Cargando…

Human sFLT1 Leads to Severe Changes in Placental Differentiation and Vascularization in a Transgenic hsFLT1/rtTA FGR Mouse Model

The anti-angiogenic soluble fms-like tyrosine kinase 1 (sFLT1) is one of the candidates in the progression of preeclampsia, often associated with fetal growth restriction (FGR). Therapeutic agents against preeclampsia with/without FGR, as well as adequate transgenic sFLT1 mouse models for testing su...

Descripción completa

Detalles Bibliográficos
Autores principales: Vogtmann, Rebekka, Kühnel, Elisabeth, Dicke, Nikolai, Verkaik-Schakel, Rikst Nynke, Plösch, Torsten, Schorle, Hubert, Stojanovska, Violeta, Herse, Florian, Köninger, Angela, Kimmig, Rainer, Winterhager, Elke, Gellhaus, Alexandra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6437783/
https://www.ncbi.nlm.nih.gov/pubmed/30949132
http://dx.doi.org/10.3389/fendo.2019.00165
_version_ 1783406988148867072
author Vogtmann, Rebekka
Kühnel, Elisabeth
Dicke, Nikolai
Verkaik-Schakel, Rikst Nynke
Plösch, Torsten
Schorle, Hubert
Stojanovska, Violeta
Herse, Florian
Köninger, Angela
Kimmig, Rainer
Winterhager, Elke
Gellhaus, Alexandra
author_facet Vogtmann, Rebekka
Kühnel, Elisabeth
Dicke, Nikolai
Verkaik-Schakel, Rikst Nynke
Plösch, Torsten
Schorle, Hubert
Stojanovska, Violeta
Herse, Florian
Köninger, Angela
Kimmig, Rainer
Winterhager, Elke
Gellhaus, Alexandra
author_sort Vogtmann, Rebekka
collection PubMed
description The anti-angiogenic soluble fms-like tyrosine kinase 1 (sFLT1) is one of the candidates in the progression of preeclampsia, often associated with fetal growth restriction (FGR). Therapeutic agents against preeclampsia with/without FGR, as well as adequate transgenic sFLT1 mouse models for testing such agents, are still missing. Much is known about sFLT1–mediated endothelial dysfunction in several tissues; however, the influence of sFLT1 on placental and fetal development is currently unknown. We hypothesize that sFLT1 is involved in the progression of FGR by influencing placental differentiation and vascularization and is a prime candidate for interventional strategies. Therefore, we generated transgenic inducible human sFLT1/reverse tetracycline-controlled transactivator (hsFLT1/rtTA) mice, in which hsFLT1 is ubiquitously overexpressed during pregnancy in dams and according to the genetics in hsFLT1/rtTA homozygous and heterozygous fetuses. Induction of hsFLT1 led to elevated hsFLT1 levels in the serum of dams and on mRNA level in all placentas and hetero-/homozygous fetuses, resulting in FGR in all fetuses at term. The strongest effects in respect to FGR were observed in the hsFLT1/rtTA homozygous fetuses, which exhibited the highest hsFLT1 levels. Only fetal hsFLT1 expression led to impaired placental morphology characterized by reduced placental efficiency, enlarged maternal sinusoids, reduced fetal capillaries, and impaired labyrinthine differentiation, associated with increased apoptosis. Besides impaired placental vascularization, the expression of several transporter systems, such as glucose transporter 1 and 3 (Glut-1; Glut-3); amino acid transporters, solute carrier family 38, member one and two (Slc38a1; Slc38a2); and most severely the fatty acid translocase Cd36 and fatty acid binding protein 3 (Fabp3) was reduced upon hsFLT1 expression, associated with an accumulation of phospholipids in the maternal serum. Moreover, the Vegf pathway showed alterations, resulting in reduced Vegf, Vegfb, and Plgf protein levels and increased Bad and Caspase 9 mRNA levels. We suggest that hsFLT1 exerts an inhibitory influence on placental vascularization by reducing Vegf signaling, which leads to apoptosis in fetal vessels, impairing placental differentiation, and the nutrient exchange function of the labyrinth. These effects were more pronounced when both the dam and the fetus expressed hsFLT1 and ultimately result in FGR and resemble the preeclamptic phenotype in humans.
format Online
Article
Text
id pubmed-6437783
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-64377832019-04-04 Human sFLT1 Leads to Severe Changes in Placental Differentiation and Vascularization in a Transgenic hsFLT1/rtTA FGR Mouse Model Vogtmann, Rebekka Kühnel, Elisabeth Dicke, Nikolai Verkaik-Schakel, Rikst Nynke Plösch, Torsten Schorle, Hubert Stojanovska, Violeta Herse, Florian Köninger, Angela Kimmig, Rainer Winterhager, Elke Gellhaus, Alexandra Front Endocrinol (Lausanne) Endocrinology The anti-angiogenic soluble fms-like tyrosine kinase 1 (sFLT1) is one of the candidates in the progression of preeclampsia, often associated with fetal growth restriction (FGR). Therapeutic agents against preeclampsia with/without FGR, as well as adequate transgenic sFLT1 mouse models for testing such agents, are still missing. Much is known about sFLT1–mediated endothelial dysfunction in several tissues; however, the influence of sFLT1 on placental and fetal development is currently unknown. We hypothesize that sFLT1 is involved in the progression of FGR by influencing placental differentiation and vascularization and is a prime candidate for interventional strategies. Therefore, we generated transgenic inducible human sFLT1/reverse tetracycline-controlled transactivator (hsFLT1/rtTA) mice, in which hsFLT1 is ubiquitously overexpressed during pregnancy in dams and according to the genetics in hsFLT1/rtTA homozygous and heterozygous fetuses. Induction of hsFLT1 led to elevated hsFLT1 levels in the serum of dams and on mRNA level in all placentas and hetero-/homozygous fetuses, resulting in FGR in all fetuses at term. The strongest effects in respect to FGR were observed in the hsFLT1/rtTA homozygous fetuses, which exhibited the highest hsFLT1 levels. Only fetal hsFLT1 expression led to impaired placental morphology characterized by reduced placental efficiency, enlarged maternal sinusoids, reduced fetal capillaries, and impaired labyrinthine differentiation, associated with increased apoptosis. Besides impaired placental vascularization, the expression of several transporter systems, such as glucose transporter 1 and 3 (Glut-1; Glut-3); amino acid transporters, solute carrier family 38, member one and two (Slc38a1; Slc38a2); and most severely the fatty acid translocase Cd36 and fatty acid binding protein 3 (Fabp3) was reduced upon hsFLT1 expression, associated with an accumulation of phospholipids in the maternal serum. Moreover, the Vegf pathway showed alterations, resulting in reduced Vegf, Vegfb, and Plgf protein levels and increased Bad and Caspase 9 mRNA levels. We suggest that hsFLT1 exerts an inhibitory influence on placental vascularization by reducing Vegf signaling, which leads to apoptosis in fetal vessels, impairing placental differentiation, and the nutrient exchange function of the labyrinth. These effects were more pronounced when both the dam and the fetus expressed hsFLT1 and ultimately result in FGR and resemble the preeclamptic phenotype in humans. Frontiers Media S.A. 2019-03-21 /pmc/articles/PMC6437783/ /pubmed/30949132 http://dx.doi.org/10.3389/fendo.2019.00165 Text en Copyright © 2019 Vogtmann, Kühnel, Dicke, Verkaik-Schakel, Plösch, Schorle, Stojanovska, Herse, Köninger, Kimmig, Winterhager and Gellhaus. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Endocrinology
Vogtmann, Rebekka
Kühnel, Elisabeth
Dicke, Nikolai
Verkaik-Schakel, Rikst Nynke
Plösch, Torsten
Schorle, Hubert
Stojanovska, Violeta
Herse, Florian
Köninger, Angela
Kimmig, Rainer
Winterhager, Elke
Gellhaus, Alexandra
Human sFLT1 Leads to Severe Changes in Placental Differentiation and Vascularization in a Transgenic hsFLT1/rtTA FGR Mouse Model
title Human sFLT1 Leads to Severe Changes in Placental Differentiation and Vascularization in a Transgenic hsFLT1/rtTA FGR Mouse Model
title_full Human sFLT1 Leads to Severe Changes in Placental Differentiation and Vascularization in a Transgenic hsFLT1/rtTA FGR Mouse Model
title_fullStr Human sFLT1 Leads to Severe Changes in Placental Differentiation and Vascularization in a Transgenic hsFLT1/rtTA FGR Mouse Model
title_full_unstemmed Human sFLT1 Leads to Severe Changes in Placental Differentiation and Vascularization in a Transgenic hsFLT1/rtTA FGR Mouse Model
title_short Human sFLT1 Leads to Severe Changes in Placental Differentiation and Vascularization in a Transgenic hsFLT1/rtTA FGR Mouse Model
title_sort human sflt1 leads to severe changes in placental differentiation and vascularization in a transgenic hsflt1/rtta fgr mouse model
topic Endocrinology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6437783/
https://www.ncbi.nlm.nih.gov/pubmed/30949132
http://dx.doi.org/10.3389/fendo.2019.00165
work_keys_str_mv AT vogtmannrebekka humansflt1leadstoseverechangesinplacentaldifferentiationandvascularizationinatransgenichsflt1rttafgrmousemodel
AT kuhnelelisabeth humansflt1leadstoseverechangesinplacentaldifferentiationandvascularizationinatransgenichsflt1rttafgrmousemodel
AT dickenikolai humansflt1leadstoseverechangesinplacentaldifferentiationandvascularizationinatransgenichsflt1rttafgrmousemodel
AT verkaikschakelrikstnynke humansflt1leadstoseverechangesinplacentaldifferentiationandvascularizationinatransgenichsflt1rttafgrmousemodel
AT ploschtorsten humansflt1leadstoseverechangesinplacentaldifferentiationandvascularizationinatransgenichsflt1rttafgrmousemodel
AT schorlehubert humansflt1leadstoseverechangesinplacentaldifferentiationandvascularizationinatransgenichsflt1rttafgrmousemodel
AT stojanovskavioleta humansflt1leadstoseverechangesinplacentaldifferentiationandvascularizationinatransgenichsflt1rttafgrmousemodel
AT herseflorian humansflt1leadstoseverechangesinplacentaldifferentiationandvascularizationinatransgenichsflt1rttafgrmousemodel
AT koningerangela humansflt1leadstoseverechangesinplacentaldifferentiationandvascularizationinatransgenichsflt1rttafgrmousemodel
AT kimmigrainer humansflt1leadstoseverechangesinplacentaldifferentiationandvascularizationinatransgenichsflt1rttafgrmousemodel
AT winterhagerelke humansflt1leadstoseverechangesinplacentaldifferentiationandvascularizationinatransgenichsflt1rttafgrmousemodel
AT gellhausalexandra humansflt1leadstoseverechangesinplacentaldifferentiationandvascularizationinatransgenichsflt1rttafgrmousemodel