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猪萨波病毒通过激活RhoA/ROCK/MLC信号通路诱导紧密连接解离。

Porcine Sapovirus-Induced Tight Junction Dissociation via Activation of RhoA/ROCK/MLC Signaling Pathway.

作者信息

Sharif Muhammad, Baek Yeong-Bin, Naveed Ahsan, Stalin Nattan, Kang Mun-Il, Park Sang-Ik, Soliman Mahmoud, Cho Kyoung-Oh

机构信息

Laboratory of Veterinary Pathology, College of Veterinary Medicine, Chonnam National University, Gwangju 61186, Republic of Korea.

Laboratory of Veterinary Pathology, College of Veterinary Medicine, Chonnam National University, Gwangju 61186, Republic of Korea

出版信息

J Virol. 2021 May 10;95(11). doi: 10.1128/JVI.00051-21. Epub 2021 Mar 10.

Abstract

Tight junctions (TJs) are a major barrier and also an important portal of entry for different pathogens. Porcine sapovirus (PSaV) induces early disruption of the TJ integrity of polarized LLC-PK cells, allowing it to bind to the buried occludin co-receptors hidden beneath the TJs on the basolateral surface. However, the signaling pathways involved in the PSaV-induced TJ dissociation are not yet known. Here, we found that the RhoA/ROCK/MLC signaling pathway was activated in polarized LLC-PK cells during the early infection of PSaV Cowden strain in the presence of bile acid. Specific inhibitors of RhoA, ROCK, and MLC restored PSaV-induced reduction of transepithelial resistance, increase of paracellular flux, intracellular translocation of occludin, and lateral membrane lipid diffusion. Moreover, each inhibitor significantly reduced PSaV replication, as evidenced by a reduction in viral protein synthesis, genome copy number, and progeny viruses. The PKC/MLCK and RhoA/ROCK/MYPT signaling pathways, known to dissociate TJs, were not activated during early PSaV infection. Among the above signaling pathways, the RhoA/ROCK/MLC signaling pathway was only activated by PSaV in the absence of bile acid, and specific inhibitors of this signaling pathway restored early TJ dissociation. Our findings demonstrate that PSaV binding to cell surface receptors activates the RhoA/ROCK/MLC signaling pathway, which in turn disrupts TJ integrity via the contraction of the actomyosin ring. Our study contributes to understanding how PSaV enters the cells and will aid in developing efficient and affordable therapies against PSaV and other calicivirus infections.Porcine sapovirus (PSaV), one of the most important enteric pathogens, is known to disrupt tight junction (TJ) integrity to expose its buried co-receptor occludin in polarized LLC-PK cells. However, the cellular signaling pathways that facilitate TJ dissociation are not yet completely understood. Here, we demonstrate that early infection of PSaV in polarized LLC-PK cells in either the presence or absence of bile acids activates the RhoA/ROCK/MLC signaling pathway, whose inhibitors reverse the early PSaV infection-induced early dissociation of TJs and reduce PSaV replication. However, early PSaV infection did not activate the PKC/MLCK and RhoA/ROCK/MYPT signaling pathways, which are also known to dissociate TJs. This study provides a better understanding of the mechanism involved in early PSaV infection-induced disruption of TJs, which is important for controlling or preventing PSaV and other calicivirus infections.

摘要

紧密连接(TJs)是一道主要屏障,也是不同病原体进入细胞的重要门户。猪萨波病毒(PSaV)可诱导极化的LLC-PK细胞的紧密连接完整性早期破坏,使其能够结合到隐藏在基底外侧表面紧密连接下方的封闭蛋白共受体。然而,PSaV诱导紧密连接解离所涉及的信号通路尚不清楚。在此,我们发现,在胆汁酸存在的情况下,PSaV考登株早期感染极化的LLC-PK细胞期间,RhoA/ROCK/MLC信号通路被激活。RhoA、ROCK和MLC的特异性抑制剂恢复了PSaV诱导的跨上皮电阻降低、细胞旁通量增加、封闭蛋白的细胞内易位以及侧膜脂质扩散。此外,每种抑制剂均显著降低了PSaV复制,病毒蛋白合成、基因组拷贝数和子代病毒减少证明了这一点。已知可使紧密连接解离的PKC/MLCK和RhoA/ROCK/MYPT信号通路在PSaV早期感染期间未被激活。在上述信号通路中,RhoA/ROCK/MLC信号通路仅在无胆汁酸的情况下被PSaV激活,该信号通路的特异性抑制剂恢复了紧密连接的早期解离。我们的研究结果表明,PSaV与细胞表面受体结合激活了RhoA/ROCK/MLC信号通路,进而通过肌动球蛋白环的收缩破坏紧密连接完整性。我们的研究有助于理解PSaV如何进入细胞,并将有助于开发针对PSaV和其他杯状病毒感染的高效且经济实惠的治疗方法。猪萨波病毒(PSaV)是最重要的肠道病原体之一,已知其会破坏极化的LLC-PK细胞中的紧密连接(TJ)完整性,以暴露其隐藏的共受体封闭蛋白。然而,促进紧密连接解离的细胞信号通路尚未完全了解。在此,我们证明,无论有无胆汁酸,PSaV在极化的LLC-PK细胞中的早期感染都会激活RhoA/ROCK/MLC信号通路,其抑制剂可逆转PSaV早期感染诱导的紧密连接早期解离并减少PSaV复制。然而,PSaV早期感染并未激活已知也可使紧密连接解离的PKC/MLCK和RhoA/ROCK/MYPT信号通路。这项研究有助于更好地理解PSaV早期感染诱导紧密连接破坏所涉及的机制,这对于控制或预防PSaV和其他杯状病毒感染很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/95ac/8139687/8e10f4aa8588/JVI.00051-21-f0001.jpg

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