Shuntaro Isogai, Atsushi Okabe, Kazusuke Tanaka, Takuya Nakagawa, Shintaro Izumi, Masaki Fukuyo, Bahityar Rahmutulla, Natsumi Yoda, Motoaki Seki, Takayuki Hoshii, Hironori Yoshiyama, Norio Shimizu, Hiroshi Yasui, Ayako Arai, Emiko Sakaida, Atsushi Kaneda
Epstein-Barr virus (EBV) infects many people and causes T-cell and natural killer (NK)-cell disorders, such as chronic active EBV disease and extranodal NK/T-cell lymphoma, which are aggressive and lack a common genetic driver. This suggests that virus-associated, non-genetic mechanisms contribute to disease. We studied primary T cells, NK cells, Epstein-Barr virus-positive cell lines derived from these disorders, virus-negative controls, and clinical chronic active EBV disease samples. Using genome-wide and single-cell multiome approaches, we examined three-dimensional chromatin organization, histone modifications, viral-host chromatin proximity, regulatory element activity, and transcription. EBV-positive lines shared a chromatin compartment pattern distinct from primary and virus-negative cancer cells. Regions that changed from inactive to active chromatin states showed increased activating histone marks and higher expression of nearby genes. EBV-interacting regions were enriched in inactive chromatin and inactive-to-active shifting regions, and contained activated promoters and enhancers associated with increased expression of neighboring genes in both T-cell and NK-cell backgrounds. Locus-level analyses identified CACNA2D1 and RGS1 as representative target genes with chromatin activation, and knockdown of each gene impaired cell growth in EBV-positive lines. Single-cell multiome profiling of clinical chronic active EBV disease samples identified EBV read-positive T-cell or NK-cell populations consistent with independently defined infected lineages and validated epigenomic and transcriptional rewiring at EBV-interacting regions. These findings support a model in which EBV contributes to oncogenic transcriptional programs in these diseases by coupling three-dimensional chromatin reorganization and regulatory element activation to physical interactions with the host genome.