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Escaping but not the inactive X-linked protein complex coding genes may achieve X-chromosome dosage compensation and underlie X chromosome inactivation-related diseases

X chromosome dosage compensation (XDC) refers to the process by which X-linked genes acquire expression equivalence between two sexes. Ohno proposed that XDC is achieved by two-fold upregulations of X-linked genes in both sexes and by silencing one X chromosome (X chromosome inactivation, XCI) in fe...

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Autores principales: Xing, Zhihao, Zhang, Yuchao, Tian, Zhongyuan, Wang, Meng, Xiao, Weiwei, Zhu, Chunqing, Zhao, Songhui, Zhu, Yufei, Hu, Landian, Kong, Xiangyin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10336589/
https://www.ncbi.nlm.nih.gov/pubmed/37449161
http://dx.doi.org/10.1016/j.heliyon.2023.e17721
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author Xing, Zhihao
Zhang, Yuchao
Tian, Zhongyuan
Wang, Meng
Xiao, Weiwei
Zhu, Chunqing
Zhao, Songhui
Zhu, Yufei
Hu, Landian
Kong, Xiangyin
author_facet Xing, Zhihao
Zhang, Yuchao
Tian, Zhongyuan
Wang, Meng
Xiao, Weiwei
Zhu, Chunqing
Zhao, Songhui
Zhu, Yufei
Hu, Landian
Kong, Xiangyin
author_sort Xing, Zhihao
collection PubMed
description X chromosome dosage compensation (XDC) refers to the process by which X-linked genes acquire expression equivalence between two sexes. Ohno proposed that XDC is achieved by two-fold upregulations of X-linked genes in both sexes and by silencing one X chromosome (X chromosome inactivation, XCI) in females. However, genes subject to two-fold upregulations as well as the underlying mechanism remain unclear. It’s reported that gene dosage changes may only affect X-linked dosage-sensitive genes, such as protein complex coding genes (PCGs). Our results showed that in human PCGs are more likely to escape XCI and escaping PCGs (EsP) show two-fold higher expression than inactivated PCGs (InP) or other X-linked genes at RNA and protein levels in both sexes, which suggest that EsP may achieve upregulations and XDC. The higher expressions of EsP possibly result from the upregulations of the single active X chromosome (Xa), rather than escaping expressions from the inactive X chromosome (Xi). EsP genes have relatively high expression levels in humans and lower dN/dS ratios, suggesting that they are likely under stronger selection pressure over evolutionary time. Our study also suggests that SP1 transcription factor is significantly enriched in EsP and may be involved in the up-regulations of EsP on the active X. Finally, human EsP genes in this study are enriched in the toll-like receptor pathway, NF-kB pathway, apoptotic pathway, and abnormal mental, developmental and reproductive phenotypes. These findings suggest misregulations of EsP may be involved in autoimmune, reproductive, and neurological diseases, providing insight for the diagnosis and treatment of these diseases.
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spelling pubmed-103365892023-07-13 Escaping but not the inactive X-linked protein complex coding genes may achieve X-chromosome dosage compensation and underlie X chromosome inactivation-related diseases Xing, Zhihao Zhang, Yuchao Tian, Zhongyuan Wang, Meng Xiao, Weiwei Zhu, Chunqing Zhao, Songhui Zhu, Yufei Hu, Landian Kong, Xiangyin Heliyon Research Article X chromosome dosage compensation (XDC) refers to the process by which X-linked genes acquire expression equivalence between two sexes. Ohno proposed that XDC is achieved by two-fold upregulations of X-linked genes in both sexes and by silencing one X chromosome (X chromosome inactivation, XCI) in females. However, genes subject to two-fold upregulations as well as the underlying mechanism remain unclear. It’s reported that gene dosage changes may only affect X-linked dosage-sensitive genes, such as protein complex coding genes (PCGs). Our results showed that in human PCGs are more likely to escape XCI and escaping PCGs (EsP) show two-fold higher expression than inactivated PCGs (InP) or other X-linked genes at RNA and protein levels in both sexes, which suggest that EsP may achieve upregulations and XDC. The higher expressions of EsP possibly result from the upregulations of the single active X chromosome (Xa), rather than escaping expressions from the inactive X chromosome (Xi). EsP genes have relatively high expression levels in humans and lower dN/dS ratios, suggesting that they are likely under stronger selection pressure over evolutionary time. Our study also suggests that SP1 transcription factor is significantly enriched in EsP and may be involved in the up-regulations of EsP on the active X. Finally, human EsP genes in this study are enriched in the toll-like receptor pathway, NF-kB pathway, apoptotic pathway, and abnormal mental, developmental and reproductive phenotypes. These findings suggest misregulations of EsP may be involved in autoimmune, reproductive, and neurological diseases, providing insight for the diagnosis and treatment of these diseases. Elsevier 2023-06-27 /pmc/articles/PMC10336589/ /pubmed/37449161 http://dx.doi.org/10.1016/j.heliyon.2023.e17721 Text en © 2023 The Authors. Published by Elsevier Ltd. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Xing, Zhihao
Zhang, Yuchao
Tian, Zhongyuan
Wang, Meng
Xiao, Weiwei
Zhu, Chunqing
Zhao, Songhui
Zhu, Yufei
Hu, Landian
Kong, Xiangyin
Escaping but not the inactive X-linked protein complex coding genes may achieve X-chromosome dosage compensation and underlie X chromosome inactivation-related diseases
title Escaping but not the inactive X-linked protein complex coding genes may achieve X-chromosome dosage compensation and underlie X chromosome inactivation-related diseases
title_full Escaping but not the inactive X-linked protein complex coding genes may achieve X-chromosome dosage compensation and underlie X chromosome inactivation-related diseases
title_fullStr Escaping but not the inactive X-linked protein complex coding genes may achieve X-chromosome dosage compensation and underlie X chromosome inactivation-related diseases
title_full_unstemmed Escaping but not the inactive X-linked protein complex coding genes may achieve X-chromosome dosage compensation and underlie X chromosome inactivation-related diseases
title_short Escaping but not the inactive X-linked protein complex coding genes may achieve X-chromosome dosage compensation and underlie X chromosome inactivation-related diseases
title_sort escaping but not the inactive x-linked protein complex coding genes may achieve x-chromosome dosage compensation and underlie x chromosome inactivation-related diseases
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10336589/
https://www.ncbi.nlm.nih.gov/pubmed/37449161
http://dx.doi.org/10.1016/j.heliyon.2023.e17721
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