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结核病免疫:来自牛研究的机遇

Tuberculosis immunity: opportunities from studies with cattle.

作者信息

Waters W Ray, Palmer Mitchell V, Thacker Tyler C, Davis William C, Sreevatsan Srinand, Coussens Paul, Meade Kieran G, Hope Jayne C, Estes D Mark

机构信息

National Animal Disease Center, Agricultural Research Service, US Department of Agriculture, Ames, IA 50010, USA.

出版信息

Clin Dev Immunol. 2011;2011:768542. doi: 10.1155/2011/768542. Epub 2010 Dec 6.

Abstract

Mycobacterium tuberculosis and M. bovis share >99% genetic identity and induce similar host responses and disease profiles upon infection. There is a rich history of codiscovery in the development of control measures applicable to both human and bovine tuberculosis (TB) including skin-testing procedures, M. bovis BCG vaccination, and interferon-γ release assays. The calf TB infection model offers several opportunities to further our understanding of TB immunopathogenesis. Recent observations include correlation of central memory immune responses with TB vaccine efficacy, association of SIRPα(+) cells in ESAT-6:CFP10-elicited multinucleate giant cell formation, early γδ T cell responses to TB, antimycobacterial activity of memory CD4(+) T cells via granulysin production, association of specific antibody with antigen burden, and suppression of innate immune gene expression in infected animals. Partnerships teaming researchers with veterinary and medical perspectives will continue to provide mutual benefit to TB research in man and animals.

摘要

结核分枝杆菌和牛分枝杆菌的基因同源性超过99%,感染后会引发相似的宿主反应和疾病特征。在开发适用于人类和牛结核病(TB)的控制措施方面,有着丰富的共同发现历史,包括皮肤测试程序、牛分枝杆菌卡介苗接种和干扰素-γ释放试验。犊牛结核病感染模型为我们进一步了解结核病免疫发病机制提供了多个机会。最近的观察结果包括中枢记忆免疫反应与结核病疫苗效力的相关性、信号调节蛋白α(SIRPα)阳性细胞与早期分泌性抗原靶标6:培养滤液蛋白10(ESAT-6:CFP10)诱导的多核巨细胞形成的关联、γδ T细胞对结核病的早期反应、记忆性CD4 + T细胞通过颗粒溶素产生的抗分枝杆菌活性、特异性抗体与抗原负荷的关联,以及感染动物中固有免疫基因表达的抑制。将具有兽医和医学视角的研究人员联合起来的合作关系将继续为人类和动物结核病研究带来互利。

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本文引用的文献

1
Compulsory Pasteurization.
Br Med J. 1937 Mar 27;1(3977):667-8. doi: 10.1136/bmj.1.3977.667.
4
Immune responses in cattle inoculated with Mycobacterium bovis, Mycobacterium tuberculosis, or Mycobacterium kansasii.
Clin Vaccine Immunol. 2010 Feb;17(2):247-52. doi: 10.1128/CVI.00442-09. Epub 2009 Dec 9.
6
Natural killer cell number and phenotype in bovine peripheral blood is influenced by age.
Vet Immunol Immunopathol. 2009 Dec 15;132(2-4):101-8. doi: 10.1016/j.vetimm.2009.05.002. Epub 2009 May 18.
8
Viral booster vaccines improve Mycobacterium bovis BCG-induced protection against bovine tuberculosis.
Infect Immun. 2009 Aug;77(8):3364-73. doi: 10.1128/IAI.00287-09. Epub 2009 Jun 1.
9
WC1(+) gammadelta T cells indirectly regulate chemokine production during mycobacterium bovis infection in SCID-bo mice.
Transbound Emerg Dis. 2009 Aug;56(6-7):275-84. doi: 10.1111/j.1865-1682.2009.01081.x. Epub 2009 May 26.
10
Gene expression profiling of the host response to Mycobacterium bovis infection in cattle.
Transbound Emerg Dis. 2009 Aug;56(6-7):204-14. doi: 10.1111/j.1865-1682.2009.01082.x. Epub 2009 May 26.

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