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Items: 1 to 20 of 143

1.

CXCR5⁺ T helper cells mediate protective immunity against tuberculosis.

Slight SR, Rangel-Moreno J, Gopal R, Lin Y, Fallert Junecko BA, Mehra S, Selman M, Becerril-Villanueva E, Baquera-Heredia J, Pavon L, Kaushal D, Reinhart TA, Randall TD, Khader SA.

J Clin Invest. 2013 Feb;123(2):712-26. doi: 10.1172/JCI65728. Epub 2013 Jan 2.

2.

Interferon regulatory factor 8-deficiency determines massive neutrophil recruitment but T cell defect in fast growing granulomas during tuberculosis.

Rocca S, Schiavoni G, Sali M, Anfossi AG, Abalsamo L, Palucci I, Mattei F, Sanchez M, Giagu A, Antuofermo E, Fadda G, Belardelli F, Delogu G, Gabriele L.

PLoS One. 2013 May 24;8(5):e62751. doi: 10.1371/journal.pone.0062751. Print 2013. Erratum in: PLoS One. 2013;8(9). doi:10.1371/annotation/cbf9ae84-2f74-4d4d-b2e7-b39e7ebaaaa8.

3.

Functional Signatures of Human CD4 and CD8 T Cell Responses to Mycobacterium tuberculosis.

Prezzemolo T, Guggino G, La Manna MP, Di Liberto D, Dieli F, Caccamo N.

Front Immunol. 2014 Apr 22;5:180. doi: 10.3389/fimmu.2014.00180. eCollection 2014. Review.

4.

A hybrid multi-compartment model of granuloma formation and T cell priming in tuberculosis.

Marino S, El-Kebir M, Kirschner D.

J Theor Biol. 2011 Jul 7;280(1):50-62. doi: 10.1016/j.jtbi.2011.03.022. Epub 2011 Apr 1.

6.

Mycobacterium tuberculosis-specific CD8+ T cells are functionally and phenotypically different between latent infection and active disease.

Rozot V, Vigano S, Mazza-Stalder J, Idrizi E, Day CL, Perreau M, Lazor-Blanchet C, Petruccioli E, Hanekom W, Goletti D, Bart PA, Nicod L, Pantaleo G, Harari A.

Eur J Immunol. 2013 Jun;43(6):1568-77. doi: 10.1002/eji.201243262.

7.

Chemokines in tuberculosis: the good, the bad and the ugly.

Monin L, Khader SA.

Semin Immunol. 2014 Dec;26(6):552-8. doi: 10.1016/j.smim.2014.09.004. Epub 2014 Oct 22. Review.

8.

Spontaneous latency in a rabbit model of pulmonary tuberculosis.

Subbian S, Tsenova L, O'Brien P, Yang G, Kushner NL, Parsons S, Peixoto B, Fallows D, Kaplan G.

Am J Pathol. 2012 Nov;181(5):1711-24. doi: 10.1016/j.ajpath.2012.07.019. Epub 2012 Sep 5.

9.

Single and coexpression of CXCR4 and CXCR5 identifies CD4 T helper cells in distinct lymph node niches during influenza virus infection.

Elsner RA, Ernst DN, Baumgarth N.

J Virol. 2012 Jul;86(13):7146-57. doi: 10.1128/JVI.06904-11. Epub 2012 Apr 24.

10.

Virulence-Dependent Alterations in the Kinetics of Immune Cells during Pulmonary Infection by Mycobacterium tuberculosis.

Kim WS, Kim JS, Cha SB, Han SJ, Kim H, Kwon KW, Kim SJ, Eum SY, Cho SN, Shin SJ.

PLoS One. 2015 Dec 16;10(12):e0145234. doi: 10.1371/journal.pone.0145234. eCollection 2015.

11.

S100A8/A9 proteins mediate neutrophilic inflammation and lung pathology during tuberculosis.

Gopal R, Monin L, Torres D, Slight S, Mehra S, McKenna KC, Fallert Junecko BA, Reinhart TA, Kolls J, Báez-Saldaña R, Cruz-Lagunas A, Rodríguez-Reyna TS, Kumar NP, Tessier P, Roth J, Selman M, Becerril-Villanueva E, Baquera-Heredia J, Cumming B, Kasprowicz VO, Steyn AJ, Babu S, Kaushal D, Zúñiga J, Vogl T, Rangel-Moreno J, Khader SA.

Am J Respir Crit Care Med. 2013 Nov 1;188(9):1137-46. doi: 10.1164/rccm.201304-0803OC.

12.

Variability in tuberculosis granuloma T cell responses exists, but a balance of pro- and anti-inflammatory cytokines is associated with sterilization.

Gideon HP, Phuah J, Myers AJ, Bryson BD, Rodgers MA, Coleman MT, Maiello P, Rutledge T, Marino S, Fortune SM, Kirschner DE, Lin PL, Flynn JL.

PLoS Pathog. 2015 Jan 22;11(1):e1004603. doi: 10.1371/journal.ppat.1004603. eCollection 2015 Jan.

13.

Unexpected role for IL-17 in protective immunity against hypervirulent Mycobacterium tuberculosis HN878 infection.

Gopal R, Monin L, Slight S, Uche U, Blanchard E, Fallert Junecko BA, Ramos-Payan R, Stallings CL, Reinhart TA, Kolls JK, Kaushal D, Nagarajan U, Rangel-Moreno J, Khader SA.

PLoS Pathog. 2014 May 15;10(5):e1004099. doi: 10.1371/journal.ppat.1004099. eCollection 2014 May.

14.

Secondary lymphoid organs are dispensable for the development of T-cell-mediated immunity during tuberculosis.

Day TA, Koch M, Nouailles G, Jacobsen M, Kosmiadi GA, Miekley D, Kuhlmann S, Jörg S, Gamradt P, Mollenkopf HJ, Hurwitz R, Reece ST, Kaufmann SH, Kursar M.

Eur J Immunol. 2010 Jun;40(6):1663-73. doi: 10.1002/eji.201040299.

15.

Interleukin-17-dependent CXCL13 mediates mucosal vaccine-induced immunity against tuberculosis.

Gopal R, Rangel-Moreno J, Slight S, Lin Y, Nawar HF, Fallert Junecko BA, Reinhart TA, Kolls J, Randall TD, Connell TD, Khader SA.

Mucosal Immunol. 2013 Sep;6(5):972-84. doi: 10.1038/mi.2012.135. Epub 2013 Jan 9.

16.
17.

Understanding and overcoming the barriers to T cell-mediated immunity against tuberculosis.

Urdahl KB.

Semin Immunol. 2014 Dec;26(6):578-87. doi: 10.1016/j.smim.2014.10.003. Epub 2014 Oct 28. Review.

18.

Low levels of peripheral CD161++CD8+ mucosal associated invariant T (MAIT) cells are found in HIV and HIV/TB co-infection.

Wong EB, Akilimali NA, Govender P, Sullivan ZA, Cosgrove C, Pillay M, Lewinsohn DM, Bishai WR, Walker BD, Ndung'u T, Klenerman P, Kasprowicz VO.

PLoS One. 2013 Dec 31;8(12):e83474. doi: 10.1371/journal.pone.0083474. eCollection 2013. Erratum in: PLoS One. 2014;9(4):e95115.

19.

Interruption of CXCL13-CXCR5 axis increases upper genital tract pathology and activation of NKT cells following chlamydial genital infection.

Jiang J, Karimi O, Ouburg S, Champion CI, Khurana A, Liu G, Freed A, Pleijster J, Rozengurt N, Land JA, Surcel HM, Tiitinen A, Paavonen J, Kronenberg M, Morré SA, Kelly KA.

PLoS One. 2012;7(11):e47487. doi: 10.1371/journal.pone.0047487. Epub 2012 Nov 26. Erratum in: PLoS One. 2013;8(5). doi:10.1371/annotation/2b6aab70-3c92-490e-86f0-ae15787dfa6e.

20.

Decreased frequencies of circulating CD4⁺ T follicular helper cells associated with diminished plasma IL-21 in active pulmonary tuberculosis.

Kumar NP, Sridhar R, Hanna LE, Banurekha VV, Nutman TB, Babu S.

PLoS One. 2014 Oct 24;9(10):e111098. doi: 10.1371/journal.pone.0111098. eCollection 2014.

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