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Use of deep neural network ensembles to identify embryonic-fetal transition markers: repression of COX7A1 in embryonic and cancer cells

Here we present the application of deep neural network (DNN) ensembles trained on transcriptomic data to identify the novel markers associated with the mammalian embryonic-fetal transition (EFT). Molecular markers of this process could provide important insights into regulatory mechanisms of normal...

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Autores principales: West, Michael D., Labat, Ivan, Sternberg, Hal, Larocca, Dana, Nasonkin, Igor, Chapman, Karen B., Singh, Ratnesh, Makarev, Eugene, Aliper, Alex, Kazennov, Andrey, Alekseenko, Andrey, Shuvalov, Nikolai, Cheskidova, Evgenia, Alekseev, Aleksandr, Artemov, Artem, Putin, Evgeny, Mamoshina, Polina, Pryanichnikov, Nikita, Larocca, Jacob, Copeland, Karen, Izumchenko, Evgeny, Korzinkin, Mikhail, Zhavoronkov, Alex
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5814259/
https://www.ncbi.nlm.nih.gov/pubmed/29487692
http://dx.doi.org/10.18632/oncotarget.23748
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author West, Michael D.
Labat, Ivan
Sternberg, Hal
Larocca, Dana
Nasonkin, Igor
Chapman, Karen B.
Singh, Ratnesh
Makarev, Eugene
Aliper, Alex
Kazennov, Andrey
Alekseenko, Andrey
Shuvalov, Nikolai
Cheskidova, Evgenia
Alekseev, Aleksandr
Artemov, Artem
Putin, Evgeny
Mamoshina, Polina
Pryanichnikov, Nikita
Larocca, Jacob
Copeland, Karen
Izumchenko, Evgeny
Korzinkin, Mikhail
Zhavoronkov, Alex
author_facet West, Michael D.
Labat, Ivan
Sternberg, Hal
Larocca, Dana
Nasonkin, Igor
Chapman, Karen B.
Singh, Ratnesh
Makarev, Eugene
Aliper, Alex
Kazennov, Andrey
Alekseenko, Andrey
Shuvalov, Nikolai
Cheskidova, Evgenia
Alekseev, Aleksandr
Artemov, Artem
Putin, Evgeny
Mamoshina, Polina
Pryanichnikov, Nikita
Larocca, Jacob
Copeland, Karen
Izumchenko, Evgeny
Korzinkin, Mikhail
Zhavoronkov, Alex
author_sort West, Michael D.
collection PubMed
description Here we present the application of deep neural network (DNN) ensembles trained on transcriptomic data to identify the novel markers associated with the mammalian embryonic-fetal transition (EFT). Molecular markers of this process could provide important insights into regulatory mechanisms of normal development, epimorphic tissue regeneration and cancer. Subsequent analysis of the most significant genes behind the DNNs classifier on an independent dataset of adult-derived and human embryonic stem cell (hESC)-derived progenitor cell lines led to the identification of COX7A1 gene as a potential EFT marker. COX7A1, encoding a cytochrome C oxidase subunit, was up-regulated in post-EFT murine and human cells including adult stem cells, but was not expressed in pre-EFT pluripotent embryonic stem cells or their in vitro-derived progeny. COX7A1 expression level was observed to be undetectable or low in multiple sarcoma and carcinoma cell lines as compared to normal controls. The knockout of the gene in mice led to a marked glycolytic shift reminiscent of the Warburg effect that occurs in cancer cells. The DNN approach facilitated the elucidation of a potentially new biomarker of cancer and pre-EFT cells, the embryo-onco phenotype, which may potentially be used as a target for controlling the embryonic-fetal transition.
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spelling pubmed-58142592018-02-27 Use of deep neural network ensembles to identify embryonic-fetal transition markers: repression of COX7A1 in embryonic and cancer cells West, Michael D. Labat, Ivan Sternberg, Hal Larocca, Dana Nasonkin, Igor Chapman, Karen B. Singh, Ratnesh Makarev, Eugene Aliper, Alex Kazennov, Andrey Alekseenko, Andrey Shuvalov, Nikolai Cheskidova, Evgenia Alekseev, Aleksandr Artemov, Artem Putin, Evgeny Mamoshina, Polina Pryanichnikov, Nikita Larocca, Jacob Copeland, Karen Izumchenko, Evgeny Korzinkin, Mikhail Zhavoronkov, Alex Oncotarget Research Paper Here we present the application of deep neural network (DNN) ensembles trained on transcriptomic data to identify the novel markers associated with the mammalian embryonic-fetal transition (EFT). Molecular markers of this process could provide important insights into regulatory mechanisms of normal development, epimorphic tissue regeneration and cancer. Subsequent analysis of the most significant genes behind the DNNs classifier on an independent dataset of adult-derived and human embryonic stem cell (hESC)-derived progenitor cell lines led to the identification of COX7A1 gene as a potential EFT marker. COX7A1, encoding a cytochrome C oxidase subunit, was up-regulated in post-EFT murine and human cells including adult stem cells, but was not expressed in pre-EFT pluripotent embryonic stem cells or their in vitro-derived progeny. COX7A1 expression level was observed to be undetectable or low in multiple sarcoma and carcinoma cell lines as compared to normal controls. The knockout of the gene in mice led to a marked glycolytic shift reminiscent of the Warburg effect that occurs in cancer cells. The DNN approach facilitated the elucidation of a potentially new biomarker of cancer and pre-EFT cells, the embryo-onco phenotype, which may potentially be used as a target for controlling the embryonic-fetal transition. Impact Journals LLC 2017-12-28 /pmc/articles/PMC5814259/ /pubmed/29487692 http://dx.doi.org/10.18632/oncotarget.23748 Text en Copyright: © 2018 West et al. http://creativecommons.org/licenses/by/3.0/ This article is distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/) (CC-BY), which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Research Paper
West, Michael D.
Labat, Ivan
Sternberg, Hal
Larocca, Dana
Nasonkin, Igor
Chapman, Karen B.
Singh, Ratnesh
Makarev, Eugene
Aliper, Alex
Kazennov, Andrey
Alekseenko, Andrey
Shuvalov, Nikolai
Cheskidova, Evgenia
Alekseev, Aleksandr
Artemov, Artem
Putin, Evgeny
Mamoshina, Polina
Pryanichnikov, Nikita
Larocca, Jacob
Copeland, Karen
Izumchenko, Evgeny
Korzinkin, Mikhail
Zhavoronkov, Alex
Use of deep neural network ensembles to identify embryonic-fetal transition markers: repression of COX7A1 in embryonic and cancer cells
title Use of deep neural network ensembles to identify embryonic-fetal transition markers: repression of COX7A1 in embryonic and cancer cells
title_full Use of deep neural network ensembles to identify embryonic-fetal transition markers: repression of COX7A1 in embryonic and cancer cells
title_fullStr Use of deep neural network ensembles to identify embryonic-fetal transition markers: repression of COX7A1 in embryonic and cancer cells
title_full_unstemmed Use of deep neural network ensembles to identify embryonic-fetal transition markers: repression of COX7A1 in embryonic and cancer cells
title_short Use of deep neural network ensembles to identify embryonic-fetal transition markers: repression of COX7A1 in embryonic and cancer cells
title_sort use of deep neural network ensembles to identify embryonic-fetal transition markers: repression of cox7a1 in embryonic and cancer cells
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5814259/
https://www.ncbi.nlm.nih.gov/pubmed/29487692
http://dx.doi.org/10.18632/oncotarget.23748
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