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Age-related differences in immune responses to inactivated influenza and adjuvanted recombinant herpes zoster vaccines
Gizem Kilic, Esther J.M. Taks, Leonie S. Helder, Elisabeth A. Dulfer, Büsra Geckin, Liesbeth van Emst, Heidi Lemmers, Stefano Berrè, Adhidev Biswas, Mumin Ozturk, Yutaka Negishi, Wivine Burny, Sofia M. Buonocore, Jaap ten Oever, Musa M. Mhlanga, Mihai G. Netea
Gizem Kilic, Esther J.M. Taks, Leonie S. Helder, Elisabeth A. Dulfer, Büsra Geckin, Liesbeth van Emst, Heidi Lemmers, Stefano Berrè, Adhidev Biswas, Mumin Ozturk, Yutaka Negishi, Wivine Burny, Sofia M. Buonocore, Jaap ten Oever, Musa M. Mhlanga, Mihai G. Netea
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Research Article Aging Immunology Infectious disease

Age-related differences in immune responses to inactivated influenza and adjuvanted recombinant herpes zoster vaccines

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Abstract

Immunosenescence, the biological aging of the immune system, leads to dysregulated immune responses, increasing susceptibility to infections and reducing vaccine efficacy in older adults, as seen with flu vaccines. In contrast, the AS01-adjuvanted recombinant herpes zoster vaccine (RZV) maintains high and sustained efficacy, offering 82% protection against herpes zoster at 11 years after vaccination in individuals over 50. To identify factors affecting age-dependent vaccine efficacy, we conducted a randomized, partially placebo-controlled clinical study. Young adults (18–35 years, n = 84) were randomized 3:3:1:1 to receive either RZV, an inactivated quadrivalent seasonal influenza vaccine (IIV4), or a placebo for RZV or for IIV4, and older adults (≥60, n = 63) were randomized 1:1 to receive RZV or IIV4. RZV elicited robust antibody production, antigen-specific polyfunctional CD4+ T cell responses, and IFN-γ from PBMCs in both age groups, while IIV4 increased antibody responses but induced fewer antigen-specific CD4+ T cells and no elevation of IFN-γ from PBMCs. Interestingly, RZV reduced systemic inflammation in older adults, particularly after the second injection. Baseline inflammation negatively correlated with antibody production and IFN-γ response, especially after RZV. Our findings suggest that RZV may help overcome immunosenescence by enhancing cellular responses and potentially decreasing systemic inflammation, deserving further investigation into the underlying molecular mechanisms.

Authors

Gizem Kilic, Esther J.M. Taks, Leonie S. Helder, Elisabeth A. Dulfer, Büsra Geckin, Liesbeth van Emst, Heidi Lemmers, Stefano Berrè, Adhidev Biswas, Mumin Ozturk, Yutaka Negishi, Wivine Burny, Sofia M. Buonocore, Jaap ten Oever, Musa M. Mhlanga, Mihai G. Netea

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Figure 3

RZV-induced changes in immune cell counts and adaptive immune responses in young and older adults.

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RZV-induced changes in immune cell counts and adaptive immune responses ...
Heatmaps showing the fold changes in immune cell counts after the (A) first and (B) second dose of RZV. Fold changes at D1, D7, and D60 were compared with D0; fold changes at D61, D67, D120, and D240 were compared with D60 using Wilcoxon’s signed-rank test, with P values corrected for multiple testing using the Benjamini-Hochberg method. The scale displays fold change values; stars on the heatmap represent FDR values. (C) Anti-HZV gE antibody concentrations and (D) comparison of fold changes (D60/D0 and D120/D0) after RZV in young and older individuals. (E) Spearman’s correlation between baseline concentrations of anti-VZV gE antibodies and fold antibody response (D60/D0) after RZV. (F) Spearman’s correlation between pre-second vaccination (D60) anti-VZV gE antibody concentrations and fold antibody response (D120/D60) after second dose. (G) IFN-γ production from PBMCs after 7-day stimulation with 4 μg/mL of the antigen (gE) in RZV. (H) Spearman’s correlation of fold IFN-γ responses (D60/D0 and D120/D0 and D240/D0) and fold antibody production (D60/D0 and D120/D0). The scale indicates the correlation coefficient (r). (I) The frequency of activated (4-1BB+) CD4+ T cells per 106 CD4+ T cells that were positive for CD40L, IL-2, TNF, and IFN-γ after stimulation with the gE antigen in young and older adults. The y axis values in C and G are displayed on a log10 scale; values in D are shown on a log2 scale. Different time points within the same group were compared using Dunn’s multiple-comparison test, and fold changes between young and older adults were compared using the Mann-Whitney U test. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001.

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