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猿猴免疫缺陷病毒SIVagm在非洲绿猴淋巴细胞中有效利用非CCR5进入途径:GPR15和CXCR6作为病毒共受体的潜在作用

Simian Immunodeficiency Virus SIVagm Efficiently Utilizes Non-CCR5 Entry Pathways in African Green Monkey Lymphocytes: Potential Role for GPR15 and CXCR6 as Viral Coreceptors.

作者信息

Riddick Nadeene E, Wu Fan, Matsuda Kenta, Whitted Sonya, Ourmanov Ilnour, Goldstein Simoy, Goeken Robert M, Plishka Ronald J, Buckler-White Alicia, Brenchley Jason M, Hirsch Vanessa M

机构信息

Laboratory of Molecular Microbiology, NIAID, NIH, Bethesda, Maryland, USA.

Laboratory of Molecular Microbiology, NIAID, NIH, Bethesda, Maryland, USA

出版信息

J Virol. 2015 Dec 9;90(5):2316-31. doi: 10.1128/JVI.02529-15.

Abstract

UNLABELLED

African green monkeys (AGM) are natural hosts of simian immunodeficiency virus (SIV), and infection in these animals is generally nonpathogenic, whereas infection of nonnatural hosts, such as rhesus macaques (RM), is commonly pathogenic. CCR5 has been described as the primary entry coreceptor for SIV in vivo, while human-derived CXCR6 and GPR15 also appear to be used in vitro. However, sooty mangabeys that are genetically deficient in CCR5 due to an out-of-frame deletion are infectible with SIVsmm, indicating that SIVsmm can use alternative coreceptors in vivo. In this study, we examined the CCR5 dependence of SIV strains derived from vervet AGM (SIVagmVer) and the ability of AGM-derived GPR15 and CXCR6 to serve as potential entry coreceptors. We found that SIVagmVer replicated efficiently in AGM and RM peripheral blood mononuclear cells (PBMC) in the presence of the CCR5 antagonist maraviroc, despite the fact that maraviroc was capable of blocking the CCR5-tropic strains SIVmac239, SIVsmE543-3, and simian-human immunodeficiency virus SHIV-AD8 in RM PBMC. We also found that AGM CXCR6 and AGM GPR15, to a lesser extent, supported entry of pseudotype viruses bearing SIVagm envelopes, including SIVagm transmitted/founder envelopes. Lastly, we found that CCR5, GPR15, and CXCR6 mRNAs were detected in AGM and RM memory CD4(+) T cells. These results suggest that GPR15 and CXCR6 are expressed on AGM CD4(+) T cells and are potential alternative coreceptors for SIVagm use in vivo. These data suggest that the use of non-CCR5 entry pathways may be a common feature of SIV replication in natural host species, with the potential to contribute to nonpathogenicity in these animals.

IMPORTANCE

African green monkeys (AGM) are natural hosts of SIV, and infection in these animals generally does not cause AIDS, whereas SIV-infected rhesus macaques (RM) typically develop AIDS. Although it has been reported that SIV generally uses CD4 and CCR5 to enter target cells in vivo, other molecules, such as GPR15 and CXCR6, also function as SIV coreceptors in vitro. In this study, we investigated whether SIV from vervet AGM can use non-CCR5 entry pathways, as has been observed in sooty mangabeys. We found that SIVagmVer efficiently replicated in AGM and RM peripheral blood mononuclear cells in the presence of the CCR5 antagonist maraviroc, suggesting that non-CCR5 entry pathways can support SIVagm entry. We found that AGM-derived GPR15 and CXCR6 support SIVagmVer entry in vitro and may serve as entry coreceptors for SIVagm in vivo, since their mRNAs were detected in AGM memory CD4(+) T cells, the preferred target cells of SIV.

摘要

未标记

非洲绿猴(AGM)是猿猴免疫缺陷病毒(SIV)的天然宿主,这些动物的感染通常无致病性,而恒河猴(RM)等非天然宿主的感染通常具有致病性。CCR5已被描述为体内SIV的主要进入共受体,而人源CXCR6和GPR15在体外似乎也被利用。然而,由于框外缺失而在CCR5基因上存在缺陷的乌黑白眉猴可被SIVsmm感染,这表明SIVsmm在体内可利用替代共受体。在本研究中,我们检测了源自绿猴AGM的SIV毒株对CCR5的依赖性以及AGM来源的GPR15和CXCR6作为潜在进入共受体的能力。我们发现,尽管马拉维若能够阻断RM外周血单核细胞(PBMC)中CCR5嗜性毒株SIVmac239、SIVsmE543 - 3和猿猴 - 人免疫缺陷病毒SHIV - AD8,但在存在CCR5拮抗剂马拉维若的情况下,SIVagmVer仍能在AGM和RM外周血单核细胞中高效复制。我们还发现,AGM CXCR6以及程度稍低的AGM GPR15能够支持携带SIVagm包膜的假型病毒进入,包括SIVagm传播/奠基者包膜。最后,我们发现AGM和RM记忆性CD4(+) T细胞中可检测到CCR5、GPR15和CXCR6的mRNA。这些结果表明,GPR15和CXCR6在AGM CD4(+) T细胞上表达,并且是SIVagm在体内使用的潜在替代共受体。这些数据表明,使用非CCR5进入途径可能是SIV在天然宿主物种中复制的一个共同特征,有可能导致这些动物的无致病性。

重要性

非洲绿猴(AGM)是SIV的天然宿主,这些动物的感染通常不会导致艾滋病,而感染SIV的恒河猴(RM)通常会发展为艾滋病。虽然已有报道称SIV在体内通常利用CD4和CCR5进入靶细胞,但其他分子,如GPR15和CXCR6,在体外也作为SIV共受体发挥作用。在本研究中,我们调查了源自绿猴AGM的SIV是否能像在乌黑白眉猴中观察到的那样利用非CCR5进入途径。我们发现,在存在CCR5拮抗剂马拉维若的情况下,SIVagmVer能在AGM和RM外周血单核细胞中高效复制,这表明非CCR5进入途径可支持SIVagm进入。我们发现,AGM来源的GPR15和CXCR6在体外支持SIVagmVer进入,并且可能在体内作为SIVagm进入的共受体,因为在AGM记忆性CD4(+) T细胞(SIV的首选靶细胞)中检测到了它们的mRNA。

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