Satellite RNA-derived small interfering RNA satsiR-12 targeting the 3' untranslated region of Cucumber mosaic virus triggers viral RNAs for degradation. 2011

Hui Zhu, and Cheng-Guo Duan, and Wei-Na Hou, and Quan-Sheng Du, and Dian-Qiu Lv, and Rong-Xiang Fang, and Hui-Shan Guo
State Key Laboratory of Plant Genomics and National Center for Plant Gene Research (Beijing), Institute of Microbiology, Chinese Academy of Sciences, Beijing 100101, China.

RNA silencing provides protection against RNA viruses by targeting both the helper virus and its satellite RNA (satRNA). Virus-derived small interfering RNAs (vsiRNAs) bound with Argonaute (AGO) proteins are presumed participants in the silencing process. Here, we show that a vsiRNA targeted to virus RNAs triggers the host RNA-dependent RNA polymerase 6 (RDR6)-mediated degradation of viral RNAs. We confirmed that satRNA-derived small interfering RNAs (satsiRNAs) could be associated with different AGO proteins in planta. The most frequently cloned satsiRNA, satsiR-12, was predicted to imperfectly match to Cucumber mosaic virus (CMV) RNAs in the upstream area of the 3' untranslated region (3' UTR). Moreover, an artificial satsiR-12 (asatsiR-12) mediated cleavage of a green fluorescent protein (GFP) sensor construct harboring the satsiR-12 target site. asatsiR-12 also mediated reduction of viral RNAs in 2b-deficient CMV (CMVΔ2b)-infected Nicotiana benthamiana. The reduction was not observed in CMVΔ2b-infected RDR6i plants, in which RDR6 was silenced. Following infection with 2b-containing CMV, the reduction in viral RNAs was not observed in plants of either genotype, indicating that the asatsiR-12-mediated reduction of viral RNAs in the presence of RDR6 was inhibited by the 2b protein. Our results suggest that satsiR-12 targeting the 3' UTR of CMV RNAs triggered RDR6-dependent antiviral silencing. Competition experiments with wild-type CMV RNAs and anti-satsiR-12 mutant RNA1 in the presence of 2b and satRNA demonstrate the inhibitory effect of the 2b protein on the satsiR-12-related degradation of CMV RNAs, revealing a substantial suppressor function of the 2b protein in native CMV infection. Our data provide evidence for the important biological functions of satsiRNAs in homeostatic interactions among the host, virus, and satRNA in the final outcome of viral infection.

UI MeSH Term Description Entries
D012367 RNA, Viral Ribonucleic acid that makes up the genetic material of viruses. Viral RNA
D014026 Nicotiana A plant genus of the family SOLANACEAE. Members contain NICOTINE and other biologically active chemicals; the dried leaves of Nicotiana tabacum are used for SMOKING. Tobacco Plant,Nicotiana tabacum,Plant, Tobacco,Plants, Tobacco,Tobacco Plants
D017799 Cucumovirus A genus of plant viruses of the family BROMOVIRIDAE, which infect cucurbits and solanaceous plants. Transmission occurs via aphids in a non-persistent manner, and also via seeds. The type species Cucumber mosaic virus, a CUCUMOVIRUS, should not be confused with Cucumber green mottle mosaic virus, a TOBAMOVIRUS. Cucumber mosaic virus,Cucumber mosaic viruses,Cucumoviruses
D019244 RNA, Satellite Small, linear single-stranded RNA molecules functionally acting as molecular parasites of certain RNA plant viruses. Satellite RNAs exhibit four characteristic traits: (1) they require helper viruses to replicate; (2) they are unnecessary for the replication of helper viruses; (3) they are encapsidated in the coat protein of the helper virus; (4) they have no extensive sequence homology to the helper virus. Thus they differ from SATELLITE VIRUSES which encode their own coat protein, and from the genomic RNA; ( Satellite RNA,Satellite RNAs,RNAs, Satellite
D020413 3' Untranslated Regions The sequence at the 3' end of messenger RNA that does not code for product. This region contains transcription and translation regulating sequences. 3'UTR,3' UTR,3' Untranslated Region,3' UTRs,3'UTRs,Region, 3' Untranslated,Regions, 3' Untranslated,UTR, 3',UTRs, 3',Untranslated Region, 3',Untranslated Regions, 3'
D020871 RNA Stability The extent to which an RNA molecule retains its structural integrity and resists degradation by RNASE, and base-catalyzed HYDROLYSIS, under changing in vivo or in vitro conditions. RNA Decay,mRNA Decay,mRNA Transcript Degradation,RNA Degradation,RNA Instability,mRNA Degradation,mRNA Instability,mRNA Stability,Decay, RNA,Decay, mRNA,Degradation, RNA,Degradation, mRNA,Degradation, mRNA Transcript,Instability, RNA,Instability, mRNA,Stability, RNA,Stability, mRNA,Transcript Degradation, mRNA
D034741 RNA, Small Interfering Small double-stranded, non-protein coding RNAs (21-31 nucleotides) involved in GENE SILENCING functions, especially RNA INTERFERENCE (RNAi). Endogenously, siRNAs are generated from dsRNAs (RNA, DOUBLE-STRANDED) by the same ribonuclease, Dicer, that generates miRNAs (MICRORNAS). The perfect match of the siRNAs' antisense strand to their target RNAs mediates RNAi by siRNA-guided RNA cleavage. siRNAs fall into different classes including trans-acting siRNA (tasiRNA), repeat-associated RNA (rasiRNA), small-scan RNA (scnRNA), and Piwi protein-interacting RNA (piRNA) and have different specific gene silencing functions. RNA, Scan,Repeat-Associated siRNA,Scan RNA,Small Scan RNA,Trans-Acting siRNA,siRNA,siRNA, Repeat-Associated,siRNA, Trans-Acting,Short Hairpin RNA,Short Interfering RNA,Small Hairpin RNA,Small Interfering RNA,scnRNA,shRNA,tasiRNA,Hairpin RNA, Short,Hairpin RNA, Small,Interfering RNA, Short,Interfering RNA, Small,RNA, Short Hairpin,RNA, Short Interfering,RNA, Small Hairpin,RNA, Small Scan,Repeat Associated siRNA,Scan RNA, Small,Trans Acting siRNA,siRNA, Repeat Associated,siRNA, Trans Acting

Related Publications

Hui Zhu, and Cheng-Guo Duan, and Wei-Na Hou, and Quan-Sheng Du, and Dian-Qiu Lv, and Rong-Xiang Fang, and Hui-Shan Guo
January 2015, Methods in molecular biology (Clifton, N.J.),
Hui Zhu, and Cheng-Guo Duan, and Wei-Na Hou, and Quan-Sheng Du, and Dian-Qiu Lv, and Rong-Xiang Fang, and Hui-Shan Guo
January 2017, Frontiers in microbiology,
Hui Zhu, and Cheng-Guo Duan, and Wei-Na Hou, and Quan-Sheng Du, and Dian-Qiu Lv, and Rong-Xiang Fang, and Hui-Shan Guo
January 1995, Research in virology,
Hui Zhu, and Cheng-Guo Duan, and Wei-Na Hou, and Quan-Sheng Du, and Dian-Qiu Lv, and Rong-Xiang Fang, and Hui-Shan Guo
April 2022, International journal of molecular sciences,
Hui Zhu, and Cheng-Guo Duan, and Wei-Na Hou, and Quan-Sheng Du, and Dian-Qiu Lv, and Rong-Xiang Fang, and Hui-Shan Guo
March 2009, Virology,
Hui Zhu, and Cheng-Guo Duan, and Wei-Na Hou, and Quan-Sheng Du, and Dian-Qiu Lv, and Rong-Xiang Fang, and Hui-Shan Guo
August 2010, PloS one,
Hui Zhu, and Cheng-Guo Duan, and Wei-Na Hou, and Quan-Sheng Du, and Dian-Qiu Lv, and Rong-Xiang Fang, and Hui-Shan Guo
December 1994, Virology,
Hui Zhu, and Cheng-Guo Duan, and Wei-Na Hou, and Quan-Sheng Du, and Dian-Qiu Lv, and Rong-Xiang Fang, and Hui-Shan Guo
November 1989, Virology,
Hui Zhu, and Cheng-Guo Duan, and Wei-Na Hou, and Quan-Sheng Du, and Dian-Qiu Lv, and Rong-Xiang Fang, and Hui-Shan Guo
March 2010, The Journal of general virology,
Hui Zhu, and Cheng-Guo Duan, and Wei-Na Hou, and Quan-Sheng Du, and Dian-Qiu Lv, and Rong-Xiang Fang, and Hui-Shan Guo
March 2007, Acta biochimica et biophysica Sinica,
Copied contents to your clipboard!