
During RNA interference and related gene regulatory pathways, the endonuclease Dicer cleaves precursor RNA molecules to produce microRNAs (miRNAs) and short interfering RNAs (siRNAs). Human cells encode a single Dicer enzyme that can associate with two different double-stranded RNA (dsRNA)-binding proteins, protein activator of PKR (PACT) and trans-activation response RNA-binding protein (TRBP). However, the functional redundancy or differentiation of PACT and TRBP in miRNA and siRNA biogenesis is not well understood. Using a reconstituted system, we show here that PACT and TRBP have distinct effects on Dicer-mediated dsRNA processing. In particular, we found that PACT in complex with Dicer inhibits the processing of pre-siRNA substrates when compared with Dicer and a Dicer-TRBP complex. In addition, PACT and TRBP show non-redundant effects on the production of different-sized miRNAs (isomiRs), which in turn alter target-binding specificities. Experiments using chimeric versions of PACT and TRBP suggest that the two N-terminal RNA-binding domains of each protein confer the observed differences in dsRNA substrate recognition and processing behavior of Dicer-dsRNA-binding protein complexes. These results support the conclusion that in humans, Dicer-associated dsRNA-binding proteins are important regulatory factors that contribute both substrate and cleavage specificity during miRNA and siRNA production.
Ribonuclease III, 570, Protein Structure, RNA Processing, 1.1 Normal biological development and functioning, Bioinformatics and Computational Biology, 610, Post-Transcriptional, Small Interfering, DEAD-box RNA Helicases, Information and Computing Sciences, Genetics, Humans, RNA Processing, Post-Transcriptional, RNA, Small Interfering, Molecular Biology, RNA-Binding Proteins, Biological Sciences, Protein Structure, Tertiary, Environmental sciences, Biological sciences, MicroRNAs, Chemical sciences, Argonaute Proteins, RNA, Biochemistry and Cell Biology, Generic health relevance, Tertiary, Environmental Sciences, Biotechnology, Developmental Biology
Ribonuclease III, 570, Protein Structure, RNA Processing, 1.1 Normal biological development and functioning, Bioinformatics and Computational Biology, 610, Post-Transcriptional, Small Interfering, DEAD-box RNA Helicases, Information and Computing Sciences, Genetics, Humans, RNA Processing, Post-Transcriptional, RNA, Small Interfering, Molecular Biology, RNA-Binding Proteins, Biological Sciences, Protein Structure, Tertiary, Environmental sciences, Biological sciences, MicroRNAs, Chemical sciences, Argonaute Proteins, RNA, Biochemistry and Cell Biology, Generic health relevance, Tertiary, Environmental Sciences, Biotechnology, Developmental Biology
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