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基于高通量 RNA 测序的癌症细胞图谱计划 50 株淋巴瘤细胞系病毒组分析。

High-throughput RNA sequencing-based virome analysis of 50 lymphoma cell lines from the Cancer Cell Line Encyclopedia project.

机构信息

Tulane Health Sciences Center and Tulane Cancer Center, New Orleans, Louisiana, USA.

Department of Molecular Biophysics and Biochemistry, Howard Hughes Medical Institute, Yale University School of Medicine, New Haven, Connecticut, USA.

出版信息

J Virol. 2015 Jan;89(1):713-29. doi: 10.1128/JVI.02570-14. Epub 2014 Oct 29.

DOI:10.1128/JVI.02570-14
PMID:25355872
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4301145/
Abstract

UNLABELLED

Using high-throughput RNA sequencing data from 50 common lymphoma cell culture models from the Cancer Cell Line Encyclopedia project, we performed an unbiased global interrogation for the presence of a panel of 740 viruses and strains known to infect human and other mammalian cells. This led to the findings of previously identified infections by Epstein-Barr virus (EBV), Kaposi's sarcoma herpesvirus (KSHV), and human T-lymphotropic virus type 1 (HTLV-1). In addition, we also found a previously unreported infection of one cell line (DEL) with a murine leukemia virus. High expression of murine leukemia virus (MuLV) transcripts was observed in DEL cells, and we identified four transcriptionally active integration sites, one being in the TNFRSF6B gene. We also found low levels of MuLV reads in a number of other cell lines and provided evidence suggesting cross-contamination during sequencing. Analysis of HTLV-1 integrations in two cell lines, HuT 102 and MJ, identified 14 and 66 transcriptionally active integration sites with potentially activating integrations in immune regulatory genes, including interleukin-15 (IL-15), IL-6ST, STAT5B, HIVEP1, and IL-9R. Although KSHV and EBV do not typically integrate into the genome, we investigated a previously identified integration of EBV into the BACH2 locus in Raji cells. This analysis identified a BACH2 disruption mechanism involving splice donor sequestration. Through viral gene expression analysis, we detected expression of stable intronic RNAs from the EBV BamHI W repeats that may be part of long transcripts spanning the repeat region. We also observed transcripts at the EBV vIL-10 locus exclusively in the Hodgkin's lymphoma cell line, Hs 611.T, the expression of which were uncoupled from other lytic genes. Assessment of the KSHV viral transcriptome in BCP-1 cells showed expression of the viral immune regulators, K2/vIL-6, K4/vIL-8-like vCCL1, and K5/E2-ubiquitin ligase 1 that was significantly higher than expression of the latency-associated nuclear antigen. Together, this investigation sheds light into the virus composition across these lymphoma model systems and provides insights into common viral mechanistic principles.

IMPORTANCE

Viruses cause cancer in humans. In lymphomas the Epstein-Barr virus (EBV), Kaposi's sarcoma herpesvirus (KSHV) and human T-lymphotropic virus type 1 are major contributors to oncogenesis. We assessed virus-host interactions using a high throughput sequencing method that facilitates the discovery of new virus-host associations and the investigation into how the viruses alter their host environment. We found a previously unknown murine leukemia virus infection in one cell line. We identified cellular genes, including cytokine regulators, that are disrupted by virus integration, and we determined mechanisms through which virus integration causes deregulation of cellular gene expression. Investigation into the KSHV transcriptome in the BCP-1 cell line revealed high-level expression of immune signaling genes. EBV transcriptome analysis showed expression of vIL-10 transcripts in a Hodgkin's lymphoma that was uncoupled from lytic genes. These findings illustrate unique mechanisms of viral gene regulation and to the importance of virus-mediated host immune signaling in lymphomas.

摘要

未加标签

利用来自癌症细胞图谱项目的 50 种常见淋巴瘤细胞培养模型的高通量 RNA 测序数据,我们对一组已知感染人类和其他哺乳动物细胞的 740 种病毒和株进行了全面的全球检测。这导致了以前发现的 EBV(爱泼斯坦-巴尔病毒)、KSHV(卡波西肉瘤疱疹病毒)和 HTLV-1(人 T 淋巴细胞病毒 1)感染的发现。此外,我们还发现了一个以前未报告的 DEL 细胞系感染了一种鼠白血病病毒。在 DEL 细胞中观察到鼠白血病病毒(MuLV)转录物的高表达,我们鉴定了四个转录活性整合位点,其中一个位于 TNFRSF6B 基因中。我们还在许多其他细胞系中发现了低水平的 MuLV 读数,并提供了表明在测序过程中发生交叉污染的证据。对 HuT 102 和 MJ 两种细胞系中的 HTLV-1 整合进行分析,鉴定了 14 个和 66 个转录活性整合位点,其中包括免疫调节基因中的潜在激活整合,包括白细胞介素 15(IL-15)、IL-6ST、STAT5B、HIVEP1 和 IL-9R。尽管 KSHV 和 EBV 通常不会整合到基因组中,但我们研究了以前在 Raji 细胞中发现的 EBV 整合到 BACH2 基因座的情况。该分析确定了一种涉及剪接受体隔离的 BACH2 破坏机制。通过病毒基因表达分析,我们检测到 EBV BamHI W 重复序列中的稳定内含子 RNA 的表达,这些 RNA 可能是跨越重复区域的长转录本的一部分。我们还观察到 EBV vIL-10 基因座的转录物仅在霍奇金淋巴瘤细胞系 Hs 611.T 中表达,其表达与其他裂解基因脱钩。对 BCP-1 细胞中的 KSHV 病毒转录组进行评估显示,病毒免疫调节剂 K2/vIL-6、K4/vIL-8 样 vCCL1 和 K5/E2-泛素连接酶 1 的表达明显高于潜伏相关核抗原的表达。总之,这项研究揭示了这些淋巴瘤模型系统中的病毒组成,并深入了解了常见的病毒作用机制。

重要性

病毒会导致人类癌症。在淋巴瘤中,EBV(爱泼斯坦-巴尔病毒)、KSHV(卡波西肉瘤疱疹病毒)和 HTLV-1(人类 T 淋巴细胞病毒 1)是致癌的主要因素。我们使用高通量测序方法评估了病毒-宿主相互作用,该方法有助于发现新的病毒-宿主关联,并研究病毒如何改变其宿主环境。我们在一个细胞系中发现了一种以前未知的鼠白血病病毒感染。我们鉴定了细胞基因,包括细胞因子调节剂,这些基因被病毒整合所破坏,我们确定了病毒整合导致细胞基因表达失调的机制。对 BCP-1 细胞系中的 KSHV 转录组的研究揭示了高水平的免疫信号基因表达。EBV 转录组分析显示,在霍奇金淋巴瘤中 vIL-10 转录物的表达与裂解基因脱钩。这些发现说明了病毒基因调控的独特机制以及病毒介导的宿主免疫信号在淋巴瘤中的重要性。

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