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Advanced Maternal Age‐associated SIRT1 Deficiency Compromises Trophoblast Epithelial−Mesenchymal Transition through an Increase in Vimentin Acetylation

Advanced maternal age (AMA) pregnancies are rapidly increasing and are associated with aberrant trophoblast cell function, poor placentation, and unfavorable pregnancy outcomes, presumably due to premature placental senescence. SIRT1 is an NAD(+)‐dependent deacetylase with well‐known antiaging effec...

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Autores principales: Xiong, Liling, Ye, Xuan, Chen, Zhi, Fu, Huijia, Li, Sisi, Xu, Ping, Yu, Jiaxiao, Wen, Li, Gao, Rufei, Fu, Yong, Qi, Hongbo, Kilby, Mark D., Saffery, Richard, Baker, Philip N., Tong, Chao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8520724/
https://www.ncbi.nlm.nih.gov/pubmed/34605151
http://dx.doi.org/10.1111/acel.13491
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author Xiong, Liling
Ye, Xuan
Chen, Zhi
Fu, Huijia
Li, Sisi
Xu, Ping
Yu, Jiaxiao
Wen, Li
Gao, Rufei
Fu, Yong
Qi, Hongbo
Kilby, Mark D.
Saffery, Richard
Baker, Philip N.
Tong, Chao
author_facet Xiong, Liling
Ye, Xuan
Chen, Zhi
Fu, Huijia
Li, Sisi
Xu, Ping
Yu, Jiaxiao
Wen, Li
Gao, Rufei
Fu, Yong
Qi, Hongbo
Kilby, Mark D.
Saffery, Richard
Baker, Philip N.
Tong, Chao
author_sort Xiong, Liling
collection PubMed
description Advanced maternal age (AMA) pregnancies are rapidly increasing and are associated with aberrant trophoblast cell function, poor placentation, and unfavorable pregnancy outcomes, presumably due to premature placental senescence. SIRT1 is an NAD(+)‐dependent deacetylase with well‐known antiaging effects, but its connection with placental senescence is unreported. In this study, human term placentas and first‐trimester villi were collected from AMA and normal pregnancies, and a mouse AMA model was established by cross breeding young and aged male and female C57 mice. SIRT1 expression and activity in HTR8/SVneo cells were genetically or pharmacologically manipulated. Trophoblast‐specific Sirt1‐knockout (KO) mouse placentas were generated by mating Elf5‐Cre and Sirt1 (fl/fl) mice. Trophoblast cell mobility was assessed with transwell invasion and wound‐healing assays. SIRT1‐binding proteins in HTR8/SVneo cells and human placental tissue were identified by mass spectrometry. We identified SIRT1 as the only differentially expressed sirtuin between AMA and normal placentas. It is downregulated in AMA placentas early in the placental life cycle and is barely impacted by paternal age. SIRT1 loss upregulates P53 acetylation and P21 expression and impairs trophoblast invasion and migration. Sirt1‐KO mouse placentas exhibit senescence markers and morphological disruption, along with decreased fetal weight. In trophoblasts, SIRT1 interacts with vimentin, regulating its acetylation. In conclusion, SIRT1 promotes trophoblast epithelial−mesenchymal transition (EMT) to enhance invasiveness by modulating vimentin acetylation. AMA placentas are associated with premature senescence during placentation due to SIRT1 loss. Therefore, SIRT1 may be an antiaging therapeutic target for improving placental development and perinatal outcomes in AMA pregnancies.
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spelling pubmed-85207242021-10-25 Advanced Maternal Age‐associated SIRT1 Deficiency Compromises Trophoblast Epithelial−Mesenchymal Transition through an Increase in Vimentin Acetylation Xiong, Liling Ye, Xuan Chen, Zhi Fu, Huijia Li, Sisi Xu, Ping Yu, Jiaxiao Wen, Li Gao, Rufei Fu, Yong Qi, Hongbo Kilby, Mark D. Saffery, Richard Baker, Philip N. Tong, Chao Aging Cell Original Papers Advanced maternal age (AMA) pregnancies are rapidly increasing and are associated with aberrant trophoblast cell function, poor placentation, and unfavorable pregnancy outcomes, presumably due to premature placental senescence. SIRT1 is an NAD(+)‐dependent deacetylase with well‐known antiaging effects, but its connection with placental senescence is unreported. In this study, human term placentas and first‐trimester villi were collected from AMA and normal pregnancies, and a mouse AMA model was established by cross breeding young and aged male and female C57 mice. SIRT1 expression and activity in HTR8/SVneo cells were genetically or pharmacologically manipulated. Trophoblast‐specific Sirt1‐knockout (KO) mouse placentas were generated by mating Elf5‐Cre and Sirt1 (fl/fl) mice. Trophoblast cell mobility was assessed with transwell invasion and wound‐healing assays. SIRT1‐binding proteins in HTR8/SVneo cells and human placental tissue were identified by mass spectrometry. We identified SIRT1 as the only differentially expressed sirtuin between AMA and normal placentas. It is downregulated in AMA placentas early in the placental life cycle and is barely impacted by paternal age. SIRT1 loss upregulates P53 acetylation and P21 expression and impairs trophoblast invasion and migration. Sirt1‐KO mouse placentas exhibit senescence markers and morphological disruption, along with decreased fetal weight. In trophoblasts, SIRT1 interacts with vimentin, regulating its acetylation. In conclusion, SIRT1 promotes trophoblast epithelial−mesenchymal transition (EMT) to enhance invasiveness by modulating vimentin acetylation. AMA placentas are associated with premature senescence during placentation due to SIRT1 loss. Therefore, SIRT1 may be an antiaging therapeutic target for improving placental development and perinatal outcomes in AMA pregnancies. John Wiley and Sons Inc. 2021-10-03 2021-10 /pmc/articles/PMC8520724/ /pubmed/34605151 http://dx.doi.org/10.1111/acel.13491 Text en © 2021 The Authors. Aging Cell published by Anatomical Society and John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Papers
Xiong, Liling
Ye, Xuan
Chen, Zhi
Fu, Huijia
Li, Sisi
Xu, Ping
Yu, Jiaxiao
Wen, Li
Gao, Rufei
Fu, Yong
Qi, Hongbo
Kilby, Mark D.
Saffery, Richard
Baker, Philip N.
Tong, Chao
Advanced Maternal Age‐associated SIRT1 Deficiency Compromises Trophoblast Epithelial−Mesenchymal Transition through an Increase in Vimentin Acetylation
title Advanced Maternal Age‐associated SIRT1 Deficiency Compromises Trophoblast Epithelial−Mesenchymal Transition through an Increase in Vimentin Acetylation
title_full Advanced Maternal Age‐associated SIRT1 Deficiency Compromises Trophoblast Epithelial−Mesenchymal Transition through an Increase in Vimentin Acetylation
title_fullStr Advanced Maternal Age‐associated SIRT1 Deficiency Compromises Trophoblast Epithelial−Mesenchymal Transition through an Increase in Vimentin Acetylation
title_full_unstemmed Advanced Maternal Age‐associated SIRT1 Deficiency Compromises Trophoblast Epithelial−Mesenchymal Transition through an Increase in Vimentin Acetylation
title_short Advanced Maternal Age‐associated SIRT1 Deficiency Compromises Trophoblast Epithelial−Mesenchymal Transition through an Increase in Vimentin Acetylation
title_sort advanced maternal age‐associated sirt1 deficiency compromises trophoblast epithelial−mesenchymal transition through an increase in vimentin acetylation
topic Original Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8520724/
https://www.ncbi.nlm.nih.gov/pubmed/34605151
http://dx.doi.org/10.1111/acel.13491
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