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Proteomics Analysis Reveals that Warburg Effect along with Modification in Lipid Metabolism Improves In Vitro Embryo Development under Low Oxygen

The molecular mechanism regulating embryo development under reduced oxygen tension remains elusive. This study aimed to identify the molecular mechanism impacting embryo development under low oxygen conditions. Buffalo embryos were cultured under 5% or 20% oxygen and were evaluated according to thei...

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Autores principales: Shahzad, Qaisar, Pu, Liping, Ahmed Wadood, Armughan, Waqas, Muhammad, Xie, Long, Shekhar Pareek, Chandra, Xu, Huiyan, Liang, Xianwei, Lu, Yangqing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7139666/
https://www.ncbi.nlm.nih.gov/pubmed/32183390
http://dx.doi.org/10.3390/ijms21061996
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author Shahzad, Qaisar
Pu, Liping
Ahmed Wadood, Armughan
Waqas, Muhammad
Xie, Long
Shekhar Pareek, Chandra
Xu, Huiyan
Liang, Xianwei
Lu, Yangqing
author_facet Shahzad, Qaisar
Pu, Liping
Ahmed Wadood, Armughan
Waqas, Muhammad
Xie, Long
Shekhar Pareek, Chandra
Xu, Huiyan
Liang, Xianwei
Lu, Yangqing
author_sort Shahzad, Qaisar
collection PubMed
description The molecular mechanism regulating embryo development under reduced oxygen tension remains elusive. This study aimed to identify the molecular mechanism impacting embryo development under low oxygen conditions. Buffalo embryos were cultured under 5% or 20% oxygen and were evaluated according to their morphological parameters related to embryo development. The protein profiles of these embryos were compared using iTRAQ-based quantitative proteomics. Physiological O(2) (5%) significantly promoted blastocyst yield, hatching rate, embryo quality and cell count as compared to atmospheric O(2) (20%). The embryos in the 5% O(2) group had an improved hatching rate of cryopreserved blastocysts post-warming (p < 0.05). Comparative proteome profiles of hatched blastocysts cultured under 5% vs. 20% O(2) levels identified 43 differentially expressed proteins (DEPs). Functional analysis indicated that DEPs were mainly associated with glycolysis, fatty acid degradation, inositol phosphate metabolism and terpenoid backbone synthesis. Our results suggest that embryos under physiological oxygen had greater developmental potential due to the pronounced Warburg Effect (aerobic glycolysis). Moreover, our proteomic data suggested that higher lipid degradation, an elevated cholesterol level and a higher unsaturated to saturated fatty acid ratio might be involved in the better cryo-survival ability reported in embryos cultured under low oxygen. These data provide new information on the early embryo protein repertoire and general molecular mechanisms of embryo development under varying oxygen levels.
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spelling pubmed-71396662020-04-10 Proteomics Analysis Reveals that Warburg Effect along with Modification in Lipid Metabolism Improves In Vitro Embryo Development under Low Oxygen Shahzad, Qaisar Pu, Liping Ahmed Wadood, Armughan Waqas, Muhammad Xie, Long Shekhar Pareek, Chandra Xu, Huiyan Liang, Xianwei Lu, Yangqing Int J Mol Sci Article The molecular mechanism regulating embryo development under reduced oxygen tension remains elusive. This study aimed to identify the molecular mechanism impacting embryo development under low oxygen conditions. Buffalo embryos were cultured under 5% or 20% oxygen and were evaluated according to their morphological parameters related to embryo development. The protein profiles of these embryos were compared using iTRAQ-based quantitative proteomics. Physiological O(2) (5%) significantly promoted blastocyst yield, hatching rate, embryo quality and cell count as compared to atmospheric O(2) (20%). The embryos in the 5% O(2) group had an improved hatching rate of cryopreserved blastocysts post-warming (p < 0.05). Comparative proteome profiles of hatched blastocysts cultured under 5% vs. 20% O(2) levels identified 43 differentially expressed proteins (DEPs). Functional analysis indicated that DEPs were mainly associated with glycolysis, fatty acid degradation, inositol phosphate metabolism and terpenoid backbone synthesis. Our results suggest that embryos under physiological oxygen had greater developmental potential due to the pronounced Warburg Effect (aerobic glycolysis). Moreover, our proteomic data suggested that higher lipid degradation, an elevated cholesterol level and a higher unsaturated to saturated fatty acid ratio might be involved in the better cryo-survival ability reported in embryos cultured under low oxygen. These data provide new information on the early embryo protein repertoire and general molecular mechanisms of embryo development under varying oxygen levels. MDPI 2020-03-14 /pmc/articles/PMC7139666/ /pubmed/32183390 http://dx.doi.org/10.3390/ijms21061996 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
Shahzad, Qaisar
Pu, Liping
Ahmed Wadood, Armughan
Waqas, Muhammad
Xie, Long
Shekhar Pareek, Chandra
Xu, Huiyan
Liang, Xianwei
Lu, Yangqing
Proteomics Analysis Reveals that Warburg Effect along with Modification in Lipid Metabolism Improves In Vitro Embryo Development under Low Oxygen
title Proteomics Analysis Reveals that Warburg Effect along with Modification in Lipid Metabolism Improves In Vitro Embryo Development under Low Oxygen
title_full Proteomics Analysis Reveals that Warburg Effect along with Modification in Lipid Metabolism Improves In Vitro Embryo Development under Low Oxygen
title_fullStr Proteomics Analysis Reveals that Warburg Effect along with Modification in Lipid Metabolism Improves In Vitro Embryo Development under Low Oxygen
title_full_unstemmed Proteomics Analysis Reveals that Warburg Effect along with Modification in Lipid Metabolism Improves In Vitro Embryo Development under Low Oxygen
title_short Proteomics Analysis Reveals that Warburg Effect along with Modification in Lipid Metabolism Improves In Vitro Embryo Development under Low Oxygen
title_sort proteomics analysis reveals that warburg effect along with modification in lipid metabolism improves in vitro embryo development under low oxygen
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7139666/
https://www.ncbi.nlm.nih.gov/pubmed/32183390
http://dx.doi.org/10.3390/ijms21061996
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