综述
ENGLISH ABSTRACT
调节性T细胞在调控抗结核免疫过程中的研究进展
李浩然
姚丛
李珊珊
王伟
逄宇
作者及单位信息
·
DOI: 10.3760/cma.j.cn112147-20210830-00609
Progress of regulatory T cells in the regulation of anti-tuberculosis immunity
Li Haoran
Yao Cong
Li Shanshan
Wang Wei
Pang Yu
Authors Info & Affiliations
Li Haoran
Department of Bacteriology and Immunology, Beijing Chest Hospital, Capital Medical University, Beijing 101149, China
Yao Cong
Beijing Tuberculosis and Thoracic Tumor Research Institute, Beijing Chest Hospital, Capital Medical University, Beijing 101149, China
Li Shanshan
Department of Bacteriology and Immunology, Beijing Chest Hospital, Capital Medical University, Beijing 101149, China
Wang Wei
Department of Bacteriology and Immunology, Beijing Chest Hospital, Capital Medical University, Beijing 101149, China
Pang Yu
Beijing Tuberculosis and Thoracic Tumor Research Institute, Beijing Chest Hospital, Capital Medical University, Beijing 101149, China
·
DOI: 10.3760/cma.j.cn112147-20210830-00609
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摘要

结核分枝杆菌(MTB)作为一种胞内寄生菌,主要通过飞沫传播侵入人体,可导致人体多器官感染从而引起机体产生以T细胞为主导的抗结核免疫应答。调节性T细胞(Treg细胞)作为一类负向调节机体免疫反应的T淋巴细胞亚群,在宿主抗结核免疫中发挥着调控免疫平衡的重要作用。大量研究表明MTB特异性Treg细胞影响着结核病的发生、发展以及疫苗的效能。因此,阐明MTB特异性Treg细胞的抗结核免疫应答的作用及调控机制将有助于进一步揭示宿主抗MTB免疫细胞功能降低的机制,可为结核病的免疫治疗研究提供依据。本文简要介绍了Treg细胞的亚型与功能,对其在结核病领域的研究进展进行了综述。

ABSTRACT

Mycobacterium tuberculosis (MTB), as an intracellular parasitic bacterium, invades the human body mainly through droplets, which can lead to multiple organ infection, causing the body to produce T cell-dominated immunity to tuberculosis (TB). Regulatory T cells (Tregs), as a class of T lymphocyte subsets that negatively regulate the immune response of the body, play an important role in regulating immune balance in host anti-tuberculosis immunity. A large number of studies have shown that MTB-specific Tregs affects the occurrence and development of tuberculosis and the efficacy of the vaccine. Therefore, elucidating the role and regulatory mechanism underlying anti-MTB immune response of MTB-specific Tregs will help to further understanding of the decrease of host anti-MTB immune cell function, and provide a basis for the study of immunotherapy of TB. This paper briefly introduces the subtypes and functions of Tregs, and systematically reviews the research progress of Tregs in many fields of TB.

Wang Wei, Email: mocdef.nabuyila010iewgnaw
Pang Yu, Email: mocdef.3ab61dnuopuygnap

Li Haoran and Yao Cong contributed equally to the article

引用本文

李浩然,姚丛,李珊珊,等. 调节性T细胞在调控抗结核免疫过程中的研究进展[J]. 中华结核和呼吸杂志,2022,45(05):502-509.

DOI:10.3760/cma.j.cn112147-20210830-00609

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结核分枝杆菌( Mycobacterium tuberculosis,MTB)作为一种胞内寄生菌,主要通过飞沫传播侵入人体,可导致人体多器官感染从而引起结核病 1。约90%的MTB感染者为潜伏性结核感染(latent tuberculosis infection,LTBI),长期带菌,自身无症状但也无法彻底清除病原体,但当宿主免疫功能受损时,可快速发展为具有临床症状的结核病患者 2。细胞介导的免疫应答在抗结核感染中发挥着重要作用 3。T 细胞、自然杀伤细胞、巨噬细胞等免疫细胞,以及γ-干扰素(interferon γ,IFN-γ)、肿瘤坏死因子-α(tumor necrosis factor alpha,TNF-α)和一氧化氮(NO)等效应分子均为该保护性免疫应答的关键组分,其中CD4 +T 细胞在宿主抗结核病感染免疫中的作用尤为重要 4。当MTB侵入人体后,机体将调动这些关键组分进行杀伤清除并抑制其播散 5。与此同时,Treg细胞迅速抑制效应性T细胞的激活和扩张,并使促炎细胞因子失效,从而阻止免疫介导性损伤,维持免疫稳态。发挥免疫抑制作用的Treg细胞可分为两类:由胸腺中发育成熟产生的自然调节性T细胞(natural Treg cell,nTreg);CD4 +T细胞在外周被转化生长因子-β(transforming growth factor-β,TGF-β)及白细胞介素(IL)-2等细胞因子诱导产生的适应性调节性T细胞(induced Treg cell,iTreg) 6。两者在MTB感染过程中直接或间接地抑制机体的免疫应答,甚至使免疫细胞功能失活,使其可在机体内存活和增殖,达到免疫逃逸的目的,但体内免疫稳态的破坏或Treg/Teff比率的失衡均可能导致慢性炎症或自身免疫病的产生 7。本文将从综述Treg细胞在调控抗结核免疫过程中的研究进展。
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参考文献
[1]
Harding E . WHO global progress report on tuberculosis elimination[J]. Lancet Respir Med, 2020,8(1):19. DOI: 10.1016/S2213-2600(19)30418-7 .
返回引文位置Google Scholar
百度学术
万方数据
[2]
Carranza C , Pedraza-Sanchez S , de Oyarzabal-Mendez E ,et al. Diagnosis for latent tuberculosis infection: new alternatives[J]. Front Immunol, 2020,11:2006. DOI: 10.3389/fimmu.2020.02006 .
返回引文位置Google Scholar
百度学术
万方数据
[3]
Mayer-Barber KD , Barber DL . Innate and adaptive cellular immune responses to Mycobacterium tuberculosis infection[J]. Cold Spring Harb Perspect Med, 2015,5(12):a018424. DOI: 10.1101/cshperspect.a018424 .
返回引文位置Google Scholar
百度学术
万方数据
[4]
Qin S , Chen R , Jiang Y ,et al. Multifunctional T cell response in active pulmonary tuberculosis patients[J]. Int Immunopharmacol, 2021,99:107898. DOI: 10.1016/j.intimp.2021.107898 .
返回引文位置Google Scholar
百度学术
万方数据
[5]
杨江华. CD4+CD25+调节性T细胞调控结核分枝杆菌感染的机制和意义[J]. 中国病原生物学杂志, 2009,4(5):378-379, 386.
返回引文位置Google Scholar
百度学术
万方数据
[6]
Savage PA , Klawon D , Miller CH . Regulatory T Cell Development[J]. Annu Rev Immunol, 2020,38:421-453. DOI: 10.1146/annurev-immunol-100219-020937 .
返回引文位置Google Scholar
百度学术
万方数据
[7]
Berod L , Puttur F , Huehn J ,et al. Tregs in infection and vaccinology: heroes or traitors?[J]. Microb Biotechnol, 2012,5(2):260-269. DOI: 10.1111/j.1751-7915.2011.00299.x .
返回引文位置Google Scholar
百度学术
万方数据
[8]
Kanamori M , Nakatsukasa H , Okada M ,et al. Induced regulatory T cells: their development, stability, and applications[J]. Trends Immunol, 2016,37(11):803-811. DOI: 10.1016/j.it.2016.08.012 .
返回引文位置Google Scholar
百度学术
万方数据
[9]
Miyara M , Sakaguchi S . Natural regulatory T cells: mechanisms of suppression[J]. Trends Mol Med, 2007,13(3):108-116. DOI: 10.1016/j.molmed.2007.01.003 .
返回引文位置Google Scholar
百度学术
万方数据
[10]
Boer MC , van Meijgaarden KE , Bastid J ,et al. CD39 is involved in mediating suppression by Mycobacterium bovis BCG-activated human CD8(+) CD39(+) regulatory T cells[J]. Eur J Immunol, 2013,43(7):1925-1932. DOI: 10.1002/eji.201243286 .
返回引文位置Google Scholar
百度学术
万方数据
[11]
Belkaid Y , Piccirillo CA , Mendez S ,et al. CD4+CD25+regulatory T cells control Leishmania major persistence and immunity[J]. Nature, 2002,420(6915):502-507. DOI: 10.1038/nature01152 .
返回引文位置Google Scholar
百度学术
万方数据
[12]
Fontenot JD , Gavin MA , Rudensky AY . Foxp3 programs the development and function of CD4+CD25+regulatory T cells[J]. Nat Immunol, 2003,4(4):330-336. DOI: 10.1038/ni904 .
返回引文位置Google Scholar
百度学术
万方数据
[13]
Yu N , Li X , Song W ,et al. CD4(+)CD25 (+)CD127 (low/-) T cells: a more specific Treg population in human peripheral blood[J]. Inflammation, 2012,35(6):1773-1780. DOI: 10.1007/s10753-012-9496-8 .
返回引文位置Google Scholar
百度学术
万方数据
[14]
Lenaerts A , Barry CE , Dartois V . Heterogeneity in tuberculosis pathology, microenvironments and therapeutic responses[J]. Immunol Rev, 2015,264(1):288-307. DOI: 10.1111/imr.12252 .
返回引文位置Google Scholar
百度学术
万方数据
[15]
Green AM , Mattila JT , Bigbee CL ,et al. CD4(+) regulatory T cells in a cynomolgus macaque model of Mycobacterium tuberculosis infection[J]. J Infect Dis, 2010,202(4):533-541. DOI: 10.1086/654896 .
返回引文位置Google Scholar
百度学术
万方数据
[16]
Cooper AM . Cell-mediated immune responses in tuberculosis[J]. Annu Rev Immunol, 2009,27:393-422. DOI: 10.1146/annurev.immunol.021908.132703 .
返回引文位置Google Scholar
百度学术
万方数据
[17]
Cardona P , Marzo-Escartín E , Tapia G ,et al. Oral Administration of Heat-Killed Mycobacterium manresensis Delays Progression toward Active Tuberculosis in C3HeB/FeJ Mice[J]. Front Microbiol, 2015,6:1482. DOI: 10.3389/fmicb.2015.01482 .
返回引文位置Google Scholar
百度学术
万方数据
[18]
Scott-Browne JP , Shafiani S , Tucker-Heard G ,et al. Expansion and function of Foxp3-expressing T regulatory cells during tuberculosis[J]. J Exp Med, 2007,204(9):2159-2169. DOI: 10.1084/jem.20062105 .
返回引文位置Google Scholar
百度学术
万方数据
[19]
Kapina MA , Rubakova EI , Majorov KB ,et al. Capacity of lung stroma to educate dendritic cells inhibiting mycobacteria-specific T-cell response depends upon genetic susceptibility to tuberculosis[J]. PLoS One, 2013,8(8):e72773. DOI: 10.1371/journal.pone.0072773 .
返回引文位置Google Scholar
百度学术
万方数据
[20]
Shafiani S , Dinh C , Ertelt JM ,et al. Pathogen-specific Treg cells expand early during mycobacterium tuberculosis infection but are later eliminated in response to Interleukin-12[J]. Immunity, 2013,38(6):1261-1270. DOI: 10.1016/j.immuni.2013.06.003 .
返回引文位置Google Scholar
百度学术
万方数据
[21]
McBride A , Konowich J , Salgame P . Host defense and recruitment of Foxp3⁺ T regulatory cells to the lungs in chronic Mycobacterium tuberculosis infection requires toll-like receptor 2 [J]. PLoS Pathog, 2013,9(6):e1003397. DOI: 10.1371/journal.ppat.1003397 .
返回引文位置Google Scholar
百度学术
万方数据
[22]
Feruglio SL , Kvale D , Dyrhol-Riise AM . T Cell Responses and Regulation and the Impact of In Vitro IL-10 and TGF-β Modulation During Treatment of Active Tuberculosis[J]. Scand J Immunol, 2017,85(2):138-146. DOI: 10.1111/sji.12511 .
返回引文位置Google Scholar
百度学术
万方数据
[23]
Quinn KM , McHugh RS , Rich FJ ,et al. Inactivation of CD4+CD25+regulatory T cells during early mycobacterial infection increases cytokine production but does not affect pathogen load[J]. Immunol Cell Biol, 2006,84(5):467-474. DOI: 10.1111/j.1440-1711.2006.01460.x .
返回引文位置Google Scholar
百度学术
万方数据
[24]
Nunes-Alves C , Booty MG , Carpenter SM ,et al. In search of a new paradigm for protective immunity to TB[J]. Nat Rev Microbiol, 2014,12(4):289-299. DOI: 10.1038/nrmicro3230 .
返回引文位置Google Scholar
百度学术
万方数据
[25]
Henao-Tamayo MI , Obregón-Henao A , Arnett K ,et al. Effect of bacillus Calmette-Guérin vaccination on CD4+Foxp3+T cells during acquired immune response to Mycobacterium tuberculosis infection[J]. J Leukoc Biol, 2016,99(4):605-617. DOI: 10.1189/jlb.4A0614-308RR .
返回引文位置Google Scholar
百度学术
万方数据
[26]
Orme IM , Robinson RT , Cooper AM . The balance between protective and pathogenic immune responses in the TB-infected lung[J]. Nat Immunol, 2015,16(1):57-63. DOI: 10.1038/ni.3048 .
返回引文位置Google Scholar
百度学术
万方数据
[27]
Henao-Tamayo M , Obregón-Henao A , Ordway DJ ,et al. A mouse model of tuberculosis reinfection[J]. Tuberculosis (Edinb), 2012,92(3):211-217. DOI: 10.1016/j.tube.2012.02.008 .
返回引文位置Google Scholar
百度学术
万方数据
[28]
Ordway D , Palanisamy G , Henao-Tamayo M ,et al. The cellular immune response to Mycobacterium tuberculosis infection in the guinea pig[J]. J Immunol, 2007,179(4):2532-2541. DOI: 10.4049/jimmunol.179.4.2532 .
返回引文位置Google Scholar
百度学术
万方数据
[29]
Shang S , Harton M , Tamayo MH ,et al. Increased Foxp3 expression in guinea pigs infected with W-Beijing strains of M. tuberculosis[J]. Tuberculosis (Edinb), 2011,91(5):378-385. DOI: 10.1016/j.tube.2011.06.001 .
返回引文位置Google Scholar
百度学术
万方数据
[30]
Kato-Maeda M , Shanley CA , Ackart D ,et al. Beijing sublineages of Mycobacterium tuberculosis differ in pathogenicity in the guinea pig[J]. Clin Vaccine Immunol, 2012,19(8):1227-1237. DOI: 10.1128/CVI.00250-12 .
返回引文位置Google Scholar
百度学术
万方数据
[31]
Podell BK , Ackart DF , Obregon-Henao A ,et al. Increased severity of tuberculosis in Guinea pigs with type 2 diabetes: a model of diabetes-tuberculosis comorbidity[J]. Am J Pathol, 2014,184(4):1104-1118. DOI: 10.1016/j.ajpath.2013.12.015 .
返回引文位置Google Scholar
百度学术
万方数据
[32]
Phillips BL , Mehra S , Ahsan MH ,et al. LAG3 expression in active Mycobacterium tuberculosis infections[J]. Am J Path ol , 2015,185(3):820-833. DOI: 10.1016/j.ajpath.2014.11.003 .
返回引文位置Google Scholar
百度学术
万方数据
[33]
Chen CY , Huang D , Yao S ,et al. IL-2 simultaneously expands Foxp3+T regulatory and T effector cells and confers resistance to severe tuberculosis (TB): implicative Treg-T effector cooperation in immunity to TB[J]. J Immunol, 2012,188(9):4278-4288. DOI: 10.4049/jimmunol.1101291 .
返回引文位置Google Scholar
百度学术
万方数据
[34]
Guyot-Revol V , Innes JA , Hackforth S ,et al. Regulatory T cells are expanded in blood and disease sites in patients with tuberculosis[J]. Am J Respir Crit Care Med, 2006,173(7):803-810. DOI: 10.1164/rccm.200508-1294OC .
返回引文位置Google Scholar
百度学术
万方数据
[35]
Kamboj D , Gupta P , Basil MV ,et al. Improved Mycobacterium tuberculosis clearance after the restoration of IFN-γ(+) TNF-α(+) CD4(+) T cells: Impact of PD-1 inhibition in active tuberculosis patients[J]. Eur J Immunol, 2020,50(5):736-747. DOI: 10.1002/eji.201948283 .
返回引文位置Google Scholar
百度学术
万方数据
[36]
Singh A , Dey AB , Mohan A ,et al. Foxp3+regulatory T cells among tuberculosis patients: impact on prognosis and restoration of antigen specific IFN-γ producing T cells[J]. PLoS One, 2012,7(9):e44728. DOI: 10.1371/journal.pone.0044728 .
返回引文位置Google Scholar
百度学术
万方数据
[37]
Luo J , Zhang M , Yan B ,et al. Imbalance of Th17 and Treg in peripheral blood mononuclear cells of active tuberculosis patients[J]. Braz J Infect Dis, 2017,21(2):155-161. DOI: 10.1016/j.bjid.2016.10.011 .
返回引文位置Google Scholar
百度学术
万方数据
[38]
Kaufmann SH . Protection against tuberculosis: cytokines, T cells, and macrophages[J]. Ann Rheum Dis, 2002,61Suppl 2(Suppl 2):ii54-58. DOI: 10.1136/ard.61.suppl_2.ii54 .
返回引文位置Google Scholar
百度学术
万方数据
[39]
Newcomb DC , Zhou W , Moore ML ,et al. A functional IL-13 receptor is expressed on polarized murine CD4+Th17 cells and IL-13 signaling attenuates Th17 cytokine production[J]. J Immunol, 2009,182(9):5317-5321. DOI: 10.4049/jimmunol.0803868 .
返回引文位置Google Scholar
百度学术
万方数据
[40]
Babu S , Bhat SQ , Kumar NP ,et al. Regulatory T cells modulate Th17 responses in patients with positive tuberculin skin test results[J]. J Infect Dis, 2010,201(1):20-31. DOI: 10.1086/648735 .
返回引文位置Google Scholar
百度学术
万方数据
[41]
Burl S , Hill PC , Jeffries DJ ,et al. FOXP3 gene expression in a tuberculosis case contac t study [J]. Clin Exp Immunol, 2007,149(1):117-122. DOI: 10.1111/j.1365-2249.2007.03399.x .
返回引文位置Google Scholar
百度学术
万方数据
[42]
Pang H , Yu Q , Guo B ,et al. Frequency of regulatory T-cells in the peripheral blood of patients with pulmonary tuberculosis from shanxi province, china[J]. PLoS One, 2013,8(6):e65496. DOI: 10.1371/journal.pone.0065496 .
返回引文位置Google Scholar
百度学术
万方数据
[43]
Zewdie M , Howe R , Hoff ST ,et al. Ex-vivo characterization of regulatory T cells in pulmonary tuberculosis patients, latently infected persons, and healthy endemic controls[J]. Tuberculosis (Edinb), 2016,100:61-68. DOI: 10.1016/j.tube.2016.06.007 .
返回引文位置Google Scholar
百度学术
万方数据
[44]
Wergeland I , Assmus J , Dyrhol-Riise AM . T regulatory cells and immune activation in Mycobacterium tuberculosis infection and the effect of preventive therapy[J]. Scand J Immunol, 2011,73(3):234-242. DOI: 10.1111/j.1365-3083.2010.02496.x .
返回引文位置Google Scholar
百度学术
万方数据
[45]
Kumar NP , Moideen K , Banurekha VV ,et al. IL-27 and TGFβ mediated expansion of Th1 and adaptive regulatory T cells expressing IL-10 correlates with bacterial burden and disease severity in pulmonary tuberculosis[J]. Immun Inflamm Dis, 2015,3(3):289-299. DOI: 10.1002/iid3.68 .
返回引文位置Google Scholar
百度学术
万方数据
[46]
Periasamy S , Dhiman R , Barnes PF ,et al. Programmed death 1 and cytokine inducible SH2-containing protein dependent expansion of regulatory T cells upon stimulation With Mycobacterium tuberculosis[J]. J Infect Dis, 2011,203(9):1256-1263. DOI: 10.1093/infdis/jir011 .
返回引文位置Google Scholar
百度学术
万方数据
[47]
Trinath J , Maddur MS , Kaveri SV ,et al. Mycobacterium tuberculosis promotes regulatory T-cell expansion via induction of programmed death-1 ligand 1 (PD-L1, CD274) on dendritic cells[J]. J Infect Dis, 2012,205(4):694-696. DOI: 10.1093/infdis/jir820 .
返回引文位置Google Scholar
百度学术
万方数据
[48]
Wu C , Zhou Q , Qin XJ ,et al. CCL22 is involved in the recruitment of CD4+CD25 high T cells into tuberculous pleural effusions[J]. Respirology, 2010,15(3):522-529. DOI: 10.1111/j.1440-1843.2010.01719.x .
返回引文位置Google Scholar
百度学术
万方数据
[49]
Semple PL , Binder AB , Davids M ,et al. Regulatory T cells attenuate mycobacterial stasis in alveolar and blood-derived macrophages from patients with tuberculosis[J]. Am J Respir Crit Care Med, 2013,187(11):1249-1258. DOI: 10.1164/rccm.201210-1934OC .
返回引文位置Google Scholar
百度学术
万方数据
[50]
何军兰,王永斌,贾忠,. 结核杆菌感染过程中调节性T细胞功能变化研究[J]. 中西医结合心血管病电子杂志, 2018,6(3):173,176. DOI: 10.3969/j.issn.2095-6681.2018.03.131 .
返回引文位置Google Scholar
百度学术
万方数据
[51]
Sharma PK , Saha PK , Singh A ,et al. FoxP3+regulatory T cells suppress effector T-cell function at pathologic site in miliary tuberculosis[J]. Am J Respir Crit Care Med, 2009,179(11):1061-1070. DOI: 10.1164/rccm.200804-529OC .
返回引文位置Google Scholar
百度学术
万方数据
[52]
Ibrahim L , Salah M , Abd El Rahman A ,et al. Crucial role of CD4+CD 25+FOXP3+T regulatory cell, interferon-γ and interleukin-16 in malignant and tubercu lous pleural effusions [J]. Immunol Invest, 2013,42(2):122-136. DOI: 10.3109/08820139.2012.736116 .
返回引文位置Google Scholar
百度学术
万方数据
[53]
Geffner L , Basile JI , Yokobori N ,et al. CD4(+) CD25(high) forkhead box protein 3(+) regulatory T lymphocytes suppress interferon-γ and CD107 expression in CD4(+) and CD8(+) T cells from tuberculous pleural effusions[J]. Clin Exp Immunol, 2014,175(2):235-245. DOI: 10.1111/cei.12227 .
返回引文位置Google Scholar
百度学术
万方数据
[54]
Rahman S , Gudetta B , Fink J ,et al. Compartmentalization of immune responses in human tuberculosis: few CD8+effector T cells but elevated levels of FoxP3+regulatory t cells in the granulomatous lesions[J]. Am J Pa thol , 2009,174(6):2211-2224. DOI: 10.2353/ajpath.2009.080941 .
返回引文位置Google Scholar
百度学术
万方数据
[55]
Larson RP , Shafiani S , Urdahl KB . Foxp3(+) regulatory T cells in tuberculosis[J]. Adv Exp Med Biol, 2013,783:165-80. DOI: 10.1007/978-1-4614-6111-1_9 .
返回引文位置Google Scholar
百度学术
万方数据
[56]
Sahmoudi K , Abbassi H , Bouklata N ,et al. Immune activation and regulatory T cells in Mycobacterium tuberculosis infected lymph nodes[J]. BMC Immunol, 2018,19(1):33. DOI: 10.1186/s12865-018-0266-8 .
返回引文位置Google Scholar
百度学术
万方数据
[57]
Skapenko A , Kalden JR , Lipsky PE ,et al. The IL-4 receptor alpha-chain-binding cytokines, IL-4 and IL-13, induce forkhead box P3-expressing CD25+CD4+regulatory T cells from CD25-CD4+precursors[J]. J Immunol, 2005,175(9):6107-6116. DOI: 10.4049/jimmunol.175.9.6107 .
返回引文位置Google Scholar
百度学术
万方数据
[58]
Rahman S , Rehn A , Rahman J ,et al. Pulmonary tuberculosis patients with a vitamin D deficiency demonstrate low local expression of the antimicrobial peptide LL-37 but enhanced FoxP3+regulatory T cells and IgG-secreting cells[J]. Clin Immunol, 2015,156(2):85-97. DOI: 10.1016/j.clim.2014.12.003 .
返回引文位置Google Scholar
百度学术
万方数据
[59]
Sinsimer D , Huet G , Manca C ,et al. The phenolic glycolipid of Mycobacterium tuberculosis differentially modulates the early host cytokine response but does not in itself confer hypervirulence[J]. Infect Immun, 2008,76(7):3027-3036. DOI: 10.1128/IAI.01663-07 .
返回引文位置Google Scholar
百度学术
万方数据
[60]
Manca C , Reed MB , Freeman S ,et al. Differential monocyte activation underlies strain-specific Mycobacterium tuberculosis pathogenesis[J]. Infect Immun, 2004,72(9):5511-5514. DOI: 10.1128/IAI.72.9.5511-5514.2004 .
返回引文位置Google Scholar
百度学术
万方数据
[61]
Geffner L , Yokobori N , Basile J ,et al. Patients with multidrug-resistant tuberculosis display impaired Th1 responses and enhanced regulatory T-cell levels in response to an outbreak of multidrug-resistant Mycobacterium tuberculosis M and Ra strains[J]. Infect Immun, 2009,77(11):5025-5034. DOI: 10.1128/IAI.00224-09 .
返回引文位置Google Scholar
百度学术
万方数据
[62]
Basile JI , Geffner LJ , Romero MM ,et al. Outbreaks of mycobacterium tuberculosis MDR strains induce high IL-17 T-cell response in patients with MDR tuberculosis that is closely associated with high antigen load[J]. J Infect Dis, 2011,204(7):1054-1064. DOI: 10.1093/infdis/jir460 .
返回引文位置Google Scholar
百度学术
万方数据
[63]
Hougardy JM , Verscheure V , Locht C ,et al. In vitro expansion of CD4+CD25highFOXP3+CD127low/-regulatory T cells from peripheral blood lymphocytes of healthy Mycobacterium tuberculosis-infected humans[J]. Microbes Infect, 2007,9(11):1325-1332. DOI: 10.1016/j.micinf.2007.06.004 .
返回引文位置Google Scholar
百度学术
万方数据
[64]
Wu YE , Du ZR , Cai YM ,et al. Effective expansion of forkhead box P3⁺ regulatory T cells via early secreted antigenic target 6 and antigen 85 complex B from Mycobacterium tuberculosis[J]. Mol Med Rep, 2015,11(4):3134-3142. DOI: 10.3892/mmr.2014.3033 .
返回引文位置Google Scholar
百度学术
万方数据
[65]
Xu L , Cui G , Jia H ,et al. Decreased IL-17 during treatment of sputum smear-positive pulmonary tuberculosis due to increased regulatory T cells and IL-10[J]. J Transl Med, 2016,14(1):179. DOI: 10.1186/s12967-016-0909-6 .
返回引文位置Google Scholar
百度学术
万方数据
[66]
Whittaker E , Nicol M , Zar HJ ,et al. Regulatory T Cells and Pro-inflammatory Responses Predominate in Children with Tuberculosis[J]. Front Immunol, 2017,8:448. DOI: 10.3389/fimmu.2017.00448 .
返回引文位置Google Scholar
百度学术
万方数据
[67]
Lim HJ , Park JS , Cho YJ ,et al. CD4(+)FoxP3(+) T regulatory cells in drug-suscep tible and multidrug-resistant tuberculosis [J]. Tuberculosis (Edinb), 2013,93(5):523-528. DOI: 10.1016/j.tube.2013.06.001 .
返回引文位置Google Scholar
百度学术
万方数据
[68]
Wu YE , Peng WG , Cai YM ,et al. Decrease in CD4+CD25+FoxP3+Treg cells after pulmonary resection in the treatment of cavity multidrug-resistant tuberculosis[J]. Int J Infect Dis, 2010,14(9):e815-822. DOI: 10.1016/j.ijid.2010.04.005 .
返回引文位置Google Scholar
百度学术
万方数据
[69]
Roberts T , Beyers N , Aguirre A ,et al. Immunosuppression during active tuberculosis is characterized by decreased interferon-gamma production and CD25 expression with elevated forkhead box P3, transforming growth factor-beta, and interleukin-4 mRNA levels[J]. J Infect Dis, 2007,195(6):870-878. DOI: 10.1086/511277 .
返回引文位置Google Scholar
百度学术
万方数据
[70]
Mbow M , Santos N , Camara M ,et al. HIV and Tuberculosis co-infection impacts T-cell activation markers but not the numbers subset of regulatory T-cells in HIV-1 infected patients[J]. Afr J Lab Med, 2013,2(1):76. DOI: 10.4102/ajlm.v2i1.76 .
返回引文位置Google Scholar
百度学术
万方数据
[71]
Meintjes G , Wilkinson KA , Rangaka MX ,et al. Type 1 helper T cells and FoxP3-positive T cells in HIV-tuberculosis-associated immune reconstitution inflammatory syndrome[J]. Am J Respir Crit Care Med, 2008,178(10):1083-1089. DOI: 10.1164/rccm.200806-858OC .
返回引文位置Google Scholar
百度学术
万方数据
[72]
Toulza F , Tsang L , Ottenhoff TH ,et al. Mycobacterium tuberculosis-specific CD4+T-cell response is increased, and Treg cells decreased, in anthelmintic-treated patients with latent TB[J]. Eur J Immunol, 2016,46(3):752-761. DOI: 10.1002/eji.201545843 .
返回引文位置Google Scholar
百度学术
万方数据
[73]
宁洪叶,蒋贤高,施伎蝉,. 结核分枝杆菌感染对非小细胞肺癌患者调节性免疫细胞的负向调节作用[J]. 中华危重症医学杂志(电子版), 2019,12(4):240-244. DOI: 10.3877/cma.j.issn.1674-6880.2019.04.005 .
返回引文位置Google Scholar
百度学术
万方数据
[74]
Kumar NP , Sridhar R , Banurekha VV ,et al. Expansion of pathogen-specific T-helper 1 and T-helper 17 cells in pulmonary tuberculosis with coincident type 2 diabetes mellitus[J]. J Infect Dis, 2013,208(5):739-748. DOI: 10.1093/infdis/jit241 .
返回引文位置Google Scholar
百度学术
万方数据
[75]
Sun Q , Zhang Q , Xiao H ,et al. Significance of the frequency of CD4+CD25+CD127-T-cells in patients with pulmonary tuberculosis and diabetes mellitus[J]. Respirology, 2012,17(5):876-882. DOI: 10.1111/j.1440-1843.2012.02184.x .
返回引文位置Google Scholar
百度学术
万方数据
备注信息
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李浩然和姚丛对本文有同等贡献

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王伟,Email: mocdef.nabuyila010iewgnaw
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逄宇,Email: mocdef.3ab61dnuopuygnap
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李浩然, 姚丛, 李珊珊, 等. 调节性T细胞在调控抗结核免疫过程中的研究进展[J]. 中华结核和呼吸杂志, 2022, 45(5): 502-509. DOI: 10.3760/cma.j.cn112147-20210830-00609.

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北京市医院管理中心“登峰”人才培养计划 (DFL20191601)
北京市医院管理中心“扬帆”专业建设 (ZYLX202122)
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