利用细胞电阻抗研究 TIM-1 和 CD300a 在寨卡病毒感染中的作用

Biosensors Pub Date : 2024-07-25 DOI:10.3390/bios14080362
Merel Oeyen, Clément J. F. Heymann, Maarten Jacquemyn, Dirk Daelemans, Dominique Schols
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引用次数: 0

摘要

正黄病毒对全球公共卫生构成重大威胁,目前尚无抗病毒治疗方法。众所周知,寨卡病毒(ZIKV)与许多其他病毒一样,会通过磷脂酰丝氨酸(PS)受体(如 T 细胞免疫球蛋白粘蛋白结构域蛋白 1 (TIM-1))增强其进入人体的能力。在本研究中,我们首次利用基于细胞的电阻抗(CEI)生物传感技术证明,ZIKV 的进入也会因另一种 PS 受体 CD300a 的表达而增强。此外,抑制未成熟单核细胞衍生树突状细胞中的 CD300a 可以部分但显著地抑制 ZIKV 复制。我们之前已经证明 CEI 是实时研究正交病毒感染的有用工具,现在我们利用这一技术来确定这些 PS 受体如何影响体外 ZIKV 感染的动力学。结果表明,无论是在抗感染的 HEK293T 细胞中过表达 TIM-1,还是在易感的 A549 细胞中部分敲除 TIM-1 后,ZIKV 的进入对 TIM-1 表达的微小变化都非常敏感。这些结果通过病毒拷贝数和病毒传染性的量化得到了证实,表明 CEI 非常适合研究和比较病毒与宿主的相互作用。总之,本文介绍的结果证明了靶向这一通用病毒进入途径的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Role of TIM-1 and CD300a in Zika Virus Infection Investigated with Cell-Based Electrical Impedance
Orthoflaviviruses cause a major threat to global public health, and no antiviral treatment is available yet. Zika virus (ZIKV) entry, together with many other viruses, is known to be enhanced by phosphatidylserine (PS) receptors such as T-cell immunoglobulin mucin domain protein 1 (TIM-1). In this study, we demonstrate for the first time, using cell-based electrical impedance (CEI) biosensing, that ZIKV entry is also enhanced by expression of CD300a, another PS receptor. Furthermore, inhibiting CD300a in immature monocyte-derived dendritic cells partially but significantly inhibits ZIKV replication. As we have previously demonstrated that CEI is a useful tool to study Orthoflavivirus infection in real time, we now use this technology to determine how these PS receptors influence the kinetics of in vitro ZIKV infection. Results show that ZIKV entry is highly sensitive to minor changes in TIM-1 expression, both after overexpression of TIM-1 in infection-resistant HEK293T cells, as well as after partial knockout of TIM-1 in susceptible A549 cells. These results are confirmed by quantification of viral copy number and viral infectivity, demonstrating that CEI is highly suited to study and compare virus-host interactions. Overall, the results presented here demonstrate the potential of targeting this universal viral entry pathway.
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