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Regnase-1 degradation is crucial for IL-33– and IL-25–mediated ILC2 activation
Kazufumi Matsushita, Hiroki Tanaka, Koubun Yasuda, Takumi Adachi, Ayumi Fukuoka, Shoko Akasaki, Atsuhide Koida, Etsushi Kuroda, Shizuo Akira, Tomohiro Yoshimoto
Kazufumi Matsushita, Hiroki Tanaka, Koubun Yasuda, Takumi Adachi, Ayumi Fukuoka, Shoko Akasaki, Atsuhide Koida, Etsushi Kuroda, Shizuo Akira, Tomohiro Yoshimoto
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Research Article Immunology

Regnase-1 degradation is crucial for IL-33– and IL-25–mediated ILC2 activation

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Abstract

Group 2 innate lymphoid cells (ILC2s) are a critical innate source of type 2 cytokines in allergic inflammation. Although ILC2s are recognized as a critical cell population in the allergic inflammation, the regulatory mechanism(s) of ILC2s are less well understood. Here, we show that Regnase-1, an immune regulatory RNAse that degrades inflammatory mRNAs, negatively regulates ILC2 function and that IκB kinase (IKK) complex–mediated Regnase-1 degradation is essential for IL-33– and IL-25–induced ILC2 activation. ILC2s from Regnase-1AA/AA mice expressing a Regnase-1 S435A/S439A mutant resistant to IKK complex–mediated degradation accumulated Regnase-1 protein in response to IL-33 and IL-25. IL-33– and IL-25–stimulated Regnase-1AA/AA ILC2s showed reduced cell proliferation and type 2 cytokine (IL-5, IL-9, and IL-13) production and increased cell death. In addition, Il2ra and Il1rl1, but not Il5, Il9, or Il13, mRNAs were destabilized in IL-33–stimulated Regnase-1AA/AA ILC2s. In vivo, Regnase-1AA/AA mice showed attenuated acute type 2 pulmonary inflammation induced by the instillation of IL-33, IL-25, or papain. Furthermore, the expulsion of Nippostrongylus brasiliensis was significantly delayed in Regnase-1AA/AA mice. These results demonstrate that IKK complex–mediated Regnase-1 degradation is essential for ILC2-mediated type 2 responses both in vitro and in vivo. Therefore, controlling Regnase-1 degradation is a potential therapeutic target for ILC2-contributed allergic disorders.

Authors

Kazufumi Matsushita, Hiroki Tanaka, Koubun Yasuda, Takumi Adachi, Ayumi Fukuoka, Shoko Akasaki, Atsuhide Koida, Etsushi Kuroda, Shizuo Akira, Tomohiro Yoshimoto

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Figure 2

IκB kinase complex–mediated Regnase-1 degradation is essential for IL-33– and IL-25–induced ILC2 activation.

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IκB kinase complex–mediated Regnase-1 degradation is essential for IL-33...
BM ILC2s from Regnase-1WT/WT (blue) and Regnase-1AA/AA (red) mice were stimulated with IL-2 alone, IL-2 and IL-33 (IL-2/33), or IL-2 and IL-25 (IL-2/25) for 3 days. (A) Live cell number was quantified by FACS. (B) The concentrations of IL-5, IL-9, and IL-13 in the culture supernatants were determined by ELISA. (C and D) Cell surface expressions of ICOS, IL-2Rα, and ST2 were analyzed by FACS. The gray histogram indicates unstained control. (E and F) Cells were stained with annexin V and 7-AAD, and the percentage of dead cells was quantified by FACS. (G and H) Golgi-Stop was added at the final 4 hours of a 3-day culture, and intracellular cytokine levels were analyzed by FACS. Gray histogram indicates unstained control. Data are representative of more than 3 independent experiments. Representative flow cytometry plots (C, E, and G) and mean (n = 3) ± SD (A, B, D, F, and H) are shown. MFI, mean fluorescence intensity. Significance was determined by 1-way ANOVA followed by Tukey’s test (A, B, and D) or 2-tailed Student’s t test (F and H). *P < 0.05; **P < 0.01; ***P < 0.001; ****P < 0.0001.

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