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The protein domains of the Dictyostelium microprocessor that are required for correct subcellular localization and
Janis Kruse1, Doreen Meier2, Fides Zenk2
1a Department of Life Sciences and Chemistry, Molecular Life Sciences Research Center, Ribogenetics Biochemistry Lab , Jacobs University Bremen , Bremen , Germany.
Abstract:
The maturation pathways of microRNAs (miRNAs) have been delineated for plants and several animals, belonging to the evolutionary supergroups of Archaeplastida and Opisthokonta, respectively. Recently, we reported the discovery of the microprocessor complex in Dictyostelium discoideum of the Amoebozoa supergroup. The complex is composed of the Dicer DrnB and the dsRBD (double-stranded RNA binding domain) containing protein RbdB. Both proteins localize at nucleoli, where they physically interact, and both are required for miRNA maturation. Here we show that the miRNA phenotype of a ΔdrnB gene deletion strain can be rescued by ectopic expression of a series of DrnB GFP fusion proteins, which consistently showed punctate perinucleolar localization in fluorescence microscopy. These punctate foci appear surprisingly stable, as they persist both disintegration of nucleoli and degradation of cellular nucleic acids. We observed that DrnB expression levels influence the number of microprocessor foci and alter RbdB accumulation. An investigation of DrnB variants revealed that its newly identified nuclear localization signal is necessary, but not sufficient for the perinucleolar localization. Biogenesis of miRNAs, which are RNA Pol II transcripts, is correlated with that localization. Besides its bidentate RNase III domains, DrnB contains only a dsRBD, which surprisingly is dispensable for miRNA maturation. This dsRBD can, however, functionally replace the homologous domain in RbdB. Based on the unique setup of the Dictyostelium microprocessor with a subcellular localization similar to plants, but a protein domain composition similar to animals, we propose a model for the evolutionary origin of RNase III proteins acting in miRNA maturation.
Insights
We identified the microprocessor complex in Dictyostelium, crucial for microRNA (miRNA) maturation. Its unique structure and perinucleolar localization offer insights into the evolution of miRNA biogenesis across different species.
Area of Science:
- Molecular Biology
- Evolutionary Biology
- Genetics
Background:
- MicroRNA (miRNA) maturation pathways are known in plants and animals.
- The microprocessor complex, comprising Dicer DrnB and RbdB, was recently discovered in Dictyostelium discoideum (Amoebozoa).
- Both proteins localize to nucleoli and are essential for miRNA maturation.
Purpose of the Study:
- To investigate the functional and localization characteristics of the Dictyostelium microprocessor complex.
- To explore the evolutionary origins of proteins involved in miRNA biogenesis.
Main Methods:
- Gene deletion and ectopic expression of DrnB GFP fusion proteins in Dictyostelium.
- Fluorescence microscopy to observe protein localization.
- Analysis of DrnB variants and their impact on RbdB accumulation and miRNA phenotype.
- Investigating the role of the dsRBD domain in DrnB and RbdB.
Main Results:
- Ectopic DrnB localized to stable, punctate perinucleolar foci, rescuing the miRNA phenotype.
- DrnB expression levels affected microprocessor foci number and RbdB accumulation.
- A nuclear localization signal in DrnB is necessary but not sufficient for perinucleolar localization.
- The dsRBD of DrnB is dispensable for miRNA maturation but can functionally replace RbdB's dsRBD.
Conclusions:
- The Dictyostelium microprocessor complex exhibits a unique combination of plant-like localization and animal-like domain composition.
- These findings propose a model for the evolutionary origin of RNase III proteins in miRNA maturation.
- MiRNA biogenesis is linked to the perinucleolar localization of the microprocessor complex.
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