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Published in: Archives of Virology 5/2013

01-05-2013 | Original Article

The secretory pathway and the actomyosin motility system are required for plasmodesmatal localization of the P7-1 of rice black-streaked dwarf virus

Authors: Zongtao Sun, Shanglin Zhang, Li Xie, Qisong Zhu, Zilong Tan, Jing Bian, Liying Sun, Jianping Chen

Published in: Archives of Virology | Issue 5/2013

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Abstract

Rice black-streaked dwarf virus (RBSDV), a plant-infecting reovirus (genus Fijivirus), generally induces virus-containing tubules in infected cells. The nonstructural protein P7-1, encoded by the first open reading frame of segment 7, is involved in forming the structural matrix of these tubules. In experiments to investigate the subcellular localization of P7-1 in Nicotiana benthamiana epidermal cells, fluorescence of P7-1:eGFP was observed in the nucleus, cytoplasm and cell periphery, and in punctate points along the cell wall of plasmolyzed cells. Co-localization with plasmodesmata-located protein 1 showed that P7-1 formed the punctate points at plasmodesmata. Mutational analysis demonstrated that transmembrane domain 1 and adjacent residues were necessary and sufficient for P7-1 to form punctate structures at the cell wall in the plasmolyzed cells. Chemical drug and protein inhibitor treatments indicated that P7-1 utilized the ER-to-Golgi secretory pathway and the actomyosin motility system for its intracellular transport. The plasmodesmatal localization of RBSDV P7-1 is therefore dependent on the secretory pathway and the actomyosin motility system.
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Literature
1.
go back to reference Shikata E, Kitagawa Y (1977) Rice black-streaked dwarf virus: its properties, morphology and intracellular localization. Virology 77:826–842PubMedCrossRef Shikata E, Kitagawa Y (1977) Rice black-streaked dwarf virus: its properties, morphology and intracellular localization. Virology 77:826–842PubMedCrossRef
2.
go back to reference Uyeda I, Kimura I, Shikata E (1995) Characterization of genome structure and establishment of vector cell lines for plant reoviruses. Adv Virus Res 45:249–279PubMedCrossRef Uyeda I, Kimura I, Shikata E (1995) Characterization of genome structure and establishment of vector cell lines for plant reoviruses. Adv Virus Res 45:249–279PubMedCrossRef
3.
go back to reference Zhang H, Chen J, Lei J, Adams MJ (2001) Sequence analysis shows that a dwarfing disease on rice, wheat and maize in China is caused by Rice black-streaked dwarf virus. Eur J Plant Pathol 107:563–567CrossRef Zhang H, Chen J, Lei J, Adams MJ (2001) Sequence analysis shows that a dwarfing disease on rice, wheat and maize in China is caused by Rice black-streaked dwarf virus. Eur J Plant Pathol 107:563–567CrossRef
4.
go back to reference Isogai M, Uyeda I, Lee B (1998) Detection and assignment of proteins encoded by rice black streaked dwarf fijivirus S7, S8, S9 and S10. J Gen Virol 79:1487–1494PubMed Isogai M, Uyeda I, Lee B (1998) Detection and assignment of proteins encoded by rice black streaked dwarf fijivirus S7, S8, S9 and S10. J Gen Virol 79:1487–1494PubMed
5.
go back to reference Supyani S, Hillman BI, Suzuki N (2007) Baculovirus expression of the 11 mycoreovirus-1 genome segments and identification of the guanylyltransferase-encoding segment. J Gen Virol 88:342–350PubMedCrossRef Supyani S, Hillman BI, Suzuki N (2007) Baculovirus expression of the 11 mycoreovirus-1 genome segments and identification of the guanylyltransferase-encoding segment. J Gen Virol 88:342–350PubMedCrossRef
6.
go back to reference Liu H, Wei C, Zhong Y, Li Y (2007) Rice black-streaked dwarf virus minor core protein P8 is a nuclear dimeric protein and represses transcription in tobacco protoplasts. FEBS Lett 581:2534–2540PubMedCrossRef Liu H, Wei C, Zhong Y, Li Y (2007) Rice black-streaked dwarf virus minor core protein P8 is a nuclear dimeric protein and represses transcription in tobacco protoplasts. FEBS Lett 581:2534–2540PubMedCrossRef
7.
go back to reference Liu H, Wei C, Zhong Y, Li Y (2007) Rice black-streaked dwarf virus outer capsid protein P10 has self-interactions and forms oligomeric complexes in solution. Virus Res 127:34–42PubMedCrossRef Liu H, Wei C, Zhong Y, Li Y (2007) Rice black-streaked dwarf virus outer capsid protein P10 has self-interactions and forms oligomeric complexes in solution. Virus Res 127:34–42PubMedCrossRef
8.
go back to reference Zhang L, Wang Z, Wang X, Li D, Han C, Zhai Y, Yu J (2005) Two virus-encoded RNA silencing suppressors, P14 of Beet necrotic yellow vein virus and S6 of Rice black streak dwarf virus. Chin Sci Bull 50:305–310 Zhang L, Wang Z, Wang X, Li D, Han C, Zhai Y, Yu J (2005) Two virus-encoded RNA silencing suppressors, P14 of Beet necrotic yellow vein virus and S6 of Rice black streak dwarf virus. Chin Sci Bull 50:305–310
9.
go back to reference Shimizu T, Nakazono-Nagaoka E, Akita F, Uehara-Ichiki T, Omura T, Sasaya T (2011) Immunity to Rice black streaked dwarf virus, a plant reovirus, can be achieved in rice plants by RNA silencing against the gene for the viroplasm component protein. Virus Res 160:400–403PubMedCrossRef Shimizu T, Nakazono-Nagaoka E, Akita F, Uehara-Ichiki T, Omura T, Sasaya T (2011) Immunity to Rice black streaked dwarf virus, a plant reovirus, can be achieved in rice plants by RNA silencing against the gene for the viroplasm component protein. Virus Res 160:400–403PubMedCrossRef
10.
go back to reference Akita F, Higashiura A, Shimizu T, Pu Y, Suzuki M, Uehara-Ichiki T, Sasaya T, Kanamaru S, Arisaka F, Tsukihara T, Nakagawa A, Omura T (2012) Crystallographic analysis reveals octamerization of viroplasm matrix protein P9–1 of Rice black streaked dwarf virus. J Virol 86:746–756PubMedCrossRef Akita F, Higashiura A, Shimizu T, Pu Y, Suzuki M, Uehara-Ichiki T, Sasaya T, Kanamaru S, Arisaka F, Tsukihara T, Nakagawa A, Omura T (2012) Crystallographic analysis reveals octamerization of viroplasm matrix protein P9–1 of Rice black streaked dwarf virus. J Virol 86:746–756PubMedCrossRef
11.
go back to reference Ritzenthaler C, Hofmann C (2007) Tubule-guided movement of plant viruses. In: Waigmann E, Heinlein M (eds) Plant Cell Monogr. Springer, Berlin, pp 63–83 Ritzenthaler C, Hofmann C (2007) Tubule-guided movement of plant viruses. In: Waigmann E, Heinlein M (eds) Plant Cell Monogr. Springer, Berlin, pp 63–83
12.
go back to reference Harries PA, Schoelz JE, Nelson RS (2010) Intracellular transport of viruses and their components: utilizing the cytoskeleton and membrane highways. Mol Plant Microbe Interact 23:1381–1393PubMedCrossRef Harries PA, Schoelz JE, Nelson RS (2010) Intracellular transport of viruses and their components: utilizing the cytoskeleton and membrane highways. Mol Plant Microbe Interact 23:1381–1393PubMedCrossRef
13.
go back to reference Heinlein M (2002) The spread of tobacco mosaic virus infection: insights into the cellular mechanism of RNA transport. Cell Mol Life Sci 59:58–82PubMedCrossRef Heinlein M (2002) The spread of tobacco mosaic virus infection: insights into the cellular mechanism of RNA transport. Cell Mol Life Sci 59:58–82PubMedCrossRef
14.
go back to reference Wei T, Kikuchi A, Moriyasu Y, Suzuki N, Shimizu T, Hagiwara K, Chen H, Takahashi M, Ichiki-Uehara T, Omura T (2006) The spread of Rice dwarf virus among cells of its insect vector exploits virus-induced tubular structures. J Virol 80:8593–8602PubMedCrossRef Wei T, Kikuchi A, Moriyasu Y, Suzuki N, Shimizu T, Hagiwara K, Chen H, Takahashi M, Ichiki-Uehara T, Omura T (2006) The spread of Rice dwarf virus among cells of its insect vector exploits virus-induced tubular structures. J Virol 80:8593–8602PubMedCrossRef
15.
go back to reference Wei T, Shimizu T, Omura T (2008) Endomembranes and myosin mediate assembly into tubules of Pns10 of Rice dwarf virus and intercellular spreading of the virus in cultured insect vector cells. Virology 372:349–356PubMedCrossRef Wei T, Shimizu T, Omura T (2008) Endomembranes and myosin mediate assembly into tubules of Pns10 of Rice dwarf virus and intercellular spreading of the virus in cultured insect vector cells. Virology 372:349–356PubMedCrossRef
16.
go back to reference Ren B, Guo Y, Gao F, Zhou P, Wu F, Meng Z, Wei C, Li Y (2010) Multiple functions of rice dwarf phytoreovirus Pns10 in suppressing systemic RNA silencing. J Virol 84:12914–12923PubMedCrossRef Ren B, Guo Y, Gao F, Zhou P, Wu F, Meng Z, Wei C, Li Y (2010) Multiple functions of rice dwarf phytoreovirus Pns10 in suppressing systemic RNA silencing. J Virol 84:12914–12923PubMedCrossRef
17.
go back to reference Cao X, Zhou P, Zhang X, Zhu S, Zhong X, Xiao Q, Ding B, Li Y (2005) Identification of an RNA silencing suppressor from a plant double-stranded RNA virus. J Virol 79:13018–13027PubMedCrossRef Cao X, Zhou P, Zhang X, Zhu S, Zhong X, Xiao Q, Ding B, Li Y (2005) Identification of an RNA silencing suppressor from a plant double-stranded RNA virus. J Virol 79:13018–13027PubMedCrossRef
18.
go back to reference Lu Y, Yan FEI, Guo WEI, Zheng H, Lin LIN, Peng J, Adams MJ, Chen J (2011) Garlic virus X 11-kDa protein granules move within the cytoplasm and traffic a host protein normally found in the nucleolus. Mol Plant Pathol 12:666–676PubMedCrossRef Lu Y, Yan FEI, Guo WEI, Zheng H, Lin LIN, Peng J, Adams MJ, Chen J (2011) Garlic virus X 11-kDa protein granules move within the cytoplasm and traffic a host protein normally found in the nucleolus. Mol Plant Pathol 12:666–676PubMedCrossRef
19.
go back to reference Cserzö M, Wallin E, Simon I, von Heijne G, Elofsson A (1997) Prediction of transmembrane alpha-helices in prokaryotic membrane proteins: the dense alignment surface method. Protein Eng 10:673PubMedCrossRef Cserzö M, Wallin E, Simon I, von Heijne G, Elofsson A (1997) Prediction of transmembrane alpha-helices in prokaryotic membrane proteins: the dense alignment surface method. Protein Eng 10:673PubMedCrossRef
20.
go back to reference Hofmann K, Stoffel W (1993) TMbase-A database of membrane spanning protein segments. Biol Chem Hoppe-Seyler 374:166–171 Hofmann K, Stoffel W (1993) TMbase-A database of membrane spanning protein segments. Biol Chem Hoppe-Seyler 374:166–171
21.
go back to reference Claros M, von Heijne G (1994) TopPred II: an improved software for membrane protein structure predictions. Comput Appl Biosci 10:685–686PubMed Claros M, von Heijne G (1994) TopPred II: an improved software for membrane protein structure predictions. Comput Appl Biosci 10:685–686PubMed
22.
go back to reference Juretić D, Lee B, Trinajstić N, Williams RW (1993) Conformational preference functions for predicting helices in membrane proteins. Biopolymers 33:255–273PubMedCrossRef Juretić D, Lee B, Trinajstić N, Williams RW (1993) Conformational preference functions for predicting helices in membrane proteins. Biopolymers 33:255–273PubMedCrossRef
23.
go back to reference Tusnady GE, Simon I (2001) The HMMTOP transmembrane topology prediction server. Bioinformatics 17:849–850PubMedCrossRef Tusnady GE, Simon I (2001) The HMMTOP transmembrane topology prediction server. Bioinformatics 17:849–850PubMedCrossRef
24.
go back to reference Thomas CL, Bayer EM, Ritzenthaler C, Fernandez-Calvino L, Maule AJ (2008) Specific targeting of a plasmodesmal protein affecting cell-to-cell communication. PLoS Biol 6:e7PubMedCrossRef Thomas CL, Bayer EM, Ritzenthaler C, Fernandez-Calvino L, Maule AJ (2008) Specific targeting of a plasmodesmal protein affecting cell-to-cell communication. PLoS Biol 6:e7PubMedCrossRef
25.
go back to reference Nebenfuhr A, Ritzenthaler C, Robinson DG (2002) Brefeldin A: deciphering an enigmatic inhibitor of secretion. Plant Physiol 130:1102–1108PubMedCrossRef Nebenfuhr A, Ritzenthaler C, Robinson DG (2002) Brefeldin A: deciphering an enigmatic inhibitor of secretion. Plant Physiol 130:1102–1108PubMedCrossRef
26.
go back to reference Wright KM, Wood NT, Roberts AG, Chapman S, Boevink P, Mackenzie KM, Oparka KJ (2007) Targeting of TMV movement protein to plasmodesmata requires the actin/ER network: evidence from FRAP. Traffic 8:21–31PubMedCrossRef Wright KM, Wood NT, Roberts AG, Chapman S, Boevink P, Mackenzie KM, Oparka KJ (2007) Targeting of TMV movement protein to plasmodesmata requires the actin/ER network: evidence from FRAP. Traffic 8:21–31PubMedCrossRef
27.
go back to reference Schepetilnikov MV, Solovyev AG, Gorshkova EN, Schiemann J, Prokhnevsky AI, Dolja VV, Morozov SY (2008) Intracellular targeting of a hordeiviral membrane-spanning movement protein: sequence requirements and involvement of an unconventional mechanism. J Virol 82:1284–1293PubMedCrossRef Schepetilnikov MV, Solovyev AG, Gorshkova EN, Schiemann J, Prokhnevsky AI, Dolja VV, Morozov SY (2008) Intracellular targeting of a hordeiviral membrane-spanning movement protein: sequence requirements and involvement of an unconventional mechanism. J Virol 82:1284–1293PubMedCrossRef
28.
go back to reference Harries PA, Park JW, Sasaki N, Ballard KD, Maule AJ, Nelson RS (2009) Differing requirements for actin and myosin by plant viruses for sustained intercellular movement. Proc Natl Acad Sci USA 106:17594–17599PubMedCrossRef Harries PA, Park JW, Sasaki N, Ballard KD, Maule AJ, Nelson RS (2009) Differing requirements for actin and myosin by plant viruses for sustained intercellular movement. Proc Natl Acad Sci USA 106:17594–17599PubMedCrossRef
29.
go back to reference Peremyslov VV, Mockler TC, Filichkin SA, Fox SE, Jaiswal P, Makarova KS, Koonin EV, Dolja VV (2011) Expression, splicing, and evolution of the myosin gene family in plants. Plant Physiol 155:1191–1204PubMedCrossRef Peremyslov VV, Mockler TC, Filichkin SA, Fox SE, Jaiswal P, Makarova KS, Koonin EV, Dolja VV (2011) Expression, splicing, and evolution of the myosin gene family in plants. Plant Physiol 155:1191–1204PubMedCrossRef
30.
go back to reference Ding B, Haudenshield JS, Hull RJ, Wolf S, Beachy RN, Lucas WJ (1992) Secondary plasmodesmata are specific sites of localization of the tobacco mosaic virus movement protein in transgenic tobacco plants. Plant Cell 4:915–928PubMed Ding B, Haudenshield JS, Hull RJ, Wolf S, Beachy RN, Lucas WJ (1992) Secondary plasmodesmata are specific sites of localization of the tobacco mosaic virus movement protein in transgenic tobacco plants. Plant Cell 4:915–928PubMed
31.
go back to reference Genoves A, Pallas V, Navarro JA (2011) Contribution of topology determinants of a viral movement protein to its membrane association, intracellular traffic, and viral cell-to-cell movement. J Virol 85:7797–7809PubMedCrossRef Genoves A, Pallas V, Navarro JA (2011) Contribution of topology determinants of a viral movement protein to its membrane association, intracellular traffic, and viral cell-to-cell movement. J Virol 85:7797–7809PubMedCrossRef
32.
go back to reference Kasteel DT, Perbal MC, Boyer JC, Wellink J, Goldbach RW, Maule AJ, van Lent JW (1996) The movement proteins of cowpea mosaic virus and cauliflower mosaic virus induce tubular structures in plant and insect cells. J Gen Virol 77:2857–2864PubMedCrossRef Kasteel DT, Perbal MC, Boyer JC, Wellink J, Goldbach RW, Maule AJ, van Lent JW (1996) The movement proteins of cowpea mosaic virus and cauliflower mosaic virus induce tubular structures in plant and insect cells. J Gen Virol 77:2857–2864PubMedCrossRef
33.
go back to reference Maroniche GA, Mongelli VC, Llauger G, Alfonso V, Taboga O, del Vas M (2012) In vivo subcellular localization of Mal de Río Cuarto virus (MRCV) non-structural proteins in insect cells reveals their putative functions. Virology 430:81–89PubMedCrossRef Maroniche GA, Mongelli VC, Llauger G, Alfonso V, Taboga O, del Vas M (2012) In vivo subcellular localization of Mal de Río Cuarto virus (MRCV) non-structural proteins in insect cells reveals their putative functions. Virology 430:81–89PubMedCrossRef
34.
go back to reference Boevink P, Oparka KJ (2005) Virus-host interactions during movement processes. Plant Physiol 138:1815–1821PubMedCrossRef Boevink P, Oparka KJ (2005) Virus-host interactions during movement processes. Plant Physiol 138:1815–1821PubMedCrossRef
35.
go back to reference Ribeiro D, Goldbach R, Kormelink R (2009) Requirements for ER-arrest and sequential exit to the golgi of Tomato spotted wilt virus glycoproteins. Traffic 10:664–672PubMedCrossRef Ribeiro D, Goldbach R, Kormelink R (2009) Requirements for ER-arrest and sequential exit to the golgi of Tomato spotted wilt virus glycoproteins. Traffic 10:664–672PubMedCrossRef
36.
go back to reference Genoves A, Navarro JA, Pallas V (2010) The intra- and intercellular movement of Melon necrotic spot virus (MNSV) depends on an active secretory pathway. Mol Plant Microbe Interact 23:263–272PubMedCrossRef Genoves A, Navarro JA, Pallas V (2010) The intra- and intercellular movement of Melon necrotic spot virus (MNSV) depends on an active secretory pathway. Mol Plant Microbe Interact 23:263–272PubMedCrossRef
37.
go back to reference Cui X, Wei T, Chowda-Reddy RV, Sun G, Wang A (2010) The Tobacco etch virus P3 protein forms mobile inclusions via the early secretory pathway and traffics along actin microfilaments. Virology 397:56–63PubMedCrossRef Cui X, Wei T, Chowda-Reddy RV, Sun G, Wang A (2010) The Tobacco etch virus P3 protein forms mobile inclusions via the early secretory pathway and traffics along actin microfilaments. Virology 397:56–63PubMedCrossRef
38.
go back to reference Prokhnevsky AI, Peremyslov VV, Dolja VV (2005) Actin cytoskeleton is involved in targeting of a viral Hsp70 homolog to the cell periphery. J Virol 79:14421–14428PubMedCrossRef Prokhnevsky AI, Peremyslov VV, Dolja VV (2005) Actin cytoskeleton is involved in targeting of a viral Hsp70 homolog to the cell periphery. J Virol 79:14421–14428PubMedCrossRef
39.
go back to reference Avisar D, Prokhnevsky AI, Dolja VV (2008) Class VIII myosins are required for plasmodesmatal localization of a closterovirus Hsp70 homolog. J Virol 82:2836–2843PubMedCrossRef Avisar D, Prokhnevsky AI, Dolja VV (2008) Class VIII myosins are required for plasmodesmatal localization of a closterovirus Hsp70 homolog. J Virol 82:2836–2843PubMedCrossRef
40.
go back to reference Yuan Z, Chen H, Chen Q, Omura T, Xie L, Wu Z, Wei T (2011) The early secretory pathway and an actin-myosin VIII motility system are required for plasmodesmatal localization of the NSvc4 protein of Rice stripe virus. Virus Res 159:62–68PubMedCrossRef Yuan Z, Chen H, Chen Q, Omura T, Xie L, Wu Z, Wei T (2011) The early secretory pathway and an actin-myosin VIII motility system are required for plasmodesmatal localization of the NSvc4 protein of Rice stripe virus. Virus Res 159:62–68PubMedCrossRef
41.
go back to reference Amari K, Lerich A, Schmitt-Keichinger C, Dolja VV, Ritzenthaler C (2011) Tubule-guided cell-to-cell movement of a plant virus requires class XI myosin motors. PLoS Pathog 7:e1002327PubMedCrossRef Amari K, Lerich A, Schmitt-Keichinger C, Dolja VV, Ritzenthaler C (2011) Tubule-guided cell-to-cell movement of a plant virus requires class XI myosin motors. PLoS Pathog 7:e1002327PubMedCrossRef
Metadata
Title
The secretory pathway and the actomyosin motility system are required for plasmodesmatal localization of the P7-1 of rice black-streaked dwarf virus
Authors
Zongtao Sun
Shanglin Zhang
Li Xie
Qisong Zhu
Zilong Tan
Jing Bian
Liying Sun
Jianping Chen
Publication date
01-05-2013
Publisher
Springer Vienna
Published in
Archives of Virology / Issue 5/2013
Print ISSN: 0304-8608
Electronic ISSN: 1432-8798
DOI
https://doi.org/10.1007/s00705-012-1585-3

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