bioRxiv Science⌕ Search

Biology subjects

Carlomagno, T.

Publications and source records attributed to Carlomagno, T..

3 recordsLinked to original sources

Localization-dependent activation of the DEAD-box ATPase Vasa by eLOTUS domains

DEAD-box RNA helicases remodel RNA structures in many cellular pathways, yet how their activity is spatially controlled in cells remains poorly understood. The Drosophila germline helicase Vasa functions in ovaries only when localized to cytoplasmic granules, a process mediated by eLOTUS-domain proteins. Here, we define the mechanism by which eLOTUS domains activate Vasa. Biochemical analyses reveal that Vasa alone is largely inactive. eLOTUS domains bind the open conformation of Vasa and promote formation of the closed RNA- and ATP-bound state by accelerating RNA engagement. This stimulation requires a positively charged intrinsically disordered sequence within eLOTUS that increases RNA association. Mutations in this element abolish Vasa stimulation while preserving binding. We demonstrate that Vasa activation is essential in vivo. Together, these findings reveal a localization-dependent mechanism for regulating the DEAD-box helicase Vasa, in which enzymatic activity is gated by a spatially restricted cofactor.

biochemistry↗

EXTENDED TUDOR-DOMAINS of the piRNA BIOGENESIS PATHWAY HAVE RNA-SPECIFIC NUCLEASE ACTIVITY

piRNAs are essential for transposon repression and protecting the germline from deleterious mutations. piRNA biogenesis comprises a primary and secondary pathway, and involves PIWI clade argonaute proteins and ancillary factors. Secondary piRNA biogenesis is tightly coupled to transposon repression. It requires processing of the 3 end of pre-piRNA during an amplification loop by an as yet unidentified endonuclease. Here, using crystallography, and biochemical assays, we discover that the Drosophila Qin protein, which is a critical member of the core amplification complex, has endonuclease activity. Qin contains five extended Tudor domains, which had been proposed to recognize methylated ligands. Instead, we show that these domains act as RNA-specific nucleases. This supports a role for Qin in the 3 end processing of Ago3-bound pre-piRNAs. Extended Tudor domains are frequent in piRNA-processing proteins, suggesting that the uncovered nuclease activity of this protein fold may be key to understanding the piRNA biogenesis.

biochemistry↗

Identification of RNA base pairs and complete assignment of nucleobase resonances by proton-detected solid-state NMR spectroscopy at 100 kHz MAS

Knowledge of RNA structure, either in isolation or in complex, is fundamental to understand the mechanism of cellular processes. Solid-state NMR (ssNMR) is applicable to high molecular-weight complexes and does not require crystallization; thus, it is well-suited to study RNA as part of large multicomponent assemblies. Recently, we solved the first structures of both RNA and an RNA-protein complex by ssNMR using conventional 13C- and 15N-detection. This approach is limited by the severe overlap of the RNA peaks together with the low sensitivity of multidimensional experiments. Here, we overcome the limitations in sensitivity and resolution by using 1H-detection at fast MAS rates. We develop experiments that allow the identification of complete nucleobase spin-systems together with their site-specific base pair pattern using sub-milligram quantities of one uniformly labelled RNA sample. These experiments provide rapid access to RNA secondary structure by ssNMR in protein-RNA complexes of any size.

biophysics↗