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KSHV Topologically Associating Domains in Latent and Reactivated Viral Chromatin

Eukaryotic genomes are structurally organized via the formation of multiple loops that create gene expression regulatory units called topologically associating domains (TADs). Here we revealed the KSHV TAD structure at 500 bp resolution and constructed a 3D KSHV genomic structural model with 2 kb bi...

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Autores principales: Campbell, Mel, Chantarasrivong, Chanikarn, Yanagihashi, Yuichi, Inagaki, Tomoki, Davis, Ryan R., Nakano, Kazushi, Kumar, Ashish, Tepper, Clifford G., Izumiya, Yoshihiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9327698/
https://www.ncbi.nlm.nih.gov/pubmed/35867573
http://dx.doi.org/10.1128/jvi.00565-22
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author Campbell, Mel
Chantarasrivong, Chanikarn
Yanagihashi, Yuichi
Inagaki, Tomoki
Davis, Ryan R.
Nakano, Kazushi
Kumar, Ashish
Tepper, Clifford G.
Izumiya, Yoshihiro
author_facet Campbell, Mel
Chantarasrivong, Chanikarn
Yanagihashi, Yuichi
Inagaki, Tomoki
Davis, Ryan R.
Nakano, Kazushi
Kumar, Ashish
Tepper, Clifford G.
Izumiya, Yoshihiro
author_sort Campbell, Mel
collection PubMed
description Eukaryotic genomes are structurally organized via the formation of multiple loops that create gene expression regulatory units called topologically associating domains (TADs). Here we revealed the KSHV TAD structure at 500 bp resolution and constructed a 3D KSHV genomic structural model with 2 kb binning. The latent KSHV genome formed very similar genomic architectures in three different naturally infected PEL cell lines and in an experimentally infected epithelial cell line. The majority of the TAD boundaries were occupied by structural maintenance of chromosomes (SMC1) cohesin complex and CCCTC-binding factor (CTCF), and the KSHV transactivator was recruited to those sites during reactivation. Triggering KSHV gene expression decreased prewired genomic loops within the regulatory unit, while contacts extending outside of regulatory borders increased, leading to formation of a larger regulatory unit with a shift from repressive to active compartments (B to A). The 3D genomic structural model proposes that the immediate early promoter region is localized on the periphery of the 3D viral genome during latency, while highly inducible noncoding RNA regions moved toward the inner space of the structure, resembling the configuration of a “bird cage” during reactivation. The compartment-like properties of viral episomal chromatin structure and its reorganization during the transition from latency may help facilitate viral gene transcription. IMPORTANCE The 3D architecture of chromatin allows for efficient arrangement, expression, and replication of genetic material. The genomes of all organisms studied to date have been found to be organized through some form of tiered domain structures. However, the architectural framework of the genomes of large double-stranded DNA viruses such as the herpesvirus family has not been reported. Prior studies with Kaposi’s sarcoma-associated herpesvirus (KSHV) have indicated that the viral chromatin shares many biological properties exhibited by the host cell genome, essentially behaving as a mini human chromosome. Thus, we hypothesized that the KSHV genome may be organized in a similar manner. In this report, we describe the domain structure of the latent and lytic KSHV genome at 500 bp resolution and present a 3D genomic structural model for KSHV under each condition. These results add new insights into the complex regulation of the viral life cycle.
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spelling pubmed-93276982022-07-28 KSHV Topologically Associating Domains in Latent and Reactivated Viral Chromatin Campbell, Mel Chantarasrivong, Chanikarn Yanagihashi, Yuichi Inagaki, Tomoki Davis, Ryan R. Nakano, Kazushi Kumar, Ashish Tepper, Clifford G. Izumiya, Yoshihiro J Virol Genome Replication and Regulation of Viral Gene Expression Eukaryotic genomes are structurally organized via the formation of multiple loops that create gene expression regulatory units called topologically associating domains (TADs). Here we revealed the KSHV TAD structure at 500 bp resolution and constructed a 3D KSHV genomic structural model with 2 kb binning. The latent KSHV genome formed very similar genomic architectures in three different naturally infected PEL cell lines and in an experimentally infected epithelial cell line. The majority of the TAD boundaries were occupied by structural maintenance of chromosomes (SMC1) cohesin complex and CCCTC-binding factor (CTCF), and the KSHV transactivator was recruited to those sites during reactivation. Triggering KSHV gene expression decreased prewired genomic loops within the regulatory unit, while contacts extending outside of regulatory borders increased, leading to formation of a larger regulatory unit with a shift from repressive to active compartments (B to A). The 3D genomic structural model proposes that the immediate early promoter region is localized on the periphery of the 3D viral genome during latency, while highly inducible noncoding RNA regions moved toward the inner space of the structure, resembling the configuration of a “bird cage” during reactivation. The compartment-like properties of viral episomal chromatin structure and its reorganization during the transition from latency may help facilitate viral gene transcription. IMPORTANCE The 3D architecture of chromatin allows for efficient arrangement, expression, and replication of genetic material. The genomes of all organisms studied to date have been found to be organized through some form of tiered domain structures. However, the architectural framework of the genomes of large double-stranded DNA viruses such as the herpesvirus family has not been reported. Prior studies with Kaposi’s sarcoma-associated herpesvirus (KSHV) have indicated that the viral chromatin shares many biological properties exhibited by the host cell genome, essentially behaving as a mini human chromosome. Thus, we hypothesized that the KSHV genome may be organized in a similar manner. In this report, we describe the domain structure of the latent and lytic KSHV genome at 500 bp resolution and present a 3D genomic structural model for KSHV under each condition. These results add new insights into the complex regulation of the viral life cycle. American Society for Microbiology 2022-07-11 /pmc/articles/PMC9327698/ /pubmed/35867573 http://dx.doi.org/10.1128/jvi.00565-22 Text en Copyright © 2022 Campbell et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Genome Replication and Regulation of Viral Gene Expression
Campbell, Mel
Chantarasrivong, Chanikarn
Yanagihashi, Yuichi
Inagaki, Tomoki
Davis, Ryan R.
Nakano, Kazushi
Kumar, Ashish
Tepper, Clifford G.
Izumiya, Yoshihiro
KSHV Topologically Associating Domains in Latent and Reactivated Viral Chromatin
title KSHV Topologically Associating Domains in Latent and Reactivated Viral Chromatin
title_full KSHV Topologically Associating Domains in Latent and Reactivated Viral Chromatin
title_fullStr KSHV Topologically Associating Domains in Latent and Reactivated Viral Chromatin
title_full_unstemmed KSHV Topologically Associating Domains in Latent and Reactivated Viral Chromatin
title_short KSHV Topologically Associating Domains in Latent and Reactivated Viral Chromatin
title_sort kshv topologically associating domains in latent and reactivated viral chromatin
topic Genome Replication and Regulation of Viral Gene Expression
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9327698/
https://www.ncbi.nlm.nih.gov/pubmed/35867573
http://dx.doi.org/10.1128/jvi.00565-22
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