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Co-immunoprecipitation Assay Using Endogenous Nuclear Proteins from Cells Cultured Under Hypoxic Conditions
Published on: August 2, 2018
Cellular oxygen sensing, signalling and how to survive translational arrest in hypoxia
1Institut für Vegetative Physiologie, Charité, Universitätsmedizin Berlin, Berlin, Germany. michael.faehling@charite.de
Abstract:
Hypoxia is a consequence of inadequate oxygen availability. At the cellular level, lowered oxygen concentration activates signal cascades including numerous receptors, ion channels, second messengers, as well as several protein kinases and phosphatases. This, in turn, activates trans-factors like transcription factors, RNA-binding proteins and miRNAs, mediating an alteration in gene expression control. Each cell type has its unique constellation of oxygen sensors, couplers and effectors that determine the activation and predominance of several independent hypoxia-sensitive pathways. Hence, altered gene expression patterns in hypoxia result from a complex regulatory network with multiple divergences and convergences. Although hundreds of genes are activated by transcriptional control in hypoxia, metabolic rate depression, as a consequence of reduced ATP level, causes inhibition of mRNA translation. In a multi-phase response to hypoxia, global protein synthesis is suppressed, mainly by phosphorylation of eIF2-alpha by PERK and inhibition of mTOR, causing suppression of 5'-cap-dependent mRNA translation. Growing evidence suggests that mRNAs undergo sorting at stress granules, which determines the fate of mRNA as to whether being translated, stored, or degraded. Data indicate that translation is suppressed only at 'free' polysomes, but is active at subsets of membrane-bound ribosomes. The recruitment of specific mRNAs into subcellular compartments seems to be crucial for local mRNA translation in prolonged hypoxia. Furthermore, ribosomes themselves may play a significant role in targeting mRNAs for translation. This review summarizes the multiple facets of the cellular adaptation to hypoxia observed in mammals.
Insights
Cellular adaptation to low oxygen (hypoxia) involves complex signaling pathways that alter gene expression and protein synthesis. Cells regulate translation via stress granules and ribosome activity to survive prolonged hypoxia.
Area of Science:
- Cellular Biology
- Physiology
- Molecular Biology
Background:
- Hypoxia, or inadequate oxygen availability, triggers intricate cellular signal cascades.
- These cascades involve receptors, ion channels, kinases, and transcription factors, altering gene expression.
Purpose of the Study:
- To review the multifaceted cellular adaptations to hypoxia in mammals.
- To elucidate the regulatory networks governing gene expression and protein synthesis under hypoxic conditions.
Main Methods:
- Review of existing literature on cellular responses to hypoxia.
- Analysis of signaling pathways, transcriptional control, and translational regulation.
Main Results:
- Hypoxia activates complex regulatory networks affecting gene expression.
- Metabolic depression and reduced ATP levels inhibit global mRNA translation.
- Protein synthesis is suppressed via PERK and mTOR pathways, affecting 5'-cap-dependent translation.
- mRNA sorting at stress granules and differential ribosome activity (free vs. membrane-bound) regulate translation fate.
- Local mRNA translation in specific subcellular compartments is crucial for prolonged hypoxia adaptation.
Conclusions:
- Cellular adaptation to hypoxia is a dynamic process involving intricate gene expression and translational control.
- Stress granules and ribosome targeting play key roles in managing mRNA fate during hypoxic stress.
- Understanding these mechanisms is vital for comprehending mammalian survival under low oxygen conditions.
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