Aptamer inhibits Mycobacterium tuberculosis (H37Rv) invasion of macrophage

被引:30
作者
Fan Chen
XiaoLian Zhang
Jing Zhou
Shengwu Liu
Junyan Liu
机构
[1] Faculty of Life Sciences, Hubei University, Wuchang 430062, Wuhan
[2] Department of Immunology, State Key Laboratory of Virology, Hubei Province Key Laboratory of Allergy and Immunology, Wuhan University
[3] Wuhan Tuberculosis Dispensary, Qiaokou, Wuhan 430030
关键词
Aptamer; BCG; Macrophage; Mycobacterium tuberculosis;
D O I
10.1007/s11033-011-0963-3
中图分类号
学科分类号
摘要
There is an urgent need to develop new antituberculosis drugs due to the rising tendency in tuberculosis (TB) around the world. It is known that Mycobacterium tuberculosis (M. tuberculosis) generally infects mammalian host via aerosol route. The pathogenic process has been fully studied that it can initially invade alveolar macrophage, then established stable residence within those phagocytic cells, suggesting that one of the possible ways to prevent this pathogen is to inhibit its invasion and growth in the macrophage. Aptamers from SELEX (Systematic Evolution of Ligands by Exponential Enrichment) have been used to rival virulent M. tuberculosis (H37Rv) in our previous work, and the materials to which aptamers bound were proved to be some outer membrane proteins of H37Rv. In the present study, the interaction between M. tuberculosis and macrophage in the presence of aptamers was investigated in more details. The results suggested that the selective aptamers significantly inhibited H37Rv invasion of macrophage in vitro, and the effect correspond to the binding affinity of these aptamers to H37Rv. The values of equilibrium dissociation constant (Kd) was calculated by flow cytometry, all in the nanomolar range, showed much higher affinity to H37Rv than M. bovis Bacillus Guerin (BCG). Moreover, the aptamer-treated H37Rv can stimulate IFN-c, IL-15 and IL-17 secretion ofmacrophages compared with H37Rv (no treated). In summary, our data indicated that theNK2 aptamer not only acted as anti-tuberculosis agent by inhibiting virulent M. tuberculosis (H37Rv) invasion of macrophage, but also might be used asmolecular probe for exploring the interaction between the outer membrane of M. tuberculosis and macrophage. © Springer Science+Business Media B.V. 2011.
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页码:2157 / 2162
页数:5
相关论文
共 28 条
[1]  
Dye C., Scheele S., Dolin P., Pathania V., Raviglione M.C., Consensus statement. Global burden of tuberculosis: Estimated incidence, prevalence, and mortality by country. WHO global surveillance and monitoring project, JAMA, 282, pp. 677-686, (1999)
[2]  
Yew W.W., Leung C.C., Update in tuberculosis 2007, Am J Respir Crit Care Med, 177, pp. 479-485, (2008)
[3]  
Fine P.E., Variation in protection by BCG: Implications of and for heterologous immunity, Lancet, 346, pp. 1339-1345, (1995)
[4]  
Reed S.G., Dalemans W., Dalemans W., Prospects for a better vaccine against tuberculosis, Tuberculosis, 83, pp. 213-219, (2003)
[5]  
Pablos-Mendez A., Raviglione M.C., Laszlo A., Binkin N., Rieder H.L., Bustreo F., Cohn D.L., Lambregts-Van Weezenbeek C.S., Kim S.J., Chaulet P., Nunn P., Global surveillance for antituberculosis- drug resistance 1994-1997, N Engl J Med, 338, pp. 1641-1649, (1998)
[6]  
Havlir D.V., Barnes P.F., Current concepts: Tuberculosis in patients with human immunodeficiency virus infection, N Engl J Med, 340, pp. 367-373, (1999)
[7]  
Cohen T., Lipsitch M., Walensky R.P., Murray M., Beneficial and perverse effects of isoniazid preventive therapy for latent tuberculosis infection in HIV-tuberculosis coinfected populations, Proc Natl Acad Sci USA, 103, pp. 7042-7047, (2006)
[8]  
Aaron L., Saadoun D., Calatroni I., Launay O., Memain N., Vincent V., Marchal G., Dupont B., Bouchaud O., Valeyre D., Lortholay O., Tuberculosis in HIV-infected patients: A comprehensive review, Clin Microbiol Infect, 10, pp. 388-398, (2004)
[9]  
Brennan P.J., Nikaido H., The envelope of mycobacteria, Annu Rev Biochem, 64, pp. 29-63, (1995)
[10]  
Niederweis M., Danilchanka O., Huff J., Hoffmann C., Engelhardt H., Mycobacterial outer membranes: In search of proteins, Trends Microbiol, 18, pp. 109-116, (2009)