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BAFF、IL-10在炎症及免疫相关疾病中的表达
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Abstract:
各种疾病在发病机制中有相应的细胞因子参与机体的关键,BAFF作为一种促炎因子,IL-10作为抑炎因子在疾病的发病过程中起着关键的作用。对于慢性炎症疾病中,IL-10炎症因子的变化会引起BAFF因子的相对升高及降低,L-10及相关细胞因子通过对炎症反应的调节,对于BAFF会产生促进或者抑制作用,BAFF、IL-10在低氧环境及免疫相关疾病中也同样发挥着关键作用,全面了解IL-10、BAFF在低氧环境及免疫相关疾病中的表达,为临床治疗提供新思路。
Various diseases have corresponding cytokines involved in the pathogenesis, BAFF as a pro-inflammatory factor and IL-10 as an anti-inflammatory factor play a key role in the pathogenesis of the disease. For chronic inflammatory diseases, the changes of IL-10 inflammatory factors will cause the relative increase and decrease of BAFF factors. L-10 and related cytokines can promote or inhibit BAFF by regulating inflammatory response. BAFF and IL-10 also play a key role in hypoxic environment and immune-related diseases. We should fully understand the expression of IL-10 and BAFF in hypoxic environment and immune-related diseases to provide new ideas for clinical treatment.
[1] | Mockel, T., Basta, F., Weinmann-Menke, J., et al. (2021) B Cell Activating Factor (BAFF): Structure, Functions, Autoimmunity and Clinical Implications in Systemic Lupus Erythematosus (SLE). Autoimmunity Reviews, 20, Article 102736. https://doi.org/10.1016/j.autrev.2020.102736 |
[2] | Nardelli, B., Belvedere, O., Roschke, V., et al. (2001) Synthesis and Release of B-Lymphocyte Stimulator from Myeloid Cells. Blood, 97, 198-204. https://doi.org/10.1182/blood.V97.1.198 |
[3] | Min, Y.-N., Wang, C.-Y., Li, X.-X., et al. (2016) Participation of B-Cell-Activating Factor Receptors in the Pathogenesis of Immune Thrombocytopenia. Journal of Thrombosis and Haemostasis, 14, 559-571. https://doi.org/10.1111/jth.13246 |
[4] | Ouyang, W. and O’Garra, A. (2019) IL-10 Family Cytokines IL-10 and IL-22: From Basic Science to Clinical Translation. Immunity, 50, 871-891. https://doi.org/10.1016/j.immuni.2019.03.020 |
[5] | 阮国虎, 李欢. IL-10与慢性阻塞性肺疾病严重程度的关系[J]. 临床肺科杂志, 2019, 24(4): 669-672. |
[6] | 景燕, 艾山江·玉苏甫江, 陆明佳. 癫痫患者血清BAFF表达及与IFN-γ、IL-10水平的相关性[J]. 河北医药, 2020, 42(1): 88-91. |
[7] | Saulep-Easton, D., Vincent, F.B., Quah, P.S., et al. (2016) The BAFF Receptor TACI Controls IL-10 Production by Regulatory B Cells and CLL B Cells. Leukemia, 30, 163-172. https://doi.org/10.1038/leu.2015.174 |
[8] | Vincent, F.B., Morand, E.F., Schneider, P., et al. (2014) The BAFF/APRIL System in SLE Pathogenesis. Nature Reviews Rheumatology, 10, 365-373. https://doi.org/10.1038/nrrheum.2014.33 |
[9] | Khanna, K., Mishra, K.P., Chanda, S., et al. (2019) Effects of Acute Exposure to Hypobaric Hypoxia on Mucosal Barrier Injury and the Gastrointestinal Immune Axis in Rats. High Altitude Medicine & Biology, 20, 35-44. https://doi.org/10.1089/ham.2018.0031 |
[10] | Eltzschig, H.K. and Carmeliet, P. (2011) Hypoxia and Inflammation. New England Journal of Medicine, 364, 656-665. https://doi.org/10.1056/NEJMra0910283 |
[11] | Chung, E.Y., Liu, J., Zhang, Y. and Ma, Y. (2007) Differential Expression in Lupus-Associated IL-10 Promoter Single-Nucleotide Polymorphisms Is Mediated by Poly(ADP-Ribose) Polymerase-1. Genes & Immunity, 8, 577-589. https://doi.org/10.1038/sj.gene.6364420 |
[12] | 孙雪芳, 夏立军. BAFF在嗜酸粒细胞及中性粒细胞为主型的伴有鼻息肉的慢性鼻窦炎中发病机制的相关研究[J]. 临床耳鼻咽喉头颈外科杂志, 2019, 33(2): 183-186. |
[13] | 陈炜, 王璐, 谢斌, 等. B细胞活化因子在慢性鼻窦炎伴鼻息肉的诊断及分型中的应用价值[J]. 临床耳鼻咽喉头颈外科杂志, 2021, 35(10): 886-891. |
[14] | 孙燕, 罗志强. 嗜酸性粒细胞与慢性鼻-鼻窦炎伴鼻息肉的相关性研究进展[J]. 中国耳鼻咽喉颅底外科杂志, 2019, 25(1): 104-108. |
[15] | Zhang, Y., Tao, M., Chen, C., et al. (2022) BAFF Blockade Attenuates DSS-Induced Chronic Colitis via Inhibiting NLRP3 Inflammasome and NF-κB Activation. Frontiers in Immunology, 13, Article 783254. https://doi.org/10.3389/fimmu.2022.783254 |
[16] | Kotas, M.E. and Medzhitov, R. (2015) Homeostasis, Inflammation, and Disease Susceptibility. Cell, 160, 816-827. https://doi.org/10.1016/j.cell.2015.02.010 |
[17] | Bernshtein, B., Curato, C., Ioannou, M., et al. (2019) IL-23-Producing IL-10Rα-Deficient Gut Macrophages Elicit an IL-22-Driven Proinflammatory Epithelial Cell Response. Science Immunology, 4, eaau6571. https://doi.org/10.1126/sciimmunol.aau6571 |
[18] | 孙国先, 刘微丽, 郑庆斌, 等. PCT与SDI比值对重症细菌性肺炎患者短期预后的预测价值[J]. 中国感染控制杂志, 2022, 21(9): 885-890. |
[19] | 朱冯赟智, 王茜, 何菁, 等. 白介素-2及其受体在自身免疫病发病中作用的研究进展[J]. 中国免疫学杂志, 2023, 39(4): 842-848. |
[20] | 张黎蕾, 夏永泉, 王贤, 等. 重症肺炎患者炎症指标、免疫功能及凝血功能变化对预后的影响[J]. 南京医科大学学报(自然科学版), 2021, 41(2): 234-237. |
[21] | 陈丹, 任彦红, 郭青, 等. IL-6/IL-10比值用于评估入院肺炎患儿疾病严重程度的应用价值[J]. 临床肺科杂志, 2019, 24(4): 688-691. |
[22] | Liang, Z.-Q., Tu, P.-C., Ji, J.-J., et al. (2020) Gu-Ben-Fang-Xiao Attenuates Allergic Airway Inflammation by Inhibiting BAFF-Mediated B Cell Activation. Biomedicine & Pharmacotherapy, 132, Article 110801. https://doi.org/10.1016/j.biopha.2020.110801 |
[23] | Yu, K. and Lieber, M.R. (2019) Current Insights into the Mechanism of Mammalian Immunoglobulin Class Switch Recombination. Critical Reviews in Biochemistry and Molecular Biology, 54, 333-351. https://doi.org/10.1080/10409238.2019.1659227 |
[24] | Leomicronn, B. (2017) T Cells in Allergic Asthma: Key Players beyond the Th2 Pathway. Current Allergy and Asthma Reports, 17, Article No. 43. https://doi.org/10.1007/s11882-017-0714-1 |
[25] | Drake, L.Y., Iijima, K., Bartemes, K., et al. (2016) Group 2 Innate Lymphoid Cells Promote an Early Antibody Response to a Respiratory Antigen in Mice. The Journal of Immunology, 197, 1335-1342. https://doi.org/10.4049/jimmunol.1502669 |
[26] | Zhang, P., Liu, X., Guo, A., et al. (2016) B Cell-Activating Factor as a New Potential Marker in Inflammatory Bowel Disease. Digestive Diseases and Sciences, 61, 2608-2618. https://doi.org/10.1007/s10620-016-4136-z |
[27] | Striz, I. (2016) B Cell-Activating Factor (BAFF) in Inflammatory Bowel Disease: BAFFling No Longer? Digestive Diseases and Sciences, 61, 2456-2458. https://doi.org/10.1007/s10620-016-4231-1 |
[28] | Kumric, M., Zivkovic, P.M., Ticinovic, K.T., et al. (2021) Role of B-Cell Activating Factor (BAFF) in Inflammatory Bowel Disease. Diagnostics, 12, Article 45. https://doi.org/10.3390/diagnostics12010045 |
[29] | Mitsuyama, K., Tomiyasu, N., Takaki, K., et al. (2006) Interleukin-10 in the Pathophysiology of Inflammatory Bowel Disease: Increased Serum Concentrations during the Recovery Phase. Mediators of Inflammation, 2006, Article 026875. https://doi.org/10.1155/MI/2006/26875 |
[30] | 汤小龙, 向正国, 陈旭峰, 等. TNF-α、IL-2以及IL-10在炎症性肠病中的相关性研究[J]. 贵州医药, 2019, 43(3): 456-457. |
[31] | Liu, M., Yuan, W. and Park, S. (2022) Association between IL-10 rs3024505 and Susceptibility to Inflammatory Bowel Disease: A Systematic Review and Meta-Analysis. Cytokine, 149, Article 155721. https://doi.org/10.1016/j.cyto.2021.155721 |
[32] | Wang, C., Zhou, J., Wang, J., et al. (2020) Progress in the Mechanism and Targeted Drug Therapy for COPD. Signal Transduction and Targeted Therapy, 5, Article No. 248. https://doi.org/10.1038/s41392-020-00345-x |
[33] | Thai, L.-H., Le Gallou, S., Robbins, A., et al. (2018) BAFF and CD4+ T Cells Are Major Survival Factors for Long-Lived Splenic Plasma Cells in a B-Cell-Depletion Context. Blood, 131, 1545-1555. https://doi.org/10.1182/blood-2017-06-789578 |
[34] | Lee, J., Lee, J., Kwok, S.-K., et al. (2018) JAK-1 Inhibition Suppresses Interferon-Induced BAFF Production in Human Salivary Gland: Potential Therapeutic Strategy for Primary Sjogren’s Syndrome. Arthritis & Rheumatology, 70, 2057-2066. https://doi.org/10.1002/art.40589 |
[35] | Donaldson, G.P., Reis, G.L., Saad, M., et al. (2023) Suppression of Epithelial Proliferation and Tumorigenesis by Immunoglobulin A. https://doi.org/10.1101/2023.10.06.561290 |
[36] | 张颖, 付妤. B细胞激活因子在慢性炎症性疾病中研究进展[J]. 医学研究杂志, 2021, 50(12): 145-148. |
[37] | 王玲玲, 吕磊, 陈巧艳, 等. 血清HMGB1、IL-17、IL-10在不同分期COPD患者中的表达及临床意义[J]. 中外医学研究, 2023, 21(16): 69-73. |
[38] | 宋永娜, 郭林青, 陈秋生, 等. 外周血细胞因子及T淋巴细胞水平与慢性阻塞性肺疾病严重程度的相关性[J]. 新乡医学院学报, 2021, 38(4): 332-336. |
[39] | 刘珺. 低氧对小鼠脾脏淋巴细胞产生IL-17和IL-10的影响[D]: [硕士学位论文]. 西宁: 青海大学, 2020. |
[40] | 尚春香, 乌仁塔娜, 南星梅, 等. 慢性低氧暴露对血小板活化及其分泌的炎性因子水平的影响[J]. 中国高原医学与生物学杂志, 2017, 38(4): 262-266. |
[41] | 刘厚东, 郑必海, 孙泽平, 等. 急进高原个体机体炎性改变及其胃肠黏膜屏障损伤情况分析[J]. 现代医药卫生, 2011, 27(20): 3071-3073. |
[42] | 崔金霞, 张永东, 时莹庆, 等. 高海拔COPD大鼠血浆TNF-α、IL-6和IL-10水平升高[J]. 基础医学与临床, 2014, 34(8): 1108-1109. |
[43] | Chang, M., Nakagawa, P.A., Williams, S.A., et al. (2003) Immune Thrombocytopenic Purpura (ITP) Plasma and Purified ITP Monoclonal Autoantibodies Inhibit Megakaryocytopoiesis in vitro. Blood, 102, 887-895. https://doi.org/10.1182/blood-2002-05-1475 |
[44] | McMillan, R., Wang, L., Tomer, A., et al. (2004) Suppression of in vitro Megakaryocyte Production by Antiplatelet Autoantibodies from Adult Patients with Chronic ITP. Blood, 103, 1364-1369. https://doi.org/10.1182/blood-2003-08-2672 |
[45] | Panitsas, F.P., Theodoropoulou, M., Kouraklis, A., et al. (2004) Adult Chronic Idiopathic Thrombocytopenic Purpura (ITP) Is the Manifestation of a Type-1 Polarized Immune Response. Blood, 103, 2645-2647. https://doi.org/10.1182/blood-2003-07-2268 |
[46] | 郑蒙蒙, 施建栋, 周海霞. TLR9联合CD40信号对ITP患儿外周血中IL10+ CD3-细胞亚群改变的研究[J]. 温州医科大学学报, 2020, 50(7): 568-572. |
[47] | Xu, P., Shao, X., Ou, Y., et al. (2022) Neutrophils Contribute to Elevated BAFF Levels to Modulate Adaptive Immunity in Patients with Primary Immune Thrombocytopenia by CD62P and PSGL1 Interaction. Clinical & Translational Immunology, 11, e1399. https://doi.org/10.1002/cti2.1399 |
[48] | Lee, D.C., Harker, J.A., Tregoning, J.S., et al. (2010) CD25+ Natural Regulatory T Cells Are Critical in Limiting Innate and Adaptive Immunity and Resolving Disease Following Respiratory Syncytial Virus Infection. Journal of Virology, 84, 8790-8798. https://doi.org/10.1128/JVI.00796-10 |
[49] | 徐明, 黄烽. 风湿病实验室诊断进展[J]. 中华检验医学杂志, 2004, 27(12): 868-872. |
[50] | Pers, J.-O., Daridon, C., Devauchelle, V., et al. (2005) BAFF Overexpression Is Associated with Autoantibody Production in Autoimmune Diseases. Annals of the New York Academy of Sciences, 1050, 34-39. https://doi.org/10.1196/annals.1313.004 |
[51] | Mariette, X., Roux, S., Zhang, J., et al. (2003) The Level of BLyS (BAFF) Correlates with the Titre of Autoantibodies in Human Sjogren’s Syndrome. Annals of the Rheumatic Diseases, 62, 168-171. https://doi.org/10.1136/ard.62.2.168 |
[52] | 程晓静, 张葵, 符向辉, 等. B细胞刺激因子及其受体在干燥综合征发病机制中的作用进展[J]. 中国医药导报, 2017, 14(3): 47-51. |