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酸性磷酸酶 2(ACP2)是流感病毒进入过程中膜融合所必需的。

Acid phosphatase 2 (ACP2) is required for membrane fusion during influenza virus entry.

机构信息

Respiratory Viruses Research Laboratory, Discovery Biology Department, Institut Pasteur Korea, Seongnam, Gyeonggi, Republic of Korea.

出版信息

Sci Rep. 2017 Mar 8;7:43893. doi: 10.1038/srep43893.

Abstract

Influenza viruses exploit host factors to successfully replicate in infected cells. Using small interfering RNA (siRNA) technology, we identified six human genes required for influenza A virus (IAV) replication. Here we focused on the role of acid phosphatase 2 (ACP2), as its knockdown showed the greatest inhibition of IAV replication. In IAV-infected cells, depletion of ACP2 resulted in a significant reduction in the expression of viral proteins and mRNA, and led to the attenuation of virus multi-cycle growth. ACP2 knockdown also decreased replication of seasonal influenza A and B viruses and avian IAVs of the H7 subtype. Interestingly, ACP2 depletion had no effect on the replication of Ebola or hepatitis C virus. Because ACP2 is known to be a lysosomal acid phosphatase, we assessed the role of ACP2 in influenza virus entry. While neither binding of the viral particle to the cell surface nor endosomal acidification was affected in ACP2-depleted cells, fusion of the endosomal and viral membranes was impaired. As a result, downstream steps in viral entry were blocked, including nucleocapsid uncoating and nuclear import of viral ribonucleoproteins. Our results established ACP2 as a necessary host factor for regulating the fusion step of influenza virus entry.

摘要

流感病毒利用宿主因子在感染细胞中成功复制。我们使用小干扰 RNA (siRNA) 技术鉴定了六个流感 A 病毒 (IAV) 复制所需的人类基因。在这里,我们专注于酸性磷酸酶 2 (ACP2) 的作用,因为敲低 ACP2 显示出对 IAV 复制的最大抑制作用。在 IAV 感染的细胞中,ACP2 的耗竭导致病毒蛋白和 mRNA 的表达显著减少,并导致病毒多轮生长的衰减。ACP2 敲低也降低了季节性流感 A 和 B 病毒以及 H7 亚型的禽源 IAV 的复制。有趣的是,ACP2 耗竭对埃博拉病毒或丙型肝炎病毒的复制没有影响。因为 ACP2 已知是溶酶体酸性磷酸酶,我们评估了 ACP2 在流感病毒进入中的作用。虽然在 ACP2 耗尽的细胞中,病毒颗粒与细胞表面的结合或内体酸化都没有受到影响,但内体和病毒膜的融合受到了损害。结果,病毒进入的下游步骤被阻断,包括核衣壳脱壳和病毒核糖核蛋白的核内输入。我们的研究结果确立了 ACP2 作为调节流感病毒进入融合步骤的必需宿主因子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac0e/5341025/f2c97e5d4642/srep43893-f1.jpg

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