Colonizing Microbes, IL-10 and IL-22: Keeping the Peace at the Mucosal Surface

被引:8
作者
Kidess, Evelien [1 ]
Kleerebezem, Michiel [1 ]
Brugman, Sylvia [1 ]
机构
[1] Wageningen Univ & Res, Anim Sci Grp, Host Microbe Interact, Wageningen, Netherlands
关键词
IL-10; IL-22; zebrafish; microbiota; mice; epithelial homeostasis; intestines; REGULATORY T-CELLS; INTERLEUKIN 10-DEFICIENT MICE; INFLAMMATORY-BOWEL-DISEASE; INNATE IMMUNE CELLS; GUT MICROBIOTA; INTESTINAL INFLAMMATION; ANTIMICROBIAL DEFENSE; BACTERIAL COMMUNITIES; GENE-EXPRESSION; RECEPTOR;
D O I
10.3389/fmicb.2021.729053
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Our world is filled with microbes. Each multicellular organism has developed ways to interact with this microbial environment. Microbes do not always pose a threat; they can contribute to many processes that benefit the host. Upon colonization both host and microbes adapt resulting in dynamic ecosystems in different host niches. Regulatory processes develop within the host to prevent overt inflammation to beneficial microbes, yet keeping the possibility to respond when pathogens attempt to adhere and invade tissues. This review will focus on microbial colonization and the early (innate) host immune response, with special emphasis on the microbiota-modifying roles of IL-10 and IL-22 in the intestine. IL-10 knock out mice show an altered microbial composition, and spontaneously develop enterocolitis over time. IL-22 knock out mice, although not developing enterocolitis spontaneously, also have an altered microbial composition and increase of epithelial-adherent bacteria, mainly caused by a decrease in mucin and anti-microbial peptide production. Recently interesting links have been found between the IL-10 and IL-22 pathways. While IL-22 can function as a regulatory cytokine at the mucosal surface, it also has inflammatory roles depending on the context. For example, lack of IL-22 in the IL-10-/- mice model prevents spontaneous colitis development. Additionally, the reduced microbial diversity observed in IL-10-/- mice was also reversed in IL-10/IL-22 double mutant mice (Gunasekera et al., 2020). Since in early life, host immunity develops in parallel and in interaction with colonizing microbes, there is a need for future studies that focus on the effect of the timing of colonization in relation to the developmental phase of the host. To illustrate this, examples from zebrafish research will be compared with studies performed in mammals. Since zebrafish develop from eggs and are directly exposed to the outside microbial world, timing of the development of host immunity and subsequent control of microbial composition, is different from mammals that develop in utero and only get exposed after birth. Likewise, colonization studies using adult germfree mice might yield different results from those using neonatal germfree mice. Lastly, special emphasis will be given to the need for host genotype and environmental (co-housing) control of experiments.
引用
收藏
页数:18
相关论文
共 50 条
  • [21] Synthetic interleukin 22 (IL-22) signaling reveals biological activity of homodimeric IL-10 receptor 2 and functional cross-talk with the IL-6 receptor gp130
    Mossner, Sofie
    Kuchner, Marcus
    Modares, Nastaran Fazel
    Knebel, Birgit
    Al-Hasani, Hadi
    Floss, Doreen M.
    Scheller, Juergen
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2020, 295 (35) : 12378 - 12397
  • [22] IL-17 and IL-22 in atopic allergic disease
    Souwer, Yuri
    Szegedi, Krisztina
    Kapsenberg, Martien L.
    de Jong, Esther C.
    CURRENT OPINION IN IMMUNOLOGY, 2010, 22 (06) : 821 - 826
  • [23] IL-17 and IL-22 mediate IL-20 subfamily cytokine production in cultured keratinocytes via increased IL-22 receptor expression
    Tohyama, Mikiko
    Hanakawa, Yasushi
    Shirakata, Yuji
    Dai, Xjuju
    Yang, Lujun
    Hirakawa, Satoshi
    Tokumaru, Sho
    Okazaki, Hidenori
    Sayama, Koji
    Hashimoto, Koji
    EUROPEAN JOURNAL OF IMMUNOLOGY, 2009, 39 (10) : 2779 - 2788
  • [24] MicroRNAs: New regulators of IL-22
    Lu, Zhou
    Liu, Ronghua
    Huang, Enyu
    Chu, Yiwei
    CELLULAR IMMUNOLOGY, 2016, 304 : 1 - 8
  • [25] Healing of intestinal inflammation by IL-22
    Mizoguchi, Atsushi
    INFLAMMATORY BOWEL DISEASES, 2012, 18 (09) : 1777 - 1784
  • [26] Effects of IL-22 on cardiovascular diseases
    Che, Yang
    Su, Zhaoliang
    Xia, Lin
    INTERNATIONAL IMMUNOPHARMACOLOGY, 2020, 81
  • [27] High Expression of IL-22 Suppresses Antigen-Induced Immune Responses and Eosinophilic Airway Inflammation via an IL-10-Associated Mechanism
    Nakagome, Kazuyuki
    Imamura, Mitsuru
    Kawahata, Kimito
    Harada, Hiroaki
    Okunishi, Katsuhide
    Matsumoto, Taku
    Sasaki, Oh
    Tanaka, Ryoichi
    Kano, Mitsunobu R.
    Chang, He
    Hanawa, Haruo
    Miyazaki, Jun-ichi
    Yamamoto, Kazuhiko
    Dohi, Makoto
    JOURNAL OF IMMUNOLOGY, 2011, 187 (10) : 5077 - 5089
  • [28] IL-22, cell regeneration and autoimmunity
    Nikoopour, Enayat
    Bellemore, Stacey M.
    Singh, Bhagirath
    CYTOKINE, 2015, 74 (01) : 35 - 42
  • [29] Glucocorticoids Inhibit Group 3 Innate Lymphocyte IL-22 Production
    Seshadri, Sudarshan
    Pope, Rosemary L.
    Zenewicz, Lauren A.
    JOURNAL OF IMMUNOLOGY, 2018, 201 (04) : 1267 - 1274
  • [30] Neutrophils enlist IL-22 to restore order in the gut
    Denning, Timothy L.
    Parkos, Charles A.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (31) : 12509 - 12510