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bioRxiv · 10.1101/2020.03.10.985390

Identification of Interleukin1β as an Amplifier of Interferon alpha-induced Antiviral Responses

Abstract

The induction of an interferon-mediated response is the first line of defense against pathogens such as viruses. Yet, the dynamics and extent of interferon alpha (IFN)-induced antiviral genes vary remarkably and comprise three expression clusters: early, intermediate and late. By mathematical modeling based on time-resolved quantitative data, we identified mRNA stability as well as a negative regulatory loop as key mechanisms endogenously controlling the expression dynamics of IFN-induced antiviral genes in hepatocytes. Guided by the mathematical model, we uncovered that this regulatory loop is mediated by the transcription factor IRF2 and showed that knock-down of IRF2 results in enhanced expression of early, intermediate and late IFN-induced antiviral genes. Co-stimulation experiments with different pro-inflammatory cytokines revealed that this amplified expression dynamics of the early, intermediate and late IFN-induced antiviral genes can be mimicked by co-application of IFN and interleukin1 beta (IL1{beta}). Consistently, we found that IL1{beta} enhances IFN-mediated repression of viral replication. Conversely, we observed that in IL1{beta} receptor knock-out mice replication of viruses sensitive to IFN is increased. Thus, IL1{beta} is capable to potentiate IFN-induced antiviral responses and could be exploited to improve antiviral therapies. Author SummaryInnate immune responses contribute to the control of viral infections and the induction of interferon alpha (IFN)-mediated antiviral responses is an important component. However, IFN induces a multitude of antiviral response genes and the expression dynamics of these genes can be classified as early, intermediate and late. Here we show, based on a mathematical modeling approach, that mRNA stability as well as the negative regulator IRF2 control the expression dynamics of IFN-induced antiviral genes. Knock-down of IRF2 resulted in the amplified IFN-mediated induction of the antiviral genes and this amplified expression of antiviral genes could be mimicked by co-stimulation with IFN and IL1{beta}. We observed that co-stimulation with IFN and IL1{beta} enhanced the repression of virus replication and that knock-out of the IL1 receptor in mice resulted in increased replication of a virus sensitive to IFN. In sum, our studies identified IL1{beta} as an important amplifier of IFN-induced antiviral responses.

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BibTeXRIS

Klingmüller, U., Robichon, K., Maiwald, T., Schilling, M., Schneider, A., Willemsen, J., Salopiata, F., Teusel, M., Kreutz, C., Ehlting, C., Huang, J., Chakraborty, S., Huang, X., Damm, G., Seehofer, D., Lang, P. A., Bode, J. G., Binder, M., Bartenschlager, R., Timmer, J.. 2020-03-10. Identification of Interleukin1β as an Amplifier of Interferon alpha-induced Antiviral Responses. https://doi.org/10.1101/2020.03.10.985390

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