Mechanisms Underlying the Promotion of Porcine deltacoronavirus Infection in ST Cells by Tight Junction Protein Occludin
ZHANG Xue-Li1, XIA Liang-Xing1, ZHANG Shuai1,*, BAO Wen-Bin1,2,*
1 College of Animal Science and Technology/Jiangsu Key Laboratory of Animal Genetic Breeding and Molecular Design, Yangzhou University, Yangzhou 225009, China; 2 College of Animal Science and Technology, International Joint Laboratory of Agriculture and Agri-Product Safety of the Ministry of Education, Yangzhou University, Yangzhou 225009, China
Abstract:Porcine deltacoronavirus (PDCoV) is an emerging enteric coronavirus that causes acute watery diarrhea, vomiting, and dehydration in neonatal piglets (Sus scrofa). PDCoV infection leads to villus atrophy, crypt hyperplasia, and disruption of the intestinal barrier, resulting in high mortality and substantial economic losses to the swine industry. Occludin, a key component of tight junctions, plays critical roles in maintaining epithelial barrier integrity and mediating signal transduction. Using swine testicular (ST) cells as a model, the effect of PDCoV infection on Occludin expression was assessed by Western blot and qRT-PCR analyses in this study. Results demonstrated that both Occludin mRNA and protein levels decreased significantly over time post-infection (P<0.01), suggesting a correlation between PDCoV infection and Occludin downregulation. To further clarify the functional role of Occludin in viral replication, Occludin overexpressed or knocked down via plasmid overexpression and short hairpin RNA (shRNA) interference, respectively. The results showed that Occludin overexpression significantly promoted PDCoV infection (P<0.0001), while Occludin knockdown significantly inhibited PDCoV infection (P<0.0001), indicating that Occludin was a critical host factor involved in PDCoV replication. Furthermore, to explore the entry pathways through which Occludin promotes viral infection, cells were treated with the clathrin inhibitor Pitstop 2 and the macropinocytosis inhibitor 5-(N-ethyl-N-isopropyl) amiloride (EIPA). Both inhibitors markedly attenuated the Occludin overexpression-mediated enhancement of PDCoV infection. Collectively, The findings elucidated that Occludin positively regulated PDCoV entry via clathrin-mediated endocytosis and macropinocytosis, providing a theoretical basis for in-depth understanding of PDCoV pathogenesis and for developing novel host factor-targeted control strategies.
[1] 鲍美美, 杨恺, 元冰. 2020. 流感病毒和冠状病毒的细胞表面结合与内化[J]. 物理学报, 69(20): 184-194. (Bao M M, Yang K, Yuan B.2020. Cell surface binding and internalization of Influenza viruses and coronaviruses[J]. Acta Physica Sinica, 69(20): 184-194.) [2] 陈建飞, 王潇博, 焦贺勋, 等. 2016. 国内首株猪德尔塔冠状病毒(Porcine deltacoronavirus)的分离鉴定[J]. 中国预防兽医学报, 38(03): 171-174. (Chen J F, Wang X B, Jiao H X, et al.2016. Isolation and identification of the first domestic strain of Porcine deltacoronavirus[J]. Chinese Journal of Preventive Veterinary Medicine, 38(03): 171-174.) [3] 毛福超, 翟崇凯, 田文静, 等. 2025. 猪德尔塔冠状病毒感染与抗感染研究进展[J]. 中国畜牧兽医, 52(03): 1281-1291. ( Mao F C, Zhai C K, Tian W J, et al.2025. Research progress on Porcine deltacoronavirus infection and anti-infection[J]. China Animal Husbandry & Veterinary Medicine, 52(03): 1281-1291.) [4] 钟玉婷, 王志斌, 张立超. 2023. 天然小分子保护炎症性肠病中肠上皮紧密连接屏障的研究进展[J]. 中国药理学通报, 39(12): 2205-2210. (Zhong Y T, Wang Z B, Zhang L C.2023. Research progress on natural small molecules protecting intestinal epithelial tight junction barrier in inflammatory bowel disease[J]. Chinese Pharmacological Bulletin, 39(12): 2205-2210.) [5] Bayati A, Kumar R, Francis V, et al.2021. SARS-CoV-2 infects cells after viral entry via clathrin-mediated endocytosis[J]. Journal of Biological Chemistry, 296: 100306. [6] Castro V, Bertrand L, Luethen M, et al.2016. Occludin controls HIV transcription in brain pericytes via regulation of SIRT-1 activation[J].FASEB Journal, 30(3): 1234-1246. [7] Coyne C B, Shen L, Turner J R, et al.2007. Coxsackievirus entry across epithelial tight junctions requires occludin and the small GTPases Rab34 and Rab5[J]. Cell Host & Microbe, 2(3): 181-192. [8] He W T, Ji X, He W, et al.2020. Genomic epidemiology, evolution, and transmission dynamics of Porcine deltacoronavirus[J]. Molecular Biology and Evolution, 37(9): 2641-2654. [9] Huan C C., Wang Y., Ni B.et al.2015. Porcine epidemic diarrhea virus uses cell-surface heparan sulfate as an attachment factor[J]. Archives of Virology 160: 1621-1628. [10] Ji W, Peng Q, Fang X, et al.2022. Structures of a Deltacoronavirus spike protein bound to porcine and human receptors[J]. Nature Communications, 13(1): 1467. [11] Li B X, Ge J W, Li Y J.2007. Porcine aminopeptidase N is a functional receptor for the PEDV coronavirus[J].Virology, 365( 1):166-172. [12] Luo X L, Guo L J, Zhang J, et al.2017. Tight junction protein occludin is a Porcine epidemic diarrhea virus entry factor[J]. Journal of Virology, 91(10): 202-217. [13] Mailly L, Baumert T F.2020. Hepatitis C virus infection and tight junction proteins: The ties that bind[J]. Biochimica et Biophysica Acta-Biomembranes, 1862(7): 183296. [14] Otani T, Furuse M.2020. Tight junction structure and function revisited[J]. Trends in Cell Biology, 30(10): 805-817. [15] Ren X, Hei Z, Ji K, et al.2025. The minute virus of canines (MVC) activates the RhoA/ROCK1/MLC2 signal transduction pathway resulting in the dissociation of tight junctions and facilitating occludin-mediated viral infection[J]. Microorganisms, 13(3): 695. [16] Song D, Zhou X, Peng Q, et al.2015. Newly emerged porcine deltacoronavirus associated with diarrhoea in swine in China: Identification, prevalence and full-length genome sequence analysis[J]. Transboundary And Emerging Diseases, 62(6): 575-580. [17] Stamatovic S M, Keep R F, Wang M M, et al.2009. Caveolae-mediated internalization of occludin and claudin-5 during CCL2-induced tight junction remodeling in brain endothelial cells[J]. Journal of Biological Chemistry, 284(28): 19053-19066. [18] Torices S, Daire L, Simon S, et al.2023. Occludin: A gatekeeper of brain Infection by HIV-1[J]. Fluids and Barriers of the CNS, 20(1): 73. [19] Vaswani C M, Varkouhi A K, Gupta S, et al.2023. Preventing occludin tight-junction disruption via inhibition of microRNA-193b-5p attenuates viral load and influenza-induced lung injury[J]. Molecular Therapy, 31(9): 2681-2701. [20] Vlasova A N, Wang Q, Jung K, et al.2020. Porcine coronaviruses. Emerging and Transboundary Animal Viruses[M].Springer Singapore, Singapore, pp. 79-110. [21] Woo P C Y, Huang Y, Lau S K P, et al.2010. Coronavirus genomics and bioinformatics analysis[J]. Viruses, 2(8): 1804-1820. [22] Xu K, Zhou Y, Mu Y, et al.2020. CD163 and pAPN double-knockout pigs are resistant to PRRSV and TGEV and exhibit decreased susceptibility to PDCoV while maintaining normal production performance[J]. ELife, 9: e57132. [23] Zhang J, Yang W, Roy S, et al.2023. Tight junction protein occludin is an internalization factor for SARS-CoV-2 infection and mediates virus cell-to-cell transmission[J]. Proceedings of the National Academy of Sciences of the USA, 120(17): e2218623120. [24] Zhang Y Y, Liang R, Wang S J, et al.2022. SARS-CoV-2 hijacks macropinocytosis to facilitate its entry and promote viral spike-mediated cell-to-cell fusion[J]. Journal of Biological Chemistry, 298(11): 102511. [25] Zhou P, Yang X L, Wang X G.et al.2020. A pneumonia outbreak associated with a new coronavirus of probable bat origin[J]. Nature, 579(7798): 270-273