Decreased frequency and proliferative response of invariant Vα24Vβ11 natural killer T (iNKT) cells in healthy elderly

Biogerontology - Tập 7 - Trang 483-492 - 2006
Esther Peralbo1, Olga DelaRosa1, Inmaculada Gayoso1, Maria L. Pita1, Raquel Tarazona2, Rafael Solana1
1Immunology Unit, Department of Cellular Biology, Physiology and Immunology, University of Córdoba, Córdoba, Spain
2Immunology Unit, Department of Physiology, University of Extremadura, Cáceres, Spain

Tóm tắt

Invariant natural killer T (iNKT) cells represent a well-established T cell lineage characterised in humans by TCR consisting of an invariant alpha chain encoded by Vα24-JαQ genes, paired preferentially with a Vβ11 chain. iNKT cells also share some characteristics with NK cells, such as the expression of the NK-associated receptor CD161 in humans. The T cell immune response is the most dramatically affected by ageing, although age-associated alterations in the phenotype and function of other cells of the immune system have been demonstrated. Despite the importance of iNKT cells in the regulation of the immune response, there are a limited number of studies on the effect of ageing on peripheral blood iNKT cells. Thus, in this work we analyse the effect of ageing on peripheral blood Vα24+Vβ11+ iNKT cells by studying their frequency, phenotype and proliferative function in elderly individuals fulfilling the SENIEUR criteria of healthy ageing compared with healthy young donors. Our results demonstrated a significant decrease of the percentage of Vα24+Vβ11+ iNKT cells in elderly donors. No significant differences were found in the expression of CD27, CD28, CD45RO, CD45RAbright, CD161, CD94 and NKG2D on iNKT cells from young and elderly individuals. Proliferation of Vα24+Vβ11+ iNKT cells in response to α-GalCer and IL2 was analysed by calculating the cumulative population doubling (PD) after 14 days of culture. The PD levels were lower in the elderly indicating that Vα24+Vβ11+ iNKT cells from healthy elderly subjects had an impaired proliferative capacity. These results indicate that ageing associates with a significant decline in the percentage and proliferative response of peripheral blood iNKT cells. Given the important immunoregulatory role of iNKT cells, these alterations in their number and function could contribute to the deleterious immune response in the elderly.

Tài liệu tham khảo

Benlagha K, Wei DG, Veiga J, Teyton L, Bendelac A (2005) Characterization of the early stages of thymic NKT cell development. J Exp Med 202:485–492 Berzins SP, Uldrich AP, Pellicci DG, McNab F, Hayakawa Y, Smyth MJ, Godfrey DI (2004) Parallels and distinctions between T and NKT cell development in the thymus. Immunol Cell Biol 82:269–275 Berzins SP, Smyth MJ, Godfrey DI (2005) Working with NKT cells—pitfalls and practicalities. Curr Opin Immunol 17:448–454 Brigl M, Brenner MB (2004) CD1: antigen presentation and T cell function. Annu Rev Immunol 22:817–890 D’Andrea A, Goux D, De Lalla C, Koezuka Y, Montagna D, Moretta A, Dellabona P, Casorati G, Abrignani S (2000) Neonatal invariant Valpha24+ NKT lymphocytes are activated memory cells. Eur J Immunol 30:1544–1550 Delarosa O, Tarazona R, Casado JG, Alonso C, Ostos B, Pena J, Solana R (2002) Valpha24+ NKT cells are decreased in elderly humans. Exp Gerontol 37:213–217 DeMartinis M, Franceschi C, Monti D, Ginaldi L (2005) Inflamm-ageing and lifelong antigenic load as major determinants of ageing rate and longevity. FEBS Lett 579:2035–2039 DeMartinis M, Franceschi C, Monti D, Ginaldi L (2006) Inflammation markers predicting frailty and mortality in the elderly. Exp Mol Pathol 80:219–227 Emoto M, Kaufmann SH (2003) Liver NKT cells: an account of heterogeneity. Trends Immunol 24:364–369 Faunce DE, Palmer JL, Paskowicz KK, Witte PL, Kovacs EJ (2005) CD1d-restricted NKT cells contribute to the age-associated decline of T cell immunity. J Immunol 175:3102–3109 Forsey RJ, Thompson JM, Ernerudh J, Hurst TL, Strindhall J, Johansson B, Nilsson BO, Wikby A (2003) Plasma cytokine profiles in elderly humans. Mech Ageing Dev 124:487–493 Fulop T, Larbi A, Wikby A, Mocchegiani E, Hirokawa K, Pawelec G (2005) Dysregulation of T-cell function in the elderly: scientific basis and clinical implications. Drugs Aging 22:589–603 Gamadia LE, Remmerswaal EB, Weel JF, Bemelman F, van Lier RA, Ten BI (2003) Primary immune responses to human CMV: a critical role for IFN-gamma-producing CD4+ T cells in protection against CMV disease. Blood 101:2686–2692 Gumperz JE, Miyake S, Yamamura T, Brenner MB (2002) Functionally distinct subsets of CD1d-restricted natural killer T cells revealed by CD1d tetramer staining. J Exp Med 195:625–636 Hadrup SR, Strindhall J, Kollgaard T, Seremet T, Johansson B, Pawelec G, thor SP, Wikby A (2006) Longitudinal studies of clonally expanded CD8 T cells reveal a repertoire shrinkage predicting mortality and an increased number of dysfunctional cytomegalovirus-specific T cells in the very elderly. J Immunol 176:2645–2653 Hamilton SE, Harty JT (2002) Quantitation of CD8+ T cell expansion, memory, and protective immunity after immunization with peptide-coated dendritic cells. J Immunol 169:4936–4944 Haynes L, Eaton SM, Burns EM, Randall TD, Swain SL (2005) Newly generated CD4 T cells in aged animals do not exhibit age-related defects in response to antigen. J Exp Med 201:845–851 Kang I, Hong MS, Nolasco H, Park SH, Dan JM, Choi JY, Craft J (2004) Age-associated change in the frequency of memory CD4+ T cells impairs long term CD4+ T cell responses to influenza vaccine. J Immunol 173:673–681 Kim CH, Butcher EC, Johnston B (2002) Distinct subsets of human Valpha24-invariant NKT cells: cytokine responses and chemokine receptor expression. Trends Immunol 23:516–519 Kinjo Y, Wu D, Kim G, Xing GW, Poles MA, Ho DD, Tsuji M, Kawahara K, Wong CH, Kronenberg M (2005) Recognition of bacterial glycosphingolipids by natural killer T cells. Nature 434:520–525 Koch S, Solana R, Rosa OD, Pawelec G (2006) Human cytomegalovirus infection and T cell immunosenescence. Mech Ageing Dev 127:538–543 Kronenberg M (2005) Toward an understanding of NKT cell biology: progress and paradoxes. Annu Rev Immunol 23:877–900 Lee PT, Benlagha K, Teyton L, Bendelac A (2002) Distinct functional lineages of human V(alpha)24 natural killer T cells. J Exp Med 195:637–641 Ligthart GJ, Corberand JX, Geertzen HG, Meinders AE, Knook DL, Hijmans W (1990) Necessity of the assessment of health status in human immunogerontological studies: evaluation of the SENIEUR protocol. Mech Ageing Dev 55:89–105 Lin H, Nieda M, Hutton JF, Rozenkov V, Nicol AJ (2006a) Comparative gene expression analysis of NKT cell subpopulations. J Leukoc Biol 80:164–173 Lin H, Nieda M, Rozenkov V, Nicol AJ (2006b) Analysis of the effect of different NKT cell subpopulations on the activation of CD4 and CD8 T cells, NK cells, and B cells. Exp Hematol 34:289–295 MacDonald HR (2002) Development and selection of NKT cells. Curr Opin Immunol 14:250–254 Mattner J, Debord KL, Ismail N, Goff RD, Cantu C III, Zhou D, Saint-Mezard P, Wang V, Gao Y, Yin N, Hoebe K, Schneewind O, Walker D, Beutler B, Teyton L, Savage PB, Bendelac A (2005) Exogenous and endogenous glycolipid antigens activate NKT cells during microbial infections. Nature 434:525–529 Mercer JC, Ragin MJ, August A (2005) Natural killer T cells: rapid responders controlling immunity and disease. Int J Biochem Cell Biol 37:1337–1343 Mocchegiani E, Malavolta M (2004) NK and NKT cell functions in immunosenescence. Aging Cell 3:177–184 Mocchegiani E, Giacconi R, Cipriano C, Gasparini N, Bernardini G, Malavolta M, Menegazzi M, Cavalieri E, Muzzioli M, Ciampa AR, Suzuki H (2004a) The variations during the circadian cycle of liver CD1d-unrestricted NK1.1+TCR gamma/delta+ cells lead to successful ageing. Role of metallothionein/IL-6/gp130/PARP-1 interplay in very old mice. Exp Gerontol 39:775–788 Mocchegiani E, Giacconi R, Muti E, Rogo C, Bracci M, Muzzioli M, Cipriano C, Malavolta M (2004b) Zinc, immune plasticity, aging, and successful aging: role of metallothionein. Ann N Y Acad Sci 1019:127–134 Mocchegiani E, Costarelli L, Giacconi R, Cipriano C, Muti E, Tesei S, Malavolta M (2006) Nutrient-gene interaction in ageing and successful ageing A single nutrient (zinc) and some target genes related to inflammatory/immune response. Mech Ageing Dev 127:517–525 Molling JW, Kolgen W, van d V, Boomsma MF, Kruizenga H, Smorenburg CH, Molenkamp BG, Langendijk JA, Leemans CR, von Blomberg BM, Scheper RJ, van den Eertwegh AJ (2005) Peripheral blood IFN-gamma-secreting Valpha24+Vbeta11+ NKT cell numbers are decreased in cancer patients independent of tumor type or tumor load. Int J Cancer 116:87–93 Nilsson BO, Ernerudh J, Johansson B, Evrin PE, Lofgren S, Ferguson FG, Wikby A (2003) Morbidity does not influence the T-cell immune risk phenotype in the elderly: findings in the Swedish NONA Immune Study using sample selection protocols. Mech Ageing Dev 124:469–476 Ouyang Q, Wagner WM, Zheng W, Wikby A, Remarque EJ, Pawelec G (2004) Dysfunctional CMV-specific CD8(+) T cells accumulate in the elderly. Exp Gerontol 39:607–613 Pawelec G (2000) Working together for robust immune responses in the elderly. Nat Immunol 1:91 Pawelec G, Solana R (2001) Immunoageing—the cause or effect of morbidity. Trends Immunol 22:348–349 Pawelec G, Solana R, Remarque E, Mariani E (1998) Impact of aging on innate immunity. J Leukoc Biol 64:703–712 Pawelec G, Effros RB, Globerson A (2000) A multidisciplinary approach to immunity and ageing: ImAginEering. Mech Ageing Dev 121:1–4 Pawelec G, Barnett Y, Forsey R, Frasca D, Globerson A, McLeod J, Caruso C, Franceschi C, Fulop T, Gupta S, Mariani E, Mocchegiani E, Solana R (2002) T cells and aging, January 2002 update. Front Biosci 7:d1056–d1183 Pawelec G, Akbar A, Caruso C, Solana R, Grubeck-Loebenstein B, Wikby A (2005) Human immunosenescence: is it infectious? Immunol Rev 205:257–268 Sadighi Akha AA, Miller RA (2005) Signal transduction in the aging immune system. Curr Opin Immunol 17:486–491 Sandberg JK, Bhardwaj N, Nixon DF (2003) Dominant effector memory characteristics, capacity for dynamic adaptive expansion, and sex bias in the innate Valpha24 NKT cell compartment. Eur J Immunol 33:588–596 Solana R, Pawelec G, Tarazona R (2006) Aging and innate immunity. Immunity 24:491–494 Swain S, Clise-Dwyer K, Haynes L (2005) Homeostasis and the age-associated defect of CD4 T cells. Semin Immunol 17:370–377 Takahashi T, Nieda M, Koezuka Y, Nicol A, Porcelli SA, Ishikawa Y, Tadokoro K, Hirai H, Juji T (2000) Analysis of human Valpha24+ CD4+ NKT cells activated by alpha-glycosylceramide-pulsed monocyte-derived dendritic cells. J Immunol 164:4458–4464 Takahashi T, Chiba S, Nieda M, Azuma T, Ishihara S, Shibata Y, Juji T, Hirai H (2002) Cutting edge: analysis of human Valpha24+CD8+ NK T cells activated by alpha-galactosylceramide-pulsed monocyte-derived dendritic cells. J Immunol 168:3140–3144 Taniguchi M, Harada M, Kojo S, Nakayama T, Wakao H (2003) The regulatory role of Valpha14 NKT cells in innate and acquired immune response. Annu Rev Immunol 21:483–513 Tarazona R, Delarosa O, Alonso C, Ostos B, Espejo J, Pena J, Solana R (2000) Increased expression of NK cell markers on T lymphocytes in aging and chronic activation of the immune system reflects the accumulation of effector/senescent T cells. Mech Ageing Dev 121:77–88 Tarazona R, Solana R, Ouyang Q, Pawelec G (2002) Basic biology and clinical impact of immunosenescence. Exp Gerontol 37:183–189 Thomas SY, Hou R, Boyson JE, Means TK, Hess C, Olson DP, Strominger JL, Brenner MB, Gumperz JE, Wilson SB, Luster AD (2003) CD1d-restricted NKT cells express a chemokine receptor profile indicative of Th1-type inflammatory homing cells. J Immunol 171:2571–2580 Weng NP (2006) Aging of the immune system: how much can the adaptive immune system adapt? Immunity 24:495–499 Wikby A, Ferguson F, Forsey R, Thompson J, Strindhall J, Lofgren S, Nilsson BO, Ernerudh J, Pawelec G, Johansson B (2005) An immune risk phenotype, cognitive impairment, and survival in very late life: impact of allostatic load in Swedish octogenarian and nonagenarian humans. J Gerontol A Biol Sci Med Sci 60:556–565 Zajonc DM, Cantu C III, Mattner J, Zhou D, Savage PB, Bendelac A, Wilson IA, Teyton L (2005) Structure and function of a potent agonist for the semi-invariant natural killer T cell receptor. Nat Immunol 6:810–818 Zhou D, Mattner J, Cantu C III, Schrantz N, Yin N, Gao Y, Sagiv Y, Hudspeth K, Wu YP, Yamashita T, Teneberg S, Wang D, Proia RL, Levery SB, Savage PB, Teyton L, Bendelac A (2004) Lysosomal glycosphingolipid recognition by NKT cells. Science 306:1786–1789