Department of Infectious and Tropical Diseases, London School of Hygiene and Tropical Medicine, Keppel Street, London, WC1E 7HT United Kingdom,1
Wellcome Trust Laboratories for Molecular Parasitology, Department of Biological Sciences, Imperial College London, London, SW7 2AZ United Kingdom2
| 1. | Bathe, O. F., N. Dalyot-Herman, and T. R. Malek. 2001. IL-2 during in vitro priming promotes subsequent engraftment and successful adoptive tumor immunotherapy by persistent memory phenotypic CD8(+) T cells. J. Immunol. 167:4511-4517.[Abstract/Free Full Text] |
| 2. | Belkaid, Y., E. Von Stebut, S. Mendez, R. Lira, E. Caler, S. Bertholet, M. C. Udey, and D. Sacks. 2002. CD8+ T cells are required for primary immunity in C57BL/6 mice following low-dose, intradermal challenge with Leishmania major. J. Immunol. 168:3992-4000.[Abstract/Free Full Text] |
| 3. | Berg, R. E., E. Crossley, S. Murray, and J. Forman. 2003. Memory CD8+ T cells provide innate immune protection against Listeria monocytogenes in the absence of cognate antigen. J. Exp. Med. 198:1583-1593.[Abstract/Free Full Text] |
| 4. | Denny, P. W., S. Gokool, D. G. Russell, M. C. Field, and D. F. Smith. 2000. Acylation-dependent protein export in Leishmania. J. Biol. Chem. 275:11017-11025.[Abstract/Free Full Text] |
| 5. | Houde, M., S. Bertholet, E. Gagnon, S. Brunet, G. Goyette, A. Laplante, M. F. Princiotta, P. Thibault, D. Sacks, and M. Desjardins. 2003. Phagosomes are competent organelles for antigen cross-presentation. Nature 425:402-406.[CrossRef][Medline] |
| 6. | Kamath, A. T., C. E. Sheasby, and D. F. Tough. 2005. Dendritic cells and NK cells stimulate bystander T cell activation in response to TLR agonists through secretion of IFN-alpha beta and IFN-gamma. J. Immunol. 174:767-776.[Abstract/Free Full Text] |
| 7. | Kaye, P. M., C. Coburn, M. McCrossan, and S. M. Beverley. 1993. Antigens targeted to the Leishmania phagolysosome are processed for CD4+ T cell recognition. Eur. J. Immunol. 23:2311-2319.[Medline] |
| 8. | Kaye, P. M., A. Cooke, T. Lund, M. Wattie, and J. M. Blackwell. 1992. Altered course of visceral leishmaniasis in mice expressing transgenic I-E molecules. Eur. J. Immunol. 22:357-364.[Medline] |
| 9. | Lertmemongkolchai, G., G. Cai, C. A. Hunter, and G. J. Bancroft. 2001. Bystander activation of CD8+ T cells contributes to the rapid production of IFN-gamma in response to bacterial pathogens. J. Immunol. 166:1097- 1105.[Abstract/Free Full Text] |
| 10. | Lopez, J. A., J. H. LeBowitz, S. M. Beverley, H. G. Rammensee, and P. Overath. 1993. Leishmania mexicana promastigotes induce cytotoxic T lymphocytes in vivo that do not recognize infected macrophages. Eur. J. Immunol. 23:217-223.[Medline] |
| 11. | Misslitz, A., J. C. Mottram, P. Overath, and T. Aebischer. 2000. Targeted integration into a rRNA locus results in uniform and high level expression of transgenes in Leishmania amastigotes. Mol. Biochem. Parasitol. 107:251-261.[CrossRef][Medline] |
| 12. | Moore, M. W., F. R. Carbone, and M. J. Bevan. 1988. Introduction of soluble protein into the class I pathway of antigen processing and presentation. Cell 54:777-785.[CrossRef][Medline] |
| 13. | Muller, I., P. Kropf, J. A. Louis, and G. Milon. 1994. Expansion of gamma interferon-producing CD8+ T cells following secondary infection of mice immune to Leishmania major. Infect. Immun. 62:2575-2581.[Abstract/Free Full Text] |
| 14. | Murray, H. W. 2005. Prevention of relapse after chemotherapy in a chronic intracellular infection: mechanisms in experimental visceral leishmaniasis. J. Immunol. 174:4916-4923.[Abstract/Free Full Text] |
| 15. | Polley, R., S. Zubairi, and P. M. Kaye. 2005. The fate of heterologous CD4+ T cells during Leishmania donovani infection. Eur. J. Immunol. 35:498-504.[CrossRef][Medline] |
| 15. | Polley, R., S. L. Sanos, S. Prickett, A. Hague, and P. M. Kaye. 2005. Chronic Leishmania donovani infection promotes bystander CD8+-T-cell expansion and heterologous immunity. Infect. Immun. 73:7996-8001.[Abstract/Free Full Text] |
| 16. | Saar, Y., A. Ransford, E. Waldman, S. Mazareb, S. Amin-Spector, J. Plumblee, S. J. Turco, and D. Zilberstein. 1998. Characterization of developmentally-regulated activities in axenic amastigotes of Leishmania donovani. Mol. Biochem. Parasitol. 95:9-20.[CrossRef][Medline] |
| 17. | Sallusto, F., D. Lenig, R. Forster, M. Lipp, and A. Lanzavecchia. 1999. Two subsets of memory T lymphocytes with distinct homing potentials and effector functions. Nature 401:708-712.[CrossRef][Medline] |
| 18. | Stager, S., J. Alexander, A. C. Kirby, M. Botto, N. V. Rooijen, D. F. Smith, F. Brombacher, and P. M. Kaye. 2003. Natural antibodies and complement are endogenous adjuvants for vaccine-induced CD8+ T-cell responses. Nat. Med. 9:1287-1292.[CrossRef][Medline] |
| 19. | Stern, J. J., M. J. Oca, B. Y. Rubin, S. L. Anderson, and H. W. Murray. 1988. Role of L3T4+ and LyT-2+ cells in experimental visceral leishmaniasis. J. Immunol. 140:3971-3977.[Abstract] |
| 20. | Tsagozis, P., E. Karagouni, and E. Dotsika. 2003. CD8(+) T cells with parasite-specific cytotoxic activity and a Tc1 profile of cytokine and chemokine secretion develop in experimental visceral leishmaniasis. Parasite Immunol. 25:569-579.[CrossRef][Medline] |
| 21. | Tsagozis, P., E. Karagouni, and E. Dotsika. 2005. Function of CD8+ T lymphocytes in a self-curing mouse model of visceral leishmaniasis. Parasitol. Int. 54:139-146.[CrossRef][Medline] |
| 22. | Wang, Z. E., S. L. Reiner, F. Hatam, F. P. Heinzel, J. Bouvier, C. W. Turck, and R. M. Locksley. 1993. Targeted activation of CD8 cells and infection of beta 2-microglobulin-deficient mice fail to confirm a primary protective role for CD8 cells in experimental leishmaniasis. J. Immunol. 151:2077-2086.[Abstract] |
| 23. | Weninger, W., M. A. Crowley, N. Manjunath, and U. H. von Andrian. 2001. Migratory properties of naive, effector, and memory CD8(+) T cells. J. Exp. Med. 194:953-966.[Abstract/Free Full Text] |
| 24. | Zubairi, S., S. L. Sanos, S. Hill, and P. M. Kaye. 2004. Immunotherapy with OX40L-Fc or anti-CTLA-4 enhances local tissue responses and killing of Leishmania donovani. Eur. J. Immunol. 34:1433-1440.[CrossRef][Medline] |