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Linked sensitization by memory CD4+ T cells prevents costimulation blockade–induced transplantation tolerance
Michael S. Andrade, James S. Young, Jared M. Pollard, Dengping Yin, Maria-Luisa Alegre, Anita S. Chong
Michael S. Andrade, James S. Young, Jared M. Pollard, Dengping Yin, Maria-Luisa Alegre, Anita S. Chong
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Research Article Immunology Transplantation

Linked sensitization by memory CD4+ T cells prevents costimulation blockade–induced transplantation tolerance

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Abstract

Dominant infectious tolerance explains how brief tolerance-inducing therapies result in lifelong tolerance to donor antigens and “linked” third-party antigens, while recipient sensitization and ensuing immunological memory prevent the successful induction of transplant tolerance. In this study, we juxtapose these 2 concepts to test whether mechanisms of dominant infectious tolerance can control a limited repertoire of memory T and B cells. We show that sensitization to a single donor antigen is sufficient to prevent stable transplant tolerance, rendering it unstable. Mechanistic studies revealed that recall antibody responses and memory CD8+ T cell expansion were initially controlled, but memory CD4+Foxp3– T cell (Tconv) responses were not. Remarkably, naive donor-specific Tconvs at tolerance induction also acquired a resistance to tolerance, proliferating and acquiring a phenotype similar to memory Tconvs. This phenomenon of “linked sensitization” underscores the challenges of reprogramming a primed immune response toward tolerance and identifies a potential therapeutic checkpoint for synergizing with costimulation blockade to achieve transplant tolerance in the clinic.

Authors

Michael S. Andrade, James S. Young, Jared M. Pollard, Dengping Yin, Maria-Luisa Alegre, Anita S. Chong

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Figure 2

Unstable tolerance is not associated with the accumulation of memory OVA:Kb CD8+ T cells.

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Unstable tolerance is not associated with the accumulation of memory OVA...
(A) Serum anti–2W-OVA IgG and (B) anti-BALB/c IgG on HTx POD 0, 7, 30, and 60 was quantified on 2W-OVA.B6 lymphocytes and BALB/c lymphocytes, respectively. Mean fluorescence intensity (MFI) of IgG binding on CD19– lymphocytes is presented as mean ± standard deviation (STDEV) (n = 4–5 mice per group). (C) Representative immunohistochemistry staining at 40× original magnification for C4d for N-Tol, S-Tol, and AR recipients on POD 60. (D) C4d quantification per cm2 on POD 60 was conducted on a total of n = 8 sections per group using QuPath automatic cell detection software. (E) Total number of OVA:Kb CD8+ T cells recovered from spleen and lymph nodes/mouse of naive (N), N-Tol, sensitized (S), S-Tol, and AR mice on POD 60. (F) Representative histograms and percentage of CD44+ of OVA:Kb CD8+ T cells. (G) MFI of OVA:Kb tetramer binding and (H) percentage of Ki67hi of OVA:Kb CD8+ T cells. (I and J) Percentage of IFN-γ+ and TNF-α+ effector memory (CD44+CD62L–) OVA:Kb CD8+T cells (on POD 60) stimulated in vitro with 2W-OVA.F1 T cell–depleted splenocytes (I) or αCD3/αCD28 stimulation (J). Each symbol represents a single mouse, and each experiment was repeated 2–3 times (n = 4–8 mice per group). Data are presented as mean ± STDEV, and statistical significance was assessed by 1-way ANOVA and Tukey’s or Dunnett’s multiple-comparison test *P < 0.05, **P < 0.005, ***P < 0.001, ****P < 0.0001, or Mann-Whitney test #P < 0.05.

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