätlik, Kärt
Olfat, Soophie
Montaño-Rodríguez, Ana R.
Huh, Sung-Ho
Costantini, Franklin
Andressoo, Jaan-Olle
Kuure, Satu
author_sort Li, Hao
collection PubMed
description Nephron endowment, defined during the fetal period, dictates renal and related cardiovascular health throughout life. We show here that, despite its negative effects on kidney growth, genetic increase of GDNF prolongs the nephrogenic program beyond its normal cessation. Multi-stage mechanistic analysis revealed that excess GDNF maintains nephron progenitors and nephrogenesis through increased expression of its secreted targets and augmented WNT signaling, leading to a two-part effect on nephron progenitor maintenance. Abnormally high GDNF in embryonic kidneys upregulates its known targets but also Wnt9b and Axin2, with concomitant deceleration of nephron progenitor proliferation. Decline of GDNF levels in postnatal kidneys normalizes the ureteric bud and creates a permissive environment for continuation of the nephrogenic program, as demonstrated by morphologically and molecularly normal postnatal nephron progenitor self-renewal and differentiation. These results establish that excess GDNF has a bi-phasic effect on nephron progenitors in mice, which can faithfully respond to GDNF dosage manipulation during the fetal and postnatal period. Our results suggest that sensing the signaling activity level is an important mechanism through which GDNF and other molecules contribute to nephron progenitor lifespan specification.
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spelling pubmed-81802522021-06-08 Postnatal prolongation of mammalian nephrogenesis by excess fetal GDNF Li, Hao Kurtzeborn, Kristen Kupari, Jussi Gui, Yujuan Siefker, Edward Lu, Benson Mätlik, Kärt Olfat, Soophie Montaño-Rodríguez, Ana R. Huh, Sung-Ho Costantini, Franklin Andressoo, Jaan-Olle Kuure, Satu Development Research Article Nephron endowment, defined during the fetal period, dictates renal and related cardiovascular health throughout life. We show here that, despite its negative effects on kidney growth, genetic increase of GDNF prolongs the nephrogenic program beyond its normal cessation. Multi-stage mechanistic analysis revealed that excess GDNF maintains nephron progenitors and nephrogenesis through increased expression of its secreted targets and augmented WNT signaling, leading to a two-part effect on nephron progenitor maintenance. Abnormally high GDNF in embryonic kidneys upregulates its known targets but also Wnt9b and Axin2, with concomitant deceleration of nephron progenitor proliferation. Decline of GDNF levels in postnatal kidneys normalizes the ureteric bud and creates a permissive environment for continuation of the nephrogenic program, as demonstrated by morphologically and molecularly normal postnatal nephron progenitor self-renewal and differentiation. These results establish that excess GDNF has a bi-phasic effect on nephron progenitors in mice, which can faithfully respond to GDNF dosage manipulation during the fetal and postnatal period. Our results suggest that sensing the signaling activity level is an important mechanism through which GDNF and other molecules contribute to nephron progenitor lifespan specification. The Company of Biologists Ltd 2021-05-25 /pmc/articles/PMC8180252/ /pubmed/34032268 http://dx.doi.org/10.1242/dev.197475 Text en © 2021. Published by The Company of Biologists Ltd https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article
Li, Hao
Kurtzeborn, Kristen
Kupari, Jussi
Gui, Yujuan
Siefker, Edward
Lu, Benson
Mätlik, Kärt
Olfat, Soophie
Montaño-Rodríguez, Ana R.
Huh, Sung-Ho
Costantini, Franklin
Andressoo, Jaan-Olle
Kuure, Satu
Postnatal prolongation of mammalian nephrogenesis by excess fetal GDNF
title Postnatal prolongation of mammalian nephrogenesis by excess fetal GDNF
title_full Postnatal prolongation of mammalian nephrogenesis by excess fetal GDNF
title_fullStr Postnatal prolongation of mammalian nephrogenesis by excess fetal GDNF
title_full_unstemmed Postnatal prolongation of mammalian nephrogenesis by excess fetal GDNF
title_short Postnatal prolongation of mammalian nephrogenesis by excess fetal GDNF
title_sort postnatal prolongation of mammalian nephrogenesis by excess fetal gdnf
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8180252/
https://www.ncbi.nlm.nih.gov/pubmed/34032268
http://dx.doi.org/10.1242/dev.197475
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