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感染卡波西肉瘤相关疱疹病毒的原代B淋巴细胞可在体外扩增,并被LANA特异性CD4 + T细胞识别。

Primary B Lymphocytes Infected with Kaposi's Sarcoma-Associated Herpesvirus Can Be Expanded In Vitro and Are Recognized by LANA-Specific CD4+ T Cells.

作者信息

Nicol Samantha M, Sabbah Shereen, Brulois Kevin F, Jung Jae U, Bell Andrew I, Hislop Andrew D

机构信息

Institute of Immunology and Immunotherapy, University of Birmingham, Birmingham, United Kingdom.

Department of Immunobiology, King's College London, London, United Kingdom.

出版信息

J Virol. 2016 Mar 28;90(8):3849-3859. doi: 10.1128/JVI.02377-15. Print 2016 Apr.

Abstract

UNLABELLED

Kaposi's sarcoma-associated herpesvirus (KSHV) has tropism for B lymphocytes, in which it establishes latency, and can also cause lymphoproliferative disorders of these cells manifesting as primary effusion lymphoma (PEL) and multicentric Castleman disease (MCD). T cell immunity is vital for the control of KSHV infection and disease; however, few models of B lymphocyte infection exist to study immune recognition of such cells. Here, we developed a model of B lymphocyte infection with KSHV in which infected tonsillar B lymphocytes were expanded by providing mitogenic stimuli and then challenged with KSHV-specific CD4(+)T cells. The infected cells expressed viral proteins found in PELs, namely, LANA and viral IRF3 (vIRF3), albeit at lower levels, with similar patterns of gene expression for the major latency, viral interleukin 6 (vIL-6), and vIRF3 transcripts. Despite low-level expression of open reading frame 50 (ORF50), transcripts for the immune evasion genes K3 and K5 were detected, with some downregulation of cell surface-expressed CD86 and ICAM. The vast majority of infected lymphocytes expressed IgM heavy chains with Igλ light chains, recapitulating the features seen in infected cells in MCD. We assessed the ability of the infected lymphocytes to be targeted by a panel of major histocompatibility complex (MHC) class II-matched CD4(+)T cells and found that LANA-specific T cells restricted to different epitopes recognized these infected cells. Given that at least some KSHV latent antigens are thought to be poor targets for CD8(+)T cells, we suggest that CD4(+)T cells are potentially important effectors for thein vivocontrol of KSHV-infected B lymphocytes.

IMPORTANCE

KSHV establishes a latent reservoir within B lymphocytes, but few models exist to study KSHV-infected B cells other than the transformed PEL cell lines, which have likely accrued mutations during the transformation process. We developed a model of KSHV-infected primary B lymphocytes that recapitulates features seen in PEL and MCD by gene expression and cell phenotype analysis, allowing the study of T cell recognition of these cells. Challenge of KSHV-infected B cells with CD4(+)T cells specific for LANA, a protein expressed in all KSHV-infected cells and malignanciesin vivo, showed that these effectors could efficiently recognize such targets. Given that the virus expresses immune evasion genes or uses proteins with intrinsic properties, such as LANA, that minimize epitope recognition by CD8(+)T cells, CD4(+)T cell immunity to KSHV may be important for maintaining the virus-host balance.

摘要

未标记

卡波西肉瘤相关疱疹病毒(KSHV)对B淋巴细胞具有嗜性,可在其中建立潜伏感染,还可导致这些细胞的淋巴增殖性疾病,表现为原发性渗出性淋巴瘤(PEL)和多中心Castleman病(MCD)。T细胞免疫对于控制KSHV感染和疾病至关重要;然而,用于研究此类细胞免疫识别的B淋巴细胞感染模型很少。在此,我们建立了一种KSHV感染B淋巴细胞的模型,通过提供促有丝分裂刺激来扩增感染的扁桃体B淋巴细胞,然后用KSHV特异性CD4(+)T细胞进行攻击。被感染的细胞表达了在PEL中发现的病毒蛋白,即LANA和病毒IRF3(vIRF3),尽管表达水平较低,主要潜伏基因、病毒白细胞介素6(vIL-6)和vIRF3转录本的基因表达模式相似。尽管开放阅读框50(ORF50)表达水平较低,但仍检测到免疫逃逸基因K3和K5的转录本,细胞表面表达的CD86和ICAM有一定程度的下调。绝大多数被感染的淋巴细胞表达IgM重链和Igλ轻链,重现了MCD中感染细胞的特征。我们评估了一组主要组织相容性复合体(MHC)II类匹配的CD4(+)T细胞靶向被感染淋巴细胞的能力,发现针对不同表位的LANA特异性T细胞能够识别这些被感染的细胞。鉴于至少一些KSHV潜伏抗原被认为是CD8(+)T细胞的不良靶点,我们认为CD4(+)T细胞可能是体内控制KSHV感染的B淋巴细胞的重要效应细胞。

重要性

KSHV在B淋巴细胞内建立潜伏库,但除了转化的PEL细胞系外,用于研究KSHV感染的B细胞的模型很少,而这些细胞系在转化过程中可能已经积累了突变。我们通过基因表达和细胞表型分析建立了一种KSHV感染的原代B淋巴细胞模型,该模型重现了PEL和MCD中的特征,从而能够研究T细胞对这些细胞的识别。用对LANA特异的CD4(+)T细胞攻击KSHV感染的B细胞,LANA是一种在所有体内KSHV感染细胞和恶性肿瘤中表达的蛋白,结果显示这些效应细胞能够有效识别此类靶点。鉴于该病毒表达免疫逃逸基因或使用具有内在特性的蛋白,如LANA,从而使CD8(+)T细胞对表位的识别降至最低,KSHV的CD4(+)T细胞免疫对于维持病毒与宿主的平衡可能很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dcbf/4810529/042aa957c139/zjv9990915250001.jpg

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