Co-opted cytosolic proteins form condensate substructures within membranous replication organelles of a positive-strand RNA virus

被引:9
|
作者
Lin, Wenwu [1 ]
Nagy, Peter D. [1 ]
机构
[1] Univ Kentucky, Dept Plant Pathol, Lexington, KY 40543 USA
基金
美国国家科学基金会;
关键词
biomolecular condensate; plant RNA virus; virus replication; virus-host interaction; BUSHY-STUNT-VIRUS; INTRINSICALLY DISORDERED PROTEIN; VIRAL REPLICATION; P-33; REPLICATION; PHASE-SEPARATION; GLYCOLYTIC-ENZYMES; CONTACT SITES; LIQUID-PHASE; HOST FACTORS; IN-VITRO;
D O I
10.1111/nph.19691
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Positive-strand RNA viruses co-opt organellar membranes for biogenesis of viral replication organelles (VROs). Tombusviruses also co-opt pro-viral cytosolic proteins to VROs. It is currently not known what type of molecular organization keeps co-opted proteins sequestered within membranous VROs. In this study, we employed tomato bushy stunt virus (TBSV) and carnation Italian ringspot virus (CIRV) - Nicotiana benthamiana pathosystems to identify biomolecular condensate formation in VROs. We show that TBSV p33 and the CIRV p36 replication proteins sequester glycolytic and fermentation enzymes in unique condensate substructures associated with membranous VROs. We find that p33 and p36 form droplets in vitro driven by intrinsically disordered region. The replication protein organizes partitioning of co-opted host proteins into droplets. VRO-associated condensates are critical for local adenosine triphosphate production to support energy for virus replication. We find that co-opted endoplasmic reticulum membranes and actin filaments form meshworks within and around VRO condensates, contributing to unique composition and structure. We propose that p33/p36 organize liquid-liquid phase separation of co-opted concentrated host proteins in condensate substructures within membranous VROs. Overall, we demonstrate that subverted membranes and condensate substructures co-exist and are critical for VRO functions. The replication proteins induce and connect the two substructures within VROs.
引用
收藏
页码:1917 / 1935
页数:19
相关论文
共 42 条
  • [31] A positive-strand RNA virus uses alternative protein-protein interactions within a viral protease/cofactor complex to switch between RNA replication and virion morphogenesis
    Dubrau, Danilo
    Tortorici, M. Alejandra
    Rey, Felix A.
    Tautz, Norbert
    PLOS PATHOGENS, 2017, 13 (02)
  • [32] Membrane synthesis, specific lipid requirements, and localized lipid composition changes associated with a positive-strand RNA virus RNA, replication protein
    Lee, WM
    Ahlquist, P
    JOURNAL OF VIROLOGY, 2003, 77 (23) : 12819 - 12828
  • [33] Yeast screens for host factors in positive-strand RNA virus replication based on a library of temperature-sensitive mutants
    Nawaz-ul-Rehman, Muhammad Shah
    Prasanth, K. Reddisiva
    Baker, Jannine
    Nagy, Peter D.
    METHODS, 2013, 59 (02) : 207 - 216
  • [34] Enrichment of Phosphatidylethanolamine in Viral Replication Compartments via Co-opting the Endosomal Rab5 Small GTPase by a Positive-Strand RNA Virus
    Xu, Kai
    Nagy, Peter D.
    PLOS BIOLOGY, 2016, 14 (10)
  • [35] Antiviral Innate Immune Response Interferes with the Formation of Replication-Associated Membrane Structures Induced by a Positive-Strand RNA Virus
    Oudshoorn, Diede
    van der Hoeven, Barbara
    Limpens, Ronald W. A. L.
    Beugeling, Corrine
    Snijder, Eric J.
    Barcena, Montserrat
    Kikkert, Marjolein
    MBIO, 2016, 7 (06):
  • [36] The role of co-opted ESCRT proteins and lipid factors in protection of tombusviral double-stranded RNA replication intermediate against reconstituted RNAi in yeast
    Kovalev, Nikolay
    Inaba, Jun-ichi
    Li, Zhenghe
    Nagy, Peter D.
    PLOS PATHOGENS, 2017, 13 (07)
  • [37] RIG-I and MDA-5 Detection of Viral RNA-dependent RNA Polymerase Activity Restricts Positive-Strand RNA Virus Replication
    Nikonov, Andrei
    Moelder, Tarmo
    Sikut, Rein
    Kiiver, Kaja
    Maennik, Andres
    Toots, Urve
    Lulla, Aleksei
    Lulla, Valeria
    Utt, Age
    Merits, Andres
    Ustav, Mart
    PLOS PATHOGENS, 2013, 9 (09)
  • [38] Rubella virus RNA replication is cis-preferential and synthesis of negative- and positive-strand RNAs is regulated by the processing of nonstructural protein
    Liang, YY
    Gillam, S
    VIROLOGY, 2001, 282 (02) : 307 - 319
  • [39] THE REQUIREMENT FOR A 5' STEM-LOOP STRUCTURE IN BROME MOSAIC-VIRUS REPLICATION SUPPORTS A NEW MODEL FOR VIRAL POSITIVE-STRAND RNA INITIATION
    POGUE, GP
    HALL, TC
    JOURNAL OF VIROLOGY, 1992, 66 (02) : 674 - 684
  • [40] Replication-coupled packaging mechanism in positive-strand RNA viruses:: Synchronized coexpression of functional multigenome RNA components of an animal and a plant virus in Nicotiana benthamiana cells by agroinfiltration
    Annamalai, Padmanaban
    Rofail, Fady
    DeMason, Darleen A.
    Rao, A. L. N.
    JOURNAL OF VIROLOGY, 2008, 82 (03) : 1484 - 1495