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Stochastic Episodes of Latent Cytomegalovirus Transcription Drive CD8 T-Cell “Memory Inflation” and Avoid Immune Evasion

Acute infection with murine cytomegalovirus (mCMV) is controlled by CD8(+) T cells and develops into a state of latent infection, referred to as latency, which is defined by lifelong maintenance of viral genomes but absence of infectious virus in latently infected cell types. Latency is associated w...

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Autores principales: Griessl, Marion, Renzaho, Angelique, Freitag, Kirsten, Seckert, Christof K., Reddehase, Matthias J., Lemmermann, Niels A. W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8100209/
https://www.ncbi.nlm.nih.gov/pubmed/33968074
http://dx.doi.org/10.3389/fimmu.2021.668885
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author Griessl, Marion
Renzaho, Angelique
Freitag, Kirsten
Seckert, Christof K.
Reddehase, Matthias J.
Lemmermann, Niels A. W.
author_facet Griessl, Marion
Renzaho, Angelique
Freitag, Kirsten
Seckert, Christof K.
Reddehase, Matthias J.
Lemmermann, Niels A. W.
author_sort Griessl, Marion
collection PubMed
description Acute infection with murine cytomegalovirus (mCMV) is controlled by CD8(+) T cells and develops into a state of latent infection, referred to as latency, which is defined by lifelong maintenance of viral genomes but absence of infectious virus in latently infected cell types. Latency is associated with an increase in numbers of viral epitope-specific CD8(+) T cells over time, a phenomenon known as “memory inflation” (MI). The “inflationary” subset of CD8(+) T cells has been phenotyped as KLRG1(+)CD62L(-) effector-memory T cells (iTEM). It is agreed upon that proliferation of iTEM requires repeated episodes of antigen presentation, which implies that antigen-encoding viral genes must be transcribed during latency. Evidence for this has been provided previously for the genes encoding the MI-driving antigenic peptides IE1-YPHFMPTNL and m164-AGPPRYSRI of mCMV in the H-2(d) haplotype. There exist two competing hypotheses for explaining MI-driving viral transcription. The “reactivation hypothesis” proposes frequent events of productive virus reactivation from latency. Reactivation involves a coordinated gene expression cascade from immediate-early (IE) to early (E) and late phase (L) transcripts, eventually leading to assembly and release of infectious virus. In contrast, the “stochastic transcription hypothesis” proposes that viral genes become transiently de-silenced in latent viral genomes in a stochastic fashion, not following the canonical IE-E-L temporal cascade of reactivation. The reactivation hypothesis, however, is incompatible with the finding that productive virus reactivation is exceedingly rare in immunocompetent mice and observed only under conditions of compromised immunity. In addition, the reactivation hypothesis fails to explain why immune evasion genes, which are regularly expressed during reactivation in the same cells in which epitope-encoding genes are expressed, do not prevent antigen presentation and thus MI. Here we show that IE, E, and L genes are transcribed during latency, though stochastically, not following the IE-E-L temporal cascade. Importantly, transcripts that encode MI-driving antigenic peptides rarely coincide with those that encode immune evasion proteins. As immune evasion can operate only in cis, that is, in a cell that simultaneously expresses antigenic peptides, the stochastic transcription hypothesis explains why immune evasion is not operative in latently infected cells and, therefore, does not interfere with MI.
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spelling pubmed-81002092021-05-07 Stochastic Episodes of Latent Cytomegalovirus Transcription Drive CD8 T-Cell “Memory Inflation” and Avoid Immune Evasion Griessl, Marion Renzaho, Angelique Freitag, Kirsten Seckert, Christof K. Reddehase, Matthias J. Lemmermann, Niels A. W. Front Immunol Immunology Acute infection with murine cytomegalovirus (mCMV) is controlled by CD8(+) T cells and develops into a state of latent infection, referred to as latency, which is defined by lifelong maintenance of viral genomes but absence of infectious virus in latently infected cell types. Latency is associated with an increase in numbers of viral epitope-specific CD8(+) T cells over time, a phenomenon known as “memory inflation” (MI). The “inflationary” subset of CD8(+) T cells has been phenotyped as KLRG1(+)CD62L(-) effector-memory T cells (iTEM). It is agreed upon that proliferation of iTEM requires repeated episodes of antigen presentation, which implies that antigen-encoding viral genes must be transcribed during latency. Evidence for this has been provided previously for the genes encoding the MI-driving antigenic peptides IE1-YPHFMPTNL and m164-AGPPRYSRI of mCMV in the H-2(d) haplotype. There exist two competing hypotheses for explaining MI-driving viral transcription. The “reactivation hypothesis” proposes frequent events of productive virus reactivation from latency. Reactivation involves a coordinated gene expression cascade from immediate-early (IE) to early (E) and late phase (L) transcripts, eventually leading to assembly and release of infectious virus. In contrast, the “stochastic transcription hypothesis” proposes that viral genes become transiently de-silenced in latent viral genomes in a stochastic fashion, not following the canonical IE-E-L temporal cascade of reactivation. The reactivation hypothesis, however, is incompatible with the finding that productive virus reactivation is exceedingly rare in immunocompetent mice and observed only under conditions of compromised immunity. In addition, the reactivation hypothesis fails to explain why immune evasion genes, which are regularly expressed during reactivation in the same cells in which epitope-encoding genes are expressed, do not prevent antigen presentation and thus MI. Here we show that IE, E, and L genes are transcribed during latency, though stochastically, not following the IE-E-L temporal cascade. Importantly, transcripts that encode MI-driving antigenic peptides rarely coincide with those that encode immune evasion proteins. As immune evasion can operate only in cis, that is, in a cell that simultaneously expresses antigenic peptides, the stochastic transcription hypothesis explains why immune evasion is not operative in latently infected cells and, therefore, does not interfere with MI. Frontiers Media S.A. 2021-04-22 /pmc/articles/PMC8100209/ /pubmed/33968074 http://dx.doi.org/10.3389/fimmu.2021.668885 Text en Copyright © 2021 Griessl, Renzaho, Freitag, Seckert, Reddehase and Lemmermann https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Immunology
Griessl, Marion
Renzaho, Angelique
Freitag, Kirsten
Seckert, Christof K.
Reddehase, Matthias J.
Lemmermann, Niels A. W.
Stochastic Episodes of Latent Cytomegalovirus Transcription Drive CD8 T-Cell “Memory Inflation” and Avoid Immune Evasion
title Stochastic Episodes of Latent Cytomegalovirus Transcription Drive CD8 T-Cell “Memory Inflation” and Avoid Immune Evasion
title_full Stochastic Episodes of Latent Cytomegalovirus Transcription Drive CD8 T-Cell “Memory Inflation” and Avoid Immune Evasion
title_fullStr Stochastic Episodes of Latent Cytomegalovirus Transcription Drive CD8 T-Cell “Memory Inflation” and Avoid Immune Evasion
title_full_unstemmed Stochastic Episodes of Latent Cytomegalovirus Transcription Drive CD8 T-Cell “Memory Inflation” and Avoid Immune Evasion
title_short Stochastic Episodes of Latent Cytomegalovirus Transcription Drive CD8 T-Cell “Memory Inflation” and Avoid Immune Evasion
title_sort stochastic episodes of latent cytomegalovirus transcription drive cd8 t-cell “memory inflation” and avoid immune evasion
topic Immunology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8100209/
https://www.ncbi.nlm.nih.gov/pubmed/33968074
http://dx.doi.org/10.3389/fimmu.2021.668885
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