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Deficiency of ribosomal proteins reshapes the transcriptional and translational landscape in human cells

Human ribosomes have long been thought to be uniform factories with little regulatory function. Accumulating evidence emphasizes the heterogeneity of ribosomal protein (RP) expression in specific cellular functions and development. However, a systematic understanding of functional relevance of RPs i...

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Autores principales: Luan, Yizhao, Tang, Nan, Yang, Jiaqi, Liu, Shuting, Cheng, Chichi, Wang, Yan, Chen, Congying, Guo, Ya-nan, Wang, Hongwei, Zhao, Wenxue, Zhao, Qian, Li, Wei, Xiang, Mengqing, Ju, Rong, Xie, Zhi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9262593/
https://www.ncbi.nlm.nih.gov/pubmed/35137207
http://dx.doi.org/10.1093/nar/gkac053
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author Luan, Yizhao
Tang, Nan
Yang, Jiaqi
Liu, Shuting
Cheng, Chichi
Wang, Yan
Chen, Congying
Guo, Ya-nan
Wang, Hongwei
Zhao, Wenxue
Zhao, Qian
Li, Wei
Xiang, Mengqing
Ju, Rong
Xie, Zhi
author_facet Luan, Yizhao
Tang, Nan
Yang, Jiaqi
Liu, Shuting
Cheng, Chichi
Wang, Yan
Chen, Congying
Guo, Ya-nan
Wang, Hongwei
Zhao, Wenxue
Zhao, Qian
Li, Wei
Xiang, Mengqing
Ju, Rong
Xie, Zhi
author_sort Luan, Yizhao
collection PubMed
description Human ribosomes have long been thought to be uniform factories with little regulatory function. Accumulating evidence emphasizes the heterogeneity of ribosomal protein (RP) expression in specific cellular functions and development. However, a systematic understanding of functional relevance of RPs is lacking. Here, we surveyed translational and transcriptional changes after individual knockdown of 75 RPs, 44 from the large subunit (60S) and 31 from the small subunit (40S), by Ribo-seq and RNA-seq analyses. Deficiency of individual RPs altered specific subsets of genes transcriptionally and translationally. RP genes were under cotranslational regulation upon ribosomal stress, and deficiency of the 60S RPs and the 40S RPs had opposite effects. RP deficiency altered the expression of genes related to eight major functional classes, including the cell cycle, cellular metabolism, signal transduction and development. 60S RP deficiency led to greater inhibitory effects on cell growth than did 40S RP deficiency, through P53 signaling. Particularly, we showed that eS8/RPS8 deficiency stimulated apoptosis while eL13/RPL13 or eL18/RPL18 deficiency promoted senescence. We also validated the phenotypic impacts of uL5/RPL11 and eL15/RPL15 deficiency on retina development and angiogenesis, respectively. Overall, our study provides a valuable resource for and novel insights into ribosome regulation in cellular activities, development and diseases.
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spelling pubmed-92625932022-07-08 Deficiency of ribosomal proteins reshapes the transcriptional and translational landscape in human cells Luan, Yizhao Tang, Nan Yang, Jiaqi Liu, Shuting Cheng, Chichi Wang, Yan Chen, Congying Guo, Ya-nan Wang, Hongwei Zhao, Wenxue Zhao, Qian Li, Wei Xiang, Mengqing Ju, Rong Xie, Zhi Nucleic Acids Res NAR Breakthrough Article Human ribosomes have long been thought to be uniform factories with little regulatory function. Accumulating evidence emphasizes the heterogeneity of ribosomal protein (RP) expression in specific cellular functions and development. However, a systematic understanding of functional relevance of RPs is lacking. Here, we surveyed translational and transcriptional changes after individual knockdown of 75 RPs, 44 from the large subunit (60S) and 31 from the small subunit (40S), by Ribo-seq and RNA-seq analyses. Deficiency of individual RPs altered specific subsets of genes transcriptionally and translationally. RP genes were under cotranslational regulation upon ribosomal stress, and deficiency of the 60S RPs and the 40S RPs had opposite effects. RP deficiency altered the expression of genes related to eight major functional classes, including the cell cycle, cellular metabolism, signal transduction and development. 60S RP deficiency led to greater inhibitory effects on cell growth than did 40S RP deficiency, through P53 signaling. Particularly, we showed that eS8/RPS8 deficiency stimulated apoptosis while eL13/RPL13 or eL18/RPL18 deficiency promoted senescence. We also validated the phenotypic impacts of uL5/RPL11 and eL15/RPL15 deficiency on retina development and angiogenesis, respectively. Overall, our study provides a valuable resource for and novel insights into ribosome regulation in cellular activities, development and diseases. Oxford University Press 2022-02-08 /pmc/articles/PMC9262593/ /pubmed/35137207 http://dx.doi.org/10.1093/nar/gkac053 Text en © The Author(s) 2022. Published by Oxford University Press on behalf of Nucleic Acids Research. https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle NAR Breakthrough Article
Luan, Yizhao
Tang, Nan
Yang, Jiaqi
Liu, Shuting
Cheng, Chichi
Wang, Yan
Chen, Congying
Guo, Ya-nan
Wang, Hongwei
Zhao, Wenxue
Zhao, Qian
Li, Wei
Xiang, Mengqing
Ju, Rong
Xie, Zhi
Deficiency of ribosomal proteins reshapes the transcriptional and translational landscape in human cells
title Deficiency of ribosomal proteins reshapes the transcriptional and translational landscape in human cells
title_full Deficiency of ribosomal proteins reshapes the transcriptional and translational landscape in human cells
title_fullStr Deficiency of ribosomal proteins reshapes the transcriptional and translational landscape in human cells
title_full_unstemmed Deficiency of ribosomal proteins reshapes the transcriptional and translational landscape in human cells
title_short Deficiency of ribosomal proteins reshapes the transcriptional and translational landscape in human cells
title_sort deficiency of ribosomal proteins reshapes the transcriptional and translational landscape in human cells
topic NAR Breakthrough Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9262593/
https://www.ncbi.nlm.nih.gov/pubmed/35137207
http://dx.doi.org/10.1093/nar/gkac053
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