Skip to main content
Erschienen in: Archives of Virology 2/2020

01.02.2020 | Original Article

miR-142a-3p promotes the proliferation of porcine hemagglutinating encephalomyelitis virus by targeting Rab3a

verfasst von: Peng Fan, Jiyu Guan, Wenqi He, Xiaoling Lv, Shiyu Hu, Yungang Lan, Kui Zhao, Feng Gao, Fang Li, Gencheng Fan, Hongbin He, Zi Li

Erschienen in: Archives of Virology | Ausgabe 2/2020

Einloggen, um Zugang zu erhalten

Abstract

Porcine hemagglutinating encephalomyelitis virus (PHEV) is a typical neurotropic coronavirus that mainly invades the central nervous system (CNS) in piglets and causes vomiting and wasting disease. Emerging evidence suggests that PHEV alters microRNA (miRNA) expression profiles, and miRNA has also been postulated to be involved in its pathogenesis, but the mechanisms underlying this process have not been fully explored. In this study, we found that PHEV infection upregulates miR-142a-3p RNA expression in N2a cells and in the CNS of mice. Downregulation of miR-142a-3p by an miRNA inhibitor led to a significant repression of viral proliferation, implying that it acts as a positive regulator of PHEV proliferation. Using a dual-luciferase reporter assay, miR-142a-3p was found to bind directly bound to the 3’ untranslated region (3’UTR) of Rab3a mRNA and downregulate its expression. Knockdown of Rab3a expression by transfection with an miR-142a-3p mimic or Rab3a siRNA significantly increased PHEV replication in N2a cells. Conversely, the use of an miR-142a-3p inhibitor or overexpression of Rab3a resulted in a marked restriction of viral production at both the mRNA and protein level. Our data demonstrate that miR-142a-3p promotes PHEV proliferation by directly targeting Rab3a mRNA, and this provides new insights into the mechanisms of PHEV-related pathogenesis and virus-host interactions.
Literatur
1.
Zurück zum Zitat Dong B, Lu H, Zhao K, Liu W, Gao W, Lan Y, Zhao J, Tang B, Song D, He W, Gao F (2014) Identification and genetic characterization of porcine hemagglutinating encephalomyelitis virus from domestic piglets in China. Arch Virol 159:2329–2337CrossRef Dong B, Lu H, Zhao K, Liu W, Gao W, Lan Y, Zhao J, Tang B, Song D, He W, Gao F (2014) Identification and genetic characterization of porcine hemagglutinating encephalomyelitis virus from domestic piglets in China. Arch Virol 159:2329–2337CrossRef
2.
Zurück zum Zitat Gao W, Zhao K, Zhao C, Du C, Ren W, Song D, Lu H, Chen K, Li Z, Lan Y, Xie S, He W, Gao F (2011) Vomiting and wasting disease associated with hemagglutinating encephalomyelitis viruses infection in piglets in Jilin, China. Virol J 8:130CrossRef Gao W, Zhao K, Zhao C, Du C, Ren W, Song D, Lu H, Chen K, Li Z, Lan Y, Xie S, He W, Gao F (2011) Vomiting and wasting disease associated with hemagglutinating encephalomyelitis viruses infection in piglets in Jilin, China. Virol J 8:130CrossRef
3.
Zurück zum Zitat Roe CK, Alexander TJ (1958) A disease of nursing pigs previously unreported in Ontario. Can J Comp Med Vet Sci 22:305–307PubMedPubMedCentral Roe CK, Alexander TJ (1958) A disease of nursing pigs previously unreported in Ontario. Can J Comp Med Vet Sci 22:305–307PubMedPubMedCentral
4.
Zurück zum Zitat Greig AS, Mitchell D, Corner AH, Bannister GL, Meads EB, Julian RJ (1962) A Hemagglutinating Virus Producing Encephalomyelitis in Baby Pigs. Can J Comp Med Vet Sci 26:49–56PubMedPubMedCentral Greig AS, Mitchell D, Corner AH, Bannister GL, Meads EB, Julian RJ (1962) A Hemagglutinating Virus Producing Encephalomyelitis in Baby Pigs. Can J Comp Med Vet Sci 26:49–56PubMedPubMedCentral
5.
Zurück zum Zitat Lan Y, Zhao K, Wang G, Dong B, Zhao J, Tang B, Lu H, Gao W, Chang L, Jin Z, Gao F, He W (2013) Porcine hemagglutinating encephalomyelitis virus induces apoptosis in a porcine kidney cell line via caspase-dependent pathways. Virus Res 176:292–297CrossRef Lan Y, Zhao K, Wang G, Dong B, Zhao J, Tang B, Lu H, Gao W, Chang L, Jin Z, Gao F, He W (2013) Porcine hemagglutinating encephalomyelitis virus induces apoptosis in a porcine kidney cell line via caspase-dependent pathways. Virus Res 176:292–297CrossRef
6.
Zurück zum Zitat Alsop JE (2006) A presumptive case of vomiting and wasting disease in a swine nucleus herd. J Swine Health Prod 14:97–100 Alsop JE (2006) A presumptive case of vomiting and wasting disease in a swine nucleus herd. J Swine Health Prod 14:97–100
7.
Zurück zum Zitat Quiroga MA, Cappuccio J, Pineyro P, Basso W, More G, Kienast M, Schonfeld S, Cancer JL, Arauz S, Pintos ME, Nanni M, Machuca M, Hirano N, Perfumo CJ (2008) Hemagglutinating encephalomyelitis coronavirus infection in pigs, Argentina. Emerg Infect Dis 14:484–486CrossRef Quiroga MA, Cappuccio J, Pineyro P, Basso W, More G, Kienast M, Schonfeld S, Cancer JL, Arauz S, Pintos ME, Nanni M, Machuca M, Hirano N, Perfumo CJ (2008) Hemagglutinating encephalomyelitis coronavirus infection in pigs, Argentina. Emerg Infect Dis 14:484–486CrossRef
8.
Zurück zum Zitat Li Z, He WQ, Lan YG, Zhao K, Lv XL, Lu HJ, Ding N, Zhang J, Shi JC, Shan CJ, Gao F (2016) The evidence of porcine hemagglutinating encephalomyelitis virus induced nonsuppurative encephalitis as the cause of death in piglets. PeerJ 4:e2443CrossRef Li Z, He WQ, Lan YG, Zhao K, Lv XL, Lu HJ, Ding N, Zhang J, Shi JC, Shan CJ, Gao F (2016) The evidence of porcine hemagglutinating encephalomyelitis virus induced nonsuppurative encephalitis as the cause of death in piglets. PeerJ 4:e2443CrossRef
9.
Zurück zum Zitat Lorbach JN, Wang LY, Nolting JM, Benjamin MG, Killian ML, Zhang Y, Bowman AS (2017) Porcine hemagglutinating encephalomyelitis virus and respiratory disease in exhibition swine, Michigan, USA, 2015. Emerg Infect Dis 23:1168–1171CrossRef Lorbach JN, Wang LY, Nolting JM, Benjamin MG, Killian ML, Zhang Y, Bowman AS (2017) Porcine hemagglutinating encephalomyelitis virus and respiratory disease in exhibition swine, Michigan, USA, 2015. Emerg Infect Dis 23:1168–1171CrossRef
10.
Zurück zum Zitat Hirano N, Nomura R, Tawara T, Tohyama K (2004) Neurotropism of swine haemagglutinating encephalomyelitis virus (coronavirus) in mice depending upon host age and route of infection. J Comp Pathol 130:58–65CrossRef Hirano N, Nomura R, Tawara T, Tohyama K (2004) Neurotropism of swine haemagglutinating encephalomyelitis virus (coronavirus) in mice depending upon host age and route of infection. J Comp Pathol 130:58–65CrossRef
11.
Zurück zum Zitat Li YC, Bai WZ, Hirano N, Hayashida T, Hashikawa T (2012) Coronavirus infection of rat dorsal root ganglia: ultrastructural characterization of viral replication, transfer, and the early response of satellite cells. Virus Res 163:628–635CrossRef Li YC, Bai WZ, Hirano N, Hayashida T, Hashikawa T (2012) Coronavirus infection of rat dorsal root ganglia: ultrastructural characterization of viral replication, transfer, and the early response of satellite cells. Virus Res 163:628–635CrossRef
12.
Zurück zum Zitat Shrestha A, Carraro G, El Agha E, Mukhametshina R, Chao CM, Rizvanov A, Barreto G, Bellusci S (2015) Generation and validation of miR-142 knock out mice. Plos One 10:e0136913CrossRef Shrestha A, Carraro G, El Agha E, Mukhametshina R, Chao CM, Rizvanov A, Barreto G, Bellusci S (2015) Generation and validation of miR-142 knock out mice. Plos One 10:e0136913CrossRef
13.
Zurück zum Zitat Lai FW, Stephenson KB, Mahony J, Lichty BD (2014) Human coronavirus OC43 nucleocapsid protein binds microRNA 9 and potentiates NF-kappaB activation. J Virol 88:54–65CrossRef Lai FW, Stephenson KB, Mahony J, Lichty BD (2014) Human coronavirus OC43 nucleocapsid protein binds microRNA 9 and potentiates NF-kappaB activation. J Virol 88:54–65CrossRef
14.
Zurück zum Zitat Zhao XM, Song XJ, Bai XY, Fei NJ, Huang Y, Zhao ZM, Du Q, Zhang HL, Zhang L, Tong DW (2016) miR-27b attenuates apoptosis induced by transmissible gastroenteritis virus (TGEV) infection via targeting runt-related transcription factor 1 (RUNX1). PeerJ 4:e1635CrossRef Zhao XM, Song XJ, Bai XY, Fei NJ, Huang Y, Zhao ZM, Du Q, Zhang HL, Zhang L, Tong DW (2016) miR-27b attenuates apoptosis induced by transmissible gastroenteritis virus (TGEV) infection via targeting runt-related transcription factor 1 (RUNX1). PeerJ 4:e1635CrossRef
15.
Zurück zum Zitat Mallick B, Ghosh Z, Chakrabarti J (2009) MicroRNome analysis unravels the molecular basis of SARS infection in bronchoalveolar stem cells. Plos One 4:e1635CrossRef Mallick B, Ghosh Z, Chakrabarti J (2009) MicroRNome analysis unravels the molecular basis of SARS infection in bronchoalveolar stem cells. Plos One 4:e1635CrossRef
16.
Zurück zum Zitat Ambros V, Lee RC (2004) Identification of microRNAs and other tiny noncoding RNAs by cDNA cloning. Methods Mol Biol 265:131–158PubMed Ambros V, Lee RC (2004) Identification of microRNAs and other tiny noncoding RNAs by cDNA cloning. Methods Mol Biol 265:131–158PubMed
17.
Zurück zum Zitat Trobaugh DW, Gardner CL, Sun CQ, Haddow AD, Wang EY, Chapnik E, Mildner A, Weaver SC, Ryman KD, Klimstra WB (2014) RNA viruses can hijack vertebrate microRNAs to suppress innate immunity. Nature 506:245CrossRef Trobaugh DW, Gardner CL, Sun CQ, Haddow AD, Wang EY, Chapnik E, Mildner A, Weaver SC, Ryman KD, Klimstra WB (2014) RNA viruses can hijack vertebrate microRNAs to suppress innate immunity. Nature 506:245CrossRef
18.
Zurück zum Zitat Fan HB, Liu YJ, Wang L, Du TT, Dong M, Gao L, Meng ZZ, Jin Y, Chen Y, Deng M, Yang HT, Jing Q, Gu AH, Liu TX, Zhou Y (2014) miR-142-3p acts as an essential modulator of neutrophil development in zebrafish. Blood 124:1320–1330CrossRef Fan HB, Liu YJ, Wang L, Du TT, Dong M, Gao L, Meng ZZ, Jin Y, Chen Y, Deng M, Yang HT, Jing Q, Gu AH, Liu TX, Zhou Y (2014) miR-142-3p acts as an essential modulator of neutrophil development in zebrafish. Blood 124:1320–1330CrossRef
19.
Zurück zum Zitat Lan YG, Zhao K, Zhao JK, Lv XL, Wang GL, Lu HJ, Tang B, Li Z, Chang LZ, Jin Z, He WQ, Gao F (2014) Gene-expression patterns in the cerebral cortex of mice infected with porcine haemagglutinating encephalomyelitis virus detected using microarray. J Gen Virol 95:2192–2203CrossRef Lan YG, Zhao K, Zhao JK, Lv XL, Wang GL, Lu HJ, Tang B, Li Z, Chang LZ, Jin Z, He WQ, Gao F (2014) Gene-expression patterns in the cerebral cortex of mice infected with porcine haemagglutinating encephalomyelitis virus detected using microarray. J Gen Virol 95:2192–2203CrossRef
20.
Zurück zum Zitat Khanna M, Saini S, Shariff M, Ronsard L, Singh JK, Kumar H (2019) Data highlighting miR-155 and GAPDH correlation. Data Brief 24:103945CrossRef Khanna M, Saini S, Shariff M, Ronsard L, Singh JK, Kumar H (2019) Data highlighting miR-155 and GAPDH correlation. Data Brief 24:103945CrossRef
21.
Zurück zum Zitat Coleman WL, Bill CA, Bykhovskaia M (2007) Rab3a deletion reduces vesicle docking and transmitter release at the mouse diaphragm synapse. Neuroscience 148:1–6CrossRef Coleman WL, Bill CA, Bykhovskaia M (2007) Rab3a deletion reduces vesicle docking and transmitter release at the mouse diaphragm synapse. Neuroscience 148:1–6CrossRef
22.
Zurück zum Zitat Schulte C, Zeller T (2015) microRNA-based diagnostics and therapy in cardiovascular disease-Summing up the facts. Cardiovasc Diagn Ther 5:17–36PubMedPubMedCentral Schulte C, Zeller T (2015) microRNA-based diagnostics and therapy in cardiovascular disease-Summing up the facts. Cardiovasc Diagn Ther 5:17–36PubMedPubMedCentral
23.
Zurück zum Zitat Chen CZ, Li L, Lodish HF, Bartel DP (2004) MicroRNAs modulate hematopoietic lineage differentiation. Science 303:83–86CrossRef Chen CZ, Li L, Lodish HF, Bartel DP (2004) MicroRNAs modulate hematopoietic lineage differentiation. Science 303:83–86CrossRef
24.
Zurück zum Zitat Powdrill MH, Desrochers GF, Singaravelu R, Pezacki JP (2016) The role of microRNAs in metabolic interactions between viruses and their hosts. Curr Opin Virol 19:71–76CrossRef Powdrill MH, Desrochers GF, Singaravelu R, Pezacki JP (2016) The role of microRNAs in metabolic interactions between viruses and their hosts. Curr Opin Virol 19:71–76CrossRef
25.
Zurück zum Zitat Lv XL, Zhao K, Lan YG, Li Z, Ding N, Su JJ, Lu HJ, Song DG, Gao F, He WQ (2017) miR-21a-5p contributes to porcine hemagglutinating encephalomyelitis virus proliferation via targeting CASK-interactive protein1 in vivo and vitro. Front Microbiol 8:304PubMedPubMedCentral Lv XL, Zhao K, Lan YG, Li Z, Ding N, Su JJ, Lu HJ, Song DG, Gao F, He WQ (2017) miR-21a-5p contributes to porcine hemagglutinating encephalomyelitis virus proliferation via targeting CASK-interactive protein1 in vivo and vitro. Front Microbiol 8:304PubMedPubMedCentral
26.
Zurück zum Zitat Friedman RC, Farh KKH, Burge CB, Bartel DP (2009) Most mammalian mRNAs are conserved targets of microRNAs. Genome Res 19:92–105CrossRef Friedman RC, Farh KKH, Burge CB, Bartel DP (2009) Most mammalian mRNAs are conserved targets of microRNAs. Genome Res 19:92–105CrossRef
27.
Zurück zum Zitat Han B, Zhang Y, Zhang YH, Bai Y, Chen XF, Huang RR, Wu FF, Leng S, Chao J, Zhang JH, Hu G, Yao HH (2018) Novel insight into circular RNA HECTD1 in astrocyte activation via autophagy by targeting MIR142-TIPARP: implications for cerebral ischemic stroke. Autophagy 14:1164–1184CrossRef Han B, Zhang Y, Zhang YH, Bai Y, Chen XF, Huang RR, Wu FF, Leng S, Chao J, Zhang JH, Hu G, Yao HH (2018) Novel insight into circular RNA HECTD1 in astrocyte activation via autophagy by targeting MIR142-TIPARP: implications for cerebral ischemic stroke. Autophagy 14:1164–1184CrossRef
28.
Zurück zum Zitat Li Z, Lan YG, Zhao K, Lv XL, Ding N, Lu HJ, Zhang J, Yue HQ, Shi JC, Song DG, Gao F, He WQ (2017) miR-142-5p disrupts neuronal morphogenesis underlying porcine hemagglutinating encephalomyelitis virus infection by targeting Ulk1. Front Cell Infect Microbiol 7:155CrossRef Li Z, Lan YG, Zhao K, Lv XL, Ding N, Lu HJ, Zhang J, Yue HQ, Shi JC, Song DG, Gao F, He WQ (2017) miR-142-5p disrupts neuronal morphogenesis underlying porcine hemagglutinating encephalomyelitis virus infection by targeting Ulk1. Front Cell Infect Microbiol 7:155CrossRef
29.
Zurück zum Zitat Geppert M, Bolshakov VY, Siegelbaum SA, Takei K, De Camilli P, Hammer RE, Sudhof TC (1994) The role of Rab3A in neurotransmitter release. Nature 369:493–497CrossRef Geppert M, Bolshakov VY, Siegelbaum SA, Takei K, De Camilli P, Hammer RE, Sudhof TC (1994) The role of Rab3A in neurotransmitter release. Nature 369:493–497CrossRef
30.
Zurück zum Zitat Geppert M, Goda Y, Stevens CF, Sudhof TC (1997) The small GTP-binding protein Rab3A regulates a late step in synaptic vesicle fusion. Nature 387:810–814CrossRef Geppert M, Goda Y, Stevens CF, Sudhof TC (1997) The small GTP-binding protein Rab3A regulates a late step in synaptic vesicle fusion. Nature 387:810–814CrossRef
31.
Zurück zum Zitat Zhen Y, Stenmark H (2015) Cellular functions of Rab GTPases at a glance. J Cell Sci 128:3171–3176CrossRef Zhen Y, Stenmark H (2015) Cellular functions of Rab GTPases at a glance. J Cell Sci 128:3171–3176CrossRef
32.
Zurück zum Zitat Li YC, Bai WZ, Hirano N, Hayashida T, Taniguchi T, Sugita Y, Tohyama K, Hashikawa T (2013) Neurotropic virus tracing suggests a membranous-coating-mediated mechanism for transsynaptic communication. J Comp Neurol 521:203–212CrossRef Li YC, Bai WZ, Hirano N, Hayashida T, Taniguchi T, Sugita Y, Tohyama K, Hashikawa T (2013) Neurotropic virus tracing suggests a membranous-coating-mediated mechanism for transsynaptic communication. J Comp Neurol 521:203–212CrossRef
Metadaten
Titel
miR-142a-3p promotes the proliferation of porcine hemagglutinating encephalomyelitis virus by targeting Rab3a
verfasst von
Peng Fan
Jiyu Guan
Wenqi He
Xiaoling Lv
Shiyu Hu
Yungang Lan
Kui Zhao
Feng Gao
Fang Li
Gencheng Fan
Hongbin He
Zi Li
Publikationsdatum
01.02.2020
Verlag
Springer Vienna
Erschienen in
Archives of Virology / Ausgabe 2/2020
Print ISSN: 0304-8608
Elektronische ISSN: 1432-8798
DOI
https://doi.org/10.1007/s00705-019-04470-z

Weitere Artikel der Ausgabe 2/2020

Archives of Virology 2/2020 Zur Ausgabe

Leitlinien kompakt für die Innere Medizin

Mit medbee Pocketcards sicher entscheiden.

Seit 2022 gehört die medbee GmbH zum Springer Medizin Verlag

Update Innere Medizin

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.