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Monitoring Protein-RNA Interaction Dynamics In Vivo at High Temporal Resolution Using χCRAC
Published on: May 9, 2020
NOX4 activity is determined by mRNA levels and reveals a unique pattern of ROS generation
Lena Serrander1, Laetitia Cartier, Karen Bedard
1Foundation for Medical Research, University of Geneva, 64 av de la Roseraie, 1205, Geneva, Switzerland. Lena.Serrander@gmail.com
Abstract:
NOX4 is an enigmatic member of the NOX (NADPH oxidase) family of ROS (reactive oxygen species)-generating NADPH oxidases. NOX4 has a wide tissue distribution, but the physiological function and activation mechanisms are largely unknown, and its pharmacology is poorly understood. We have generated cell lines expressing NOX4 upon tetracycline induction. Tetracycline induced a rapid increase in NOX4 mRNA (1 h) followed closely (2 h) by a release of ROS. Upon tetracycline withdrawal, NOX4 mRNA levels and ROS release decreased rapidly (<24 h). In membrane preparations, NOX4 activity was selective for NADPH over NADH and did not require the addition of cytosol. The pharmacological profile of NOX4 was distinct from other NOX isoforms: DPI (diphenyleneiodonium chloride) and thioridazine inhibited the enzyme efficiently, whereas apocynin and gliotoxin did not (IC(50)>100 muM). The pattern of NOX4-dependent ROS generation was unique: (i) ROS release upon NOX4 induction was spontaneous without need for a stimulus, and (ii) the type of ROS released from NOX4-expressing cells was H(2)O(2), whereas superoxide (O(2)(-)) was almost undetectable. Probes that allow detection of intracellular O(2)(-) generation yielded differential results: DHE (dihydroethidium) fluorescence and ACP (1-acetoxy-3-carboxy-2,2,5,5-tetramethylpyrrolidine) ESR measurements did not detect any NOX4 signal, whereas a robust signal was observed with NBT. Thus NOX4 probably generates O(2)(-) within an intracellular compartment that is accessible to NBT (Nitro Blue Tetrazolium), but not to DHE or ACP. In conclusion, NOX4 has a distinct pharmacology and pattern of ROS generation. The close correlation between NOX4 mRNA and ROS generation might hint towards a function as an inducible NOX isoform.
Insights
NOX4, a NADPH oxidase, generates reactive oxygen species (ROS) like hydrogen peroxide upon induction. Its unique pharmacology and ROS release pattern suggest it functions as an inducible ROS-generating enzyme.
Area of Science:
- Biochemistry
- Cell Biology
- Enzymology
Background:
- NOX4 is a poorly understood NADPH oxidase isoform with broad tissue distribution.
- Its physiological functions, activation mechanisms, and pharmacology remain largely unknown.
Purpose of the Study:
- To characterize the function, activation, and pharmacology of NOX4.
- To investigate the type and pattern of reactive oxygen species (ROS) generated by NOX4.
Main Methods:
- Generated tetracycline-inducible NOX4-expressing cell lines.
- Assessed NOX4 mRNA and ROS release kinetics upon induction and withdrawal.
- Determined enzyme activity in membrane preparations, testing cofactor selectivity (NADPH vs. NADH) and requirement for cytosol.
- Evaluated pharmacological inhibition using DPI, thioridazine, apocynin, and gliotoxin.
- Characterized ROS production using various detection probes (DHE, ACP ESR, NBT) to differentiate ROS types and localization.
Main Results:
- Tetracycline induction rapidly increased NOX4 mRNA and subsequent ROS release, which decreased upon withdrawal.
- NOX4 activity was NADPH-dependent and did not require cytosol.
- NOX4 was inhibited by DPI and thioridazine but not by apocynin or gliotoxin.
- NOX4 produced H(2)O(2) spontaneously upon induction, with minimal superoxide (O(2)(-)) detected extracellularly.
- Intracellular O(2)(-) generation was detected by NBT but not by DHE or ACP ESR, suggesting compartmentalization.
Conclusions:
- NOX4 exhibits distinct pharmacology and a unique pattern of ROS generation, primarily H(2)O(2).
- The enzyme likely generates O(2)(-) within an intracellular compartment accessible to NBT.
- The tight correlation between NOX4 mRNA and ROS suggests its role as an inducible NOX isoform.

