Differential Inductions of RNA Silencing among Encapsidated Double-Stranded RNA Mycoviruses in the White Root Rot Fungus Rosellinia necatrix

被引:28
|
作者
Yaegashi, Hajime [1 ]
Shimizu, Takeo [1 ]
Ito, Tsutae [1 ]
Kanematsu, Satoko [1 ]
机构
[1] Natl Agr & Food Res Org NARO, Apple Res Div, Inst Fruit Tree Sci, Morioka, Iwate, Japan
基金
日本学术振兴会;
关键词
PURIFIED VIRAL PARTICLES; ANTIVIRAL DEFENSE; PHYTOPATHOGENIC FUNGUS; NUCLEOTIDE-SEQUENCES; INTERFERING RNAS; VIRUS; SIRNA; SUPPRESSORS; MECHANISM; MEMBER;
D O I
10.1128/JVI.02951-15
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
RNA silencing acts as a defense mechanism against virus infection in a wide variety of organisms. Here, we investigated inductions of RNA silencing against encapsidated double-stranded RNA (dsRNA) fungal viruses (mycoviruses), including a partitivirus (RnPV1), a quadrivirus (RnQV1), a victorivirus (RnVV1), a mycoreovirus (RnMyRV3), and a megabirnavirus (RnMBV1) in the phytopathogenic fungus Rosellinia necatrix. Expression profiling of RNA silencing-related genes revealed that a dicer-like gene, an Argonaute-like gene, and two RNA-dependent RNA polymerase genes were upregulated by RnMyRV3 or RnMBV1 infection but not by other virus infections or by constitutive expression of dsRNA in R. necatrix. Massive analysis of viral small RNAs (vsRNAs) from the five mycoviruses showed that 19- to 22-nucleotide (nt) vsRNAs were predominant; however, their ability to form duplexes with 3' overhangs and the 5' nucleotide preferences of vsRNAs differed among the five mycoviruses. The abundances of 19- to 22-nt vsRNAs from RnPV1, RnQV1, RnVV1, RnMyRV3, and RnMBV1 were 6.8%, 1.2%, 0.3%, 13.0%, and 24.9%, respectively. Importantly, the vsRNA abundances and accumulation levels of viral RNA were not always correlated, and the origins of the vsRNAs were distinguishable among the five mycoviruses. These data corroborated diverse interactions between encapsidated dsRNA mycoviruses and RNA silencing. Moreover, a green fluorescent protein (GFP)-based sensor assay in R. necatrix revealed that RnMBV1 infection induced silencing of the target sensor gene (GFP gene and the partial RnMBV1 sequence), suggesting that vsRNAs from RnMBV1 activated the RNA-induced silencing complex. Overall, this study provides insights into RNA silencing against encapsidated dsRNA mycoviruses. IMPORTANCE Encapsidated dsRNA fungal viruses (mycoviruses) are believed to replicate inside their virions; therefore, there is a question of whether they induce RNA silencing. Here, we investigated inductions of RNA silencing against encapsidated dsRNA mycoviruses (a partitivirus, a quadrivirus, a victorivirus, a mycoreovirus, and a megabirnavirus) in Rosellinia necatrix. We revealed upregulation of RNA silencing-related genes in R. necatrix infected with a mycoreovirus or a megabirnavirus but not with other viruses, which was consistent with the relatively high abundances of vsRNAs from the two mycoviruses. We also showed common and different molecular features and origins of the vsRNAs from the five mycoviruses. Furthermore, we demonstrated the activation of RNA-induced silencing complex by mycoviruses in R. necatrix. Taken together, our data provide insights into an RNA silencing pathway against encapsidated dsRNA mycoviruses which is differentially induced among encapsidated dsRNA mycoviruses; that is, diverse replication strategies exist among encapsidated dsRNA mycoviruses.
引用
收藏
页码:5677 / 5692
页数:16
相关论文
共 50 条
  • [1] A mycoreovirus suppresses RNA silencing in the white root rot fungus, Rosellinia necatrix
    Yaegashi, Hajime
    Yoshikawa, Nobuyuki
    Ito, Tsutae
    Kanematsu, Satoko
    VIROLOGY, 2013, 444 (1-2) : 409 - 416
  • [2] Nucleotide Sequences of Double-Stranded RNA Segments from a Hypovirulent Strain of the White Root Rot Fungus Rosellinia necatrix: Possibility of the First Member of the Reoviridae from Fungus
    Hideki Osaki
    Chuan Zhao Wei
    Masao Arakawa
    Toru Iwanami
    Kinya Nomura
    Naoyuki Matsumoto
    Yoshihiro Ohtsu
    Virus Genes, 2002, 25 : 101 - 107
  • [3] Nucleotide sequences of double-stranded RNA segments from a hypovirulent strain of the white root rot fungus Rosellinia necatrix:: Possibility of the first member of the Reoviridae from fungus
    Osaki, H
    Wei, CZ
    Arakawa, M
    Iwanami, T
    Nomura, K
    Matsumoto, N
    Ohtsu, Y
    VIRUS GENES, 2002, 25 (01) : 101 - 107
  • [4] Appearance of mycovirus-like double-stranded RNAs in the white root rot fungus, Rosellinia necatrix, in an apple orchard
    Yaegashi, Hajime
    Nakamura, Hitoshi
    Sawahata, Takuo
    Sasaki, Atsuko
    Iwanami, Yasuhiko
    Ito, Tsutae
    Kanematsu, Satoko
    FEMS MICROBIOLOGY ECOLOGY, 2013, 83 (01) : 49 - 62
  • [5] A mycoreovirus suppresses RNA silencing in the white root rot fungus, Rosellinia necatrix (vol 444, pg 409, 2013)
    Yaegashi, Hajime
    Yoshikawa, Nobuyuki
    Ito, Tsutae
    Kanematsu, Satoko
    VIROLOGY, 2013, 447 (1-2) : 338 - 338
  • [6] Diversity and vertical transmission of double-stranded RNA elements in root rot pathogens of trees, Helicobasidium mompa and Rosellinia necatrix
    Ikeda, K
    Nakamura, H
    Arakawa, M
    Matsumoto, N
    MYCOLOGICAL RESEARCH, 2004, 108 : 626 - 634
  • [7] A Novel Bipartite Double-Stranded RNA Mycovirus from the White Root Rot Fungus Rosellinia necatrix: Molecular and Biological Characterization, Taxonomic Considerations, and Potential for Biological Control
    Chiba, Sotaro
    Salaipeth, Lakha
    Lin, Yu-Hsin
    Sasaki, Atsuko
    Kanematsu, Satoko
    Suzuki, Nobuhiro
    JOURNAL OF VIROLOGY, 2009, 83 (24) : 12801 - 12812
  • [8] Viruses of the White Root Rot Fungus, Rosellinia necatrix
    Kondo, Hideki
    Kanematsu, Satoko
    Suzuki, Nobuhiro
    ADVANCES IN VIRUS RESEARCH, VOL 86: MYCOVIRUSES, 2013, 86 : 177 - 214
  • [9] Rosellinia compacta, a new species similar to the white root rot fungus Rosellinia necatrix
    Takemoto, Shuhei
    Nakamura, Hitoshi
    Sasaki, Atsuko
    Shimane, Takanori
    MYCOLOGIA, 2009, 101 (01) : 84 - 94
  • [10] Structure and assembly of double-stranded RNA mycoviruses
    Mata, Carlos P.
    Rodriguez, Javier M.
    Suzuki, Nobuhiro
    Caston, Jose R.
    VIRUS ASSEMBLY AND EXIT PATHWAYS, 2020, 108 : 213 - 247