Literature DB >> 9836747

Isolation of an RNA-directed RNA polymerase-specific cDNA clone from tomato.

W Schiebel1, T Pélissier, L Riedel, S Thalmeir, R Schiebel, D Kempe, F Lottspeich, H L Sänger, M Wassenegger.   

Abstract

A 3600-bp RNA-directed RNA polymerase (RdRP)-specific cDNA comprising an open reading frame (ORF) of 1114 amino acids was isolated from tomato. The putative protein encoded by this ORF does not share homology with any characterized proteins. Antibodies that were raised against synthetic peptides whose sequences have been deduced from the ORF were shown to specifically detect the 127-kD tomato RdRP protein. The immunoresponse to the antibodies correlated with the enzymatic activity profile of the RdRP after chromatography on Q-, poly(A)-, and poly(U)-Sepharose, hydroxyapatite, and Sephadex G-200 columns. DNA gel blot analysis revealed a single copy of the RdRP gene in tomato. RdRP homologs from petunia, Arabidopsis, tobacco, and wheat were identified by using polymerase chain reaction. A sequence comparison indicated that sequences homologous to RdRP are also present in the yeast Schizosaccharomyces pombe and in the nematode Caenorhabditis elegans. The previously described induction of RdRP activity upon viroid infection is shown to be correlated with an increased steady state level of the corresponding mRNA. The possible involvement of this heretofore functionally elusive plant RNA polymerase in homology-dependent gene silencing is discussed.

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Year:  1998        PMID: 9836747      PMCID: PMC143969          DOI: 10.1105/tpc.10.12.2087

Source DB:  PubMed          Journal:  Plant Cell        ISSN: 1040-4651            Impact factor:   11.277


  50 in total

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  81 in total

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8.  Expression of a yeast RNase III gene in transgenic tobacco silences host nitrite reductase genes.

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9.  Release from post-transcriptional gene silencing by cell proliferation in transgenic tobacco plants: possible mechanism for noninheritance of the silencing.

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10.  Comparative genomics and evolution of proteins involved in RNA metabolism.

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