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Gursinsky, T.

Publications and source records attributed to Gursinsky, T..

2 recordsLinked to original sources

A flexible Janus head: molecular determinants of a viral protein's RNAi suppressor and capsid forming activities

Viral suppressors of RNA silencing (RNAi) expressed by plant viruses, VSRs, are exceptional proteins. Although not conserved, even within virus families, most VSRs bind small interfering RNAs, siRNAs, thereby blocking antiviral RNAi. Turnip crinkle virus, a member of the Tombusviridae family, encodes a VSR, TCV P38, which also forms the viral capsid. Biochemical studies of the purified protein revealed that the TCV P38 VSR functions as a metastable dimer that binds double-stranded (ds) RNA with high affinity via an induced-fit mechanism of both binding partners. Consistent with its role as a VSR that interferes with antiviral RNAi at various stages, P38 distinguishes between siRNAs of different lengths. Consistent with its capsid-forming function, the protein binds longer dsRNAs cooperatively. Structural data obtained from an RNA-free capsid-like icosahedral crystal and modeling of Tombusviridae capsid proteins suggest that flexible interactions between the P (protruding)-domains of P38 are important determinants for forming both the VSR dimer and the capsid structure. Studies with protein mutants confirmed this and also revealed the central role of the S (shell)- and R (RNA-binding)-domains of TCV P38 in adaptive substrate binding. Our study provides comprehensive insights into the molecular and structural properties of a versatile viral "Janus head" protein. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=85 SRC="FIGDIR/small/690650v1_ufig1.gif" ALT="Figure 1"> View larger version (25K): org.highwire.dtl.DTLVardef@185f6b1org.highwire.dtl.DTLVardef@6e773org.highwire.dtl.DTLVardef@1456981org.highwire.dtl.DTLVardef@11a63e_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗

A new level of RNA-based plant protection - dsRNAs designed from functionally characterized siRNAs highly effective against Cucumber Mosaic Virus

RNA-mediated crop protection increasingly becomes a viable alternative to agrochemicals that threaten biodiversity and human health. Pathogen-derived double-stranded dsRNAs are processed into small interfering RNAs (siRNAs), which can then induce silencing of target RNAs, e.g. viral genomes. However, with currently used dsRNAs, which largely consist of undefined regions of the target RNAs, silencing is often ineffective: processing generates siRNA pools that contain only a few functionally effective siRNAs (here called esiRNAs). Using a recently developed in vitro screen that reliably identifies esiRNAs from siRNA pools, we identified esiRNAs against Cucumber Mosaic Virus (CMV), a devastating plant pathogen. Topical application of esiRNAs to plants resulted in highly effective protection against massive CMV infection. However, optimal protection was achieved with newly designed multivalent "effective dsRNAs" (edsRNAs), which contain the sequences of several esiRNAs and are preferentially processed into precisely these esiRNAs. The esiRNA components can attack one or more target RNAs at different sites, be active in different silencing complexes and provide cross-protection against different viral variants, important properties for combating rapidly mutating pathogens such as CMV. esiRNAs and edsRNAs have thus been established as a new class of "RNA actives" that significantly increase the efficacy and specificity of RNA-mediated plant protection.

plant biology↗