Abstract
The contribution of nucleoli to the cellular stress response has been discussed for over a decade. Stress-induced inhibition of RNA polymerase I-dependent transcription is hypothesized as a possible effector program in such a response. In this study, we report a new mechanism by which ribosomal DNA transcription can be inhibited in response to cellular stress. Specifically, we demonstrate that mild hypoosmotic stress induces stabilization of R loops in ribosomal genes and thus provokes the nucleoli-specific DNA damage response, which is governed by the ATM- and Rad3-related (ATR) kinase. Activation of ATR in nucleoli strongly depends on Treacle, which is needed for efficient recruitment/retention of TopBP1 in nucleoli. Subsequent ATR-mediated activation of ATM results in repression of nucleolar transcription.
© The Author(s) 2019. Published by Oxford University Press on behalf of Nucleic Acids Research.
Publication types
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Research Support, Non-U.S. Gov't
MeSH terms
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Animals
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Ataxia Telangiectasia Mutated Proteins / physiology*
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Carrier Proteins / genetics*
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Cell Line
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Cell Nucleolus / drug effects
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Cell Nucleolus / metabolism*
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Cell Survival
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DNA Breaks, Double-Stranded
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DNA Damage
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DNA Replication
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DNA, Ribosomal / genetics*
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DNA-Binding Proteins / genetics*
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Dactinomycin / pharmacology
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Enzyme Activation / drug effects
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Gene Knockout Techniques
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Gene Silencing*
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Histones / metabolism
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Humans
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Hypotonic Solutions / pharmacology
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Mice
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Nuclear Proteins / genetics*
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Nuclear Proteins / physiology
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Osmotic Pressure*
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Phosphoproteins / physiology
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Phosphorylation / drug effects
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Protein Kinase Inhibitors / pharmacology
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Protein Processing, Post-Translational / drug effects
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R-Loop Structures*
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Transcription, Genetic / drug effects
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Transcription, Genetic / physiology*
Substances
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Carrier Proteins
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DNA, Ribosomal
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DNA-Binding Proteins
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H2AX protein, human
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Histones
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Hypotonic Solutions
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Nuclear Proteins
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Phosphoproteins
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Protein Kinase Inhibitors
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TCOF1 protein, human
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TOPBP1 protein, human
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Dactinomycin
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ATM protein, human
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ATR protein, human
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Ataxia Telangiectasia Mutated Proteins