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Tissue-resident memory T cells contribute to protection against heterologous SARS-CoV-2 challenge
Abby Odle, Meenakshi Kar, Abhishek K. Verma, Alan Sariol, David K. Meyerholz, Mehul S. Suthar, Lok-Yin Roy Wong, Stanley Perlman
Abby Odle, Meenakshi Kar, Abhishek K. Verma, Alan Sariol, David K. Meyerholz, Mehul S. Suthar, Lok-Yin Roy Wong, Stanley Perlman
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Research Article COVID-19 Virology

Tissue-resident memory T cells contribute to protection against heterologous SARS-CoV-2 challenge

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Abstract

New vaccine formulations are based on circulating strains of virus, which have tended to evolve to more readily transmit human to human and to evade the neutralizing antibody response. An assumption of this approach is that ancestral strains of virus will not recur. Recurrence of these strains could be a problem for individuals not previously exposed to ancestral spike protein. Here, we addressed this by infecting mice with recent SARS-CoV-2 variants and then challenging them with a highly pathogenic mouse-adapted virus closely related to the ancestral Wuhan-1 strain (SARS2-N501YMA30). We found that challenged mice were protected from severe disease, despite having low or no neutralizing antibodies against SARS2-N501YMA30. T cell depletion from previously infected mice did not diminish infection against clinical disease, although it resulted in delayed virus clearance in the nasal turbinate and, in some cases, in the lungs. Levels of tissue-resident memory T cells were significantly elevated in the nasal turbinate of previously infected mice compared with that of naive mice. However, this phenotype was not seen in lung tissues. Together, these results indicate that the immune response to newly circulating variants afforded protection against reinfection with the ancestral virus that was in part T cell based.

Authors

Abby Odle, Meenakshi Kar, Abhishek K. Verma, Alan Sariol, David K. Meyerholz, Mehul S. Suthar, Lok-Yin Roy Wong, Stanley Perlman

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Figure 4

Effect of T cell depletion on kinetics of virus clearance.

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Effect of T cell depletion on kinetics of virus clearance.
Four-month-ol...
Four-month-old (XBB.1.5) or 6-month-old (other SARS-CoV-2 variants) C57BL/6 mice were infected with the indicated SARS-CoV-2 variant and challenged with SARS2-N501YMA30 3 months later. (A) Schematic detailing experimental timeline. CD4+/CD8+ T cells were depleted at the indicated time points. (B–D) Mice were initially infected with (B) BA.2.12.1, (B) B.1.351, (C) BA.5, or (D) XBB.1.5. PBS-treated mice were mock infected and then challenged with SARS2-N501YMA30. (B) BA.2.12.1- and B.1.351-infected groups were non–T cell–depleted mice (n = 4/group). Data represent 1 experiment. (C) 3 dpi: PBS (n = 8), BA.5 (non–T cell depleted), (n = 8 lungs, n = 10 nasal turbinates (NT), and BA.5 depleted (n = 9). 5 dpi: PBS (n = 9), BA.5 (n = 10), and BA.5 depleted (n = 10). Data are from 2 independent experiments. (D) The XBB.1.5-infected group comprised non–T cell–depleted mice. Mice were CD4+ T cell, CD8+ T cell or CD4/CD8+ T cell depleted. Each group contained 7–8 mice, from 2 independent experiments. Data in B–D are shown as mean ± SEM. Each symbol represents data obtained from 1 mouse. (E) XBB.1.5-infected mice were challenged with the B.1.1.7 (α variant). Virus titers in the lungs and nasal turbinates were measured at 5 dpi. Each group contained 4 mice. Data are from 1 experiment. (F) Lung pathology of XBB.1.5, XBB.1.5 T cell depleted, and PBS-treated mice at 5 dpi. PBS (n = 10), XBB.1.5 (n = 9), and XBB.1.5 infected and T cell depleted (n = 8). Evidence of edema is denoted by asterisks, and cellular infiltrates are marked with arrows. Scale bar: 450 μm (top) and 90 μm (bottom). All P values were measured by 1-way ANOVA followed by Tukey’s test for multiple comparisons. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001.

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