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J Exp Med. 1996 Jun 1; 183(6): 2489–2499.
PMCID: PMC2192604
PMID: 8676069

Reduction of otherwise remarkably stable virus-specific cytotoxic T lymphocyte memory by heterologous viral infections

Abstract

Experimental analyses of the acute cytotoxic T lymphocyte (CTL) response to viruses have focused on studying these infections in immunologically naive hosts. In the natural environment, however, viral CTL responses occur in hosts that are already immune to other infectious agents. To address which factors contribute to the maintenance and waning of immunological memory, the following study examined the frequencies of virus-specific CTL precursor cells (pCTL) not only using the usual experimental paradigm where mice undergo acute infections with a single virus, and in mice immune to a single virus, but also in immune mice after challenge with various heterologous viruses. As determined by limiting dilution assays, the pCTL frequency (p/f) per CD8+ T cell specific for lymphocytic choriomeningitis virus (LCMV), Pichinde virus (PV), or vaccinia virus (VV) increased during the acute infections, peaking at days 7-8 with frequencies as high as 1/27-1/74. Acute viral infections such as these elicit major expansions in the CD8+ T cell number, which has been reported to undergo apoptosis and decline after most of the viral antigen has been cleared. Although the decline in the total number of virus-specific pCTL after their peak in the acute infection was substantial, for all three viruses the virus- specific p/f per CD8+ T cell decreased only two- to fourfold and remained at these high levels with little fluctuation for well over a year. The ratios of the three immunodominant peptide-specific to total LCMV-specific clones remained unchanged between days 7 and 8 of acute infection and long-term memory, suggesting that the apoptotic events did not discriminate on the basis of T cell receptor specificity, but instead nonspecifically eliminated a large proportion of the activated T cells. However, when one to five heterologous viruses (LCMV, PV, VV, murine cytomegalovirus, and vesicular stomatitis virus) were sequentially introduced into this otherwise stable memory pool, the stability of the memory pool was disrupted. With each successive infection, after the immune system had returned to homeostasis, the memory p/f specific to viruses from earlier infections declined. Reductions in memory p/f were observed in all tested immunological compartments (spleen, peripheral blood, lymph nodes, and peritoneal cavity), and on average in the spleen revealed a 3 +/- 0.4-fold decrease in p/f after one additional viral infection and an 8.4 +/- 3- fold decrease after two additional viral infections. Thus, subsequent challenges with heterologous antigens, which themselves induce memory CTL, may contribute to the waning of CTL memory pool to earlier viruses as the immune system accommodates ever-increasing numbers of new memory cells within a limited lymphoid population. This demonstrates that virus infections do not occur in immunological isolation, and that CD8+ T cell responses are continually being modulated by other infectious agents.

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Selected References

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  • Lau LL, Jamieson BD, Somasundaram T, Ahmed R. Cytotoxic T-cell memory without antigen. Nature. 1994 Jun 23;369(6482):648–652. [PubMed] [Google Scholar]
  • Hou S, Hyland L, Ryan KW, Portner A, Doherty PC. Virus-specific CD8+ T-cell memory determined by clonal burst size. Nature. 1994 Jun 23;369(6482):652–654. [PubMed] [Google Scholar]
  • Matzinger P. Immunology. Memories are made of this? Nature. 1994 Jun 23;369(6482):605–606. [PubMed] [Google Scholar]
  • Müllbacher A. The long-term maintenance of cytotoxic T cell memory does not require persistence of antigen. J Exp Med. 1994 Jan 1;179(1):317–321. [PMC free article] [PubMed] [Google Scholar]
  • Razvi ES, Welsh RM, McFarland HI. In vivo state of antiviral CTL precursors. Characterization of a cycling cell population containing CTL precursors in immune mice. J Immunol. 1995 Jan 15;154(2):620–632. [PubMed] [Google Scholar]
  • McFarland HI, Nahill SR, Maciaszek JW, Welsh RM. CD11b (Mac-1): a marker for CD8+ cytotoxic T cell activation and memory in virus infection. J Immunol. 1992 Aug 15;149(4):1326–1333. [PubMed] [Google Scholar]
  • Razvi ES, Welsh RM. Apoptosis in viral infections. Adv Virus Res. 1995;45:1–60. [PubMed] [Google Scholar]
  • Razvi ES, Welsh RM. Programmed cell death of T lymphocytes during acute viral infection: a mechanism for virus-induced immune deficiency. J Virol. 1993 Oct;67(10):5754–5765. [PMC free article] [PubMed] [Google Scholar]
  • Uehara T, Miyawaki T, Ohta K, Tamaru Y, Yokoi T, Nakamura S, Taniguchi N. Apoptotic cell death of primed CD45RO+ T lymphocytes in Epstein-Barr virus-induced infectious mononucleosis. Blood. 1992 Jul 15;80(2):452–458. [PubMed] [Google Scholar]
  • Groux H, Torpier G, Monté D, Mouton Y, Capron A, Ameisen JC. Activation-induced death by apoptosis in CD4+ T cells from human immunodeficiency virus-infected asymptomatic individuals. J Exp Med. 1992 Feb 1;175(2):331–340. [PMC free article] [PubMed] [Google Scholar]
  • Razvi ES, Jiang Z, Woda BA, Welsh RM. Lymphocyte apoptosis during the silencing of the immune response to acute viral infections in normal, lpr, and Bcl-2-transgenic mice. Am J Pathol. 1995 Jul;147(1):79–91. [PMC free article] [PubMed] [Google Scholar]
  • Selin LK, Welsh RM. Specificity and editing by apoptosis of virus-induced cytotoxic T lymphocytes. Curr Opin Immunol. 1994 Aug;6(4):553–559. [PubMed] [Google Scholar]
  • Yang HY, Dundon PL, Nahill SR, Welsh RM. Virus-induced polyclonal cytotoxic T lymphocyte stimulation. J Immunol. 1989 Mar 1;142(5):1710–1718. [PubMed] [Google Scholar]
  • Selin LK, Nahill SR, Welsh RM. Cross-reactivities in memory cytotoxic T lymphocyte recognition of heterologous viruses. J Exp Med. 1994 Jun 1;179(6):1933–1943. [PMC free article] [PubMed] [Google Scholar]
  • Akbar AN, Salmon M, Janossy G. The synergy between naive and memory T cells during activation. Immunol Today. 1991 Jun;12(6):184–188. [PubMed] [Google Scholar]
  • Yang HY, Joris I, Majno G, Welsh RM. Necrosis of adipose tissue induced by sequential infections with unrelated viruses. Am J Pathol. 1985 Aug;120(2):173–177. [PMC free article] [PubMed] [Google Scholar]
  • Welsh RM, Jr, Lampert PW, Burner PA, Oldstone MB. Antibody-complement interactions with purified lymphocytic choriomeningitis virus. Virology. 1976 Aug;73(1):59–71. [PubMed] [Google Scholar]
  • Welsh RM., Jr Cytotoxic cells induced during lymphocytic choriomeningitis virus infection of mice. I. Characterization of natural killer cell induction. J Exp Med. 1978 Jul 1;148(1):163–181. [PMC free article] [PubMed] [Google Scholar]
  • Bukowski JF, Woda BA, Habu S, Okumura K, Welsh RM. Natural killer cell depletion enhances virus synthesis and virus-induced hepatitis in vivo. J Immunol. 1983 Sep;131(3):1531–1538. [PubMed] [Google Scholar]
  • Tanaka Y, Tevethia SS. In vitro selection of SV40 T antigen epitope loss variants by site-specific cytotoxic T lymphocyte clones. J Immunol. 1988 Jun 15;140(12):4348–4354. [PubMed] [Google Scholar]
  • Nahill SR, Welsh RM. High frequency of cross-reactive cytotoxic T lymphocytes elicited during the virus-induced polyclonal cytotoxic T lymphocyte response. J Exp Med. 1993 Feb 1;177(2):317–327. [PMC free article] [PubMed] [Google Scholar]
  • Moskophidis D, Assmann-Wischer U, Simon MM, Lehmann-Grube F. The immune response of the mouse to lymphocytic choriomeningitis virus. V. High numbers of cytolytic T lymphocytes are generated in the spleen during acute infection. Eur J Immunol. 1987 Jul;17(7):937–942. [PubMed] [Google Scholar]
  • Rabin H, Hopkins RF, 3rd, Ruscetti FW, Neubauer RH, Brown RL, Kawakami TG. Spontaneous release of a factor with properties of T cell growth factor from a continuous line of primate tumor T cells. J Immunol. 1981 Nov;127(5):1852–1856. [PubMed] [Google Scholar]
  • Demkowicz WE, Jr, Ennis FA. Vaccinia virus-specific CD8+ cytotoxic T lymphocytes in humans. J Virol. 1993 Mar;67(3):1538–1544. [PMC free article] [PubMed] [Google Scholar]
  • Taswell C. Limiting dilution assays for the determination of immunocompetent cell frequencies. I. Data analysis. J Immunol. 1981 Apr;126(4):1614–1619. [PubMed] [Google Scholar]
  • Walker CM, Paetkau V, Rawls WE, Rosenthal KL. Abrogation of anti-Pichinde virus cytotoxic T cell memory by cyclophosphamide and restoration by coinfection or interleukin 2. J Immunol. 1985 Aug;135(2):1401–1407. [PubMed] [Google Scholar]
  • Askonas BA, Mullbacher A, Ashman RB. Cytotoxic T-memory cells in virus infection and the specificity of helper T cells. Immunology. 1982 Jan;45(1):79–84. [PMC free article] [PubMed] [Google Scholar]
  • Anderson RW, Bennink JR, Yewdell JW, Maloy WL, Coligan JE. Influenza basic polymerase 2 peptides are recognized by influenza nucleoprotein-specific cytotoxic T lymphocytes. Mol Immunol. 1992 Sep;29(9):1089–1096. [PubMed] [Google Scholar]
  • Shimojo N, Maloy WL, Anderson RW, Biddison WE, Coligan JE. Specificity of peptide binding by the HLA-A2.1 molecule. J Immunol. 1989 Nov 1;143(9):2939–2947. [PubMed] [Google Scholar]
  • Kuwano K, Reyes VE, Humphreys RE, Ennis FA. Recognition of disparate HA and NS1 peptides by an H-2Kd-restricted, influenza specific CTL clone. Mol Immunol. 1991 Jan-Feb;28(1-2):1–7. [PubMed] [Google Scholar]
  • Kulkarni AB, Morse HC, 3rd, Bennink JR, Yewdell JW, Murphy BR. Immunization of mice with vaccinia virus-M2 recombinant induces epitope-specific and cross-reactive Kd-restricted CD8+ cytotoxic T cells. J Virol. 1993 Jul;67(7):4086–4092. [PMC free article] [PubMed] [Google Scholar]
  • Moskophidis D, Lechner F, Pircher H, Zinkernagel RM. Virus persistence in acutely infected immunocompetent mice by exhaustion of antiviral cytotoxic effector T cells. Nature. 1993 Apr 22;362(6422):758–761. [PubMed] [Google Scholar]
  • Tripp RA, Hou S, McMickle A, Houston J, Doherty PC. Recruitment and proliferation of CD8+ T cells in respiratory virus infections. J Immunol. 1995 Jun 1;154(11):6013–6021. [PubMed] [Google Scholar]
  • Beverley PC. Is T-cell memory maintained by crossreactive stimulation? Immunol Today. 1990 Jun;11(6):203–205. [PubMed] [Google Scholar]
  • Gray D, Matzinger P. T cell memory is short-lived in the absence of antigen. J Exp Med. 1991 Nov 1;174(5):969–974. [PMC free article] [PubMed] [Google Scholar]
  • Oehen S, Waldner H, Kündig TM, Hengartner H, Zinkernagel RM. Antivirally protective cytotoxic T cell memory to lymphocytic choriomeningitis virus is governed by persisting antigen. J Exp Med. 1992 Nov 1;176(5):1273–1281. [PMC free article] [PubMed] [Google Scholar]

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