Innate Immunity Laboratory, Department of Cell Biological Science, Faculty of Advanced Life Science, Hokkaido University, Kita-21, Nishi-11, Kita-ku, Sapporo, Hokkaido, 001-0021, Japan.
Department of Immunology, Medical Research Institute, Tokyo Medical and Dental University, 1-5-45 Yushima, Bunkyo-ku, Tokyo, 113-8510, Japan.
Biochem Biophys Res Commun. 2021 Mar 19;545:14-19. doi: 10.1016/j.bbrc.2021.01.050. Epub 2021 Jan 30.
Paneth cells and Lgr5+ intestinal stem cells (Lgr5+ ISCs) constitute the stem cell niche and maintain small intestinal epithelial integrity by recognizing various niche factors derived from subepithelial cells and external antigens. Although it has been known that interferon-γ (IFN-γ), a Th1 cytokine, is associated with intestinal epithelial disruption during inflammation as a niche factor, dynamics of Paneth cells and Lgr5+ ISCs in response to IFN-γ remain to be understood. Here we show that CAG-tdTomato;Lgr5-EGFP (CT-LE) mice generated in this study enable to identify Paneth cells and Lgr5+ ISCs separately by fluorescence signals. Lgr5+ ISCs underwent cell death a little earlier than Paneth cells in response to IFN-γ by simultaneous tracking using CT-LE mice. In addition, the timing of cell death in most Paneth cells overlapped with Lgr5+ ISCs, suggesting that Paneth cell depletion is induced directly by IFN-γ. Taken together, we established a novel simultaneous stem cell niche tracking method and clarified the involvement of both Paneth cells and Lgr5+ ISCs in stem cell niche damage induced by IFN-γ, further contribute to understanding the mechanism for maintaining intestinal homeostasis by stem cell niche.
潘氏细胞和 Lgr5+肠干细胞(Lgr5+ ISCs)构成了干细胞龛,通过识别来源于上皮下细胞和外部抗原的各种龛位因子来维持小肠上皮的完整性。虽然已经知道 Th1 细胞因子干扰素-γ(IFN-γ)作为一种龛位因子与炎症期间的肠上皮破坏有关,但 IFN-γ 对潘氏细胞和 Lgr5+ ISCs 的反应动力学仍有待了解。在这里,我们展示了本研究中生成的 CAG-tdTomato;Lgr5-EGFP(CT-LE)小鼠能够通过荧光信号分别识别潘氏细胞和 Lgr5+ ISCs。通过使用 CT-LE 小鼠进行同步跟踪,我们发现 Lgr5+ ISCs 对 IFN-γ的反应比潘氏细胞更早发生细胞死亡。此外,大多数潘氏细胞的细胞死亡时间与 Lgr5+ ISCs 重叠,表明潘氏细胞耗竭是由 IFN-γ直接诱导的。总之,我们建立了一种新的同时干细胞龛位跟踪方法,并阐明了潘氏细胞和 Lgr5+ ISCs 均参与 IFN-γ诱导的干细胞龛位损伤,进一步有助于理解干细胞龛位维持肠道内稳态的机制。