bioRxiv Science⌕ Search

Biology subjects

Busetto, V.

Publications and source records attributed to Busetto, V..

3 recordsLinked to original sources

An Evolutionarily Conserved N-terminal Domain of RRF-3 Governs GTSF-1 Binding in Nematodes

GTSF1 is an essential activating cofactor for PIWI proteins in many metazoans. In the nematode Caenorhabditis elegans, however, GTSF-1 does not bind PIWI, but associates with the RNA-dependent RNA polymerase RRF-3, supporting endo-siRNA (26G-RNA) biogenesis. Here, we demonstrate that this rewiring is deeply conserved across nematodes. For C. briggsae and Pristionchus pacificus we show that GTSF-1 interacts with RRF-3 and is essential for 26G-RNA production and fertility. We map this interaction to an N-terminal domain of RRF-3, termed the GTSF-1 interacting domain (GID), and show that the GTSF-1 zinc finger region alone is sufficient for binding. Mutagenesis identifies critical residues mediating this interaction and reveals that GTSF-1 stability depends on RRF-3. Other RdRPs possess GID-like domains, which we propose to bind GTSF-1-related proteins. Phylogenomic and structural analyses support GTSF-1-RRF-3 interactions across all major nematode lineages and map the shift in GTSF-1 activity to the last common nematode ancestor. We propose that binding of GTSF-1 induces conformational changes in RRF-3 that facilitate ERI complex assembly and activate RdRP function, paralleling its role as a PIWI activator.

molecular biology↗

Multiscale simulations of molecular recognition by phase separated MUT-16: A scaffolding protein of Mutator foci

Phase separation of proteins plays a critical role in cellular organisation. How phase separated protein condensates underpin biological function and how condensates achieve specificity remain elusive. We investigated the phase separation of MUT-16, a scaffold protein in Mutator foci, and its role in recruiting the client protein MUT-8, a key component in RNA silencing in C. elegans. We employed a multiscale approach that combined coarse-grained (residue-level CALVADOS2 and near-atomistic Martini3) and atomistic simulations. Simulations across different resolutions provide a consistent perspective on how MUT-16 condensates recruit MUT-8, enabling the fine-tuning of chemical details while balancing the computational cost. Both coarse-grained models (CALVADOS2 and Martini3) predicted the relative phase separation propensities of MUT-16s disordered regions, which we confirmed through in vitro experiments. Simulations also identified key sequence features and residues driving phase separation while revealing differences in residue interaction propensities between CALVADOS2 and Martini3. Furthermore, Martini3 and 350 {micro}s atomistic simulations on Folding@Home of MUT-8s N-terminal prion-like domain with MUT-16 M8BR cluster highlighted the importance of cation-{pi} interactions between Tyr residues of MUT-8 and Arg residues of MUT-16 M8BR. Lys residues were observed to be more prone to interact in Martini3. Atomistic simulations revealed that the guanidinium group of Arg also engages in sp2-{pi} interactions and hydrogen bonds with the backbone of Tyr, making Arg-Tyr interactions stronger than Lys-Tyr, where these additional favourable contacts are absent. In agreement with our simulations, in vitro co-expression pulldown experiments demonstrated a progressive loss of MUT-8 recruitment following the mutation of Arg in MUT-16 M8BR to Lys or Ala, confirming the critical role of Arg in this interaction. These findings advance our understanding of MUT-16 phase separation and subsequent MUT-8 recruitment, key processes in assembling Mutator foci that drive RNA silencing in C. elegans. Statement of SignificanceIn cells proteins phase separate and form condensates. These protein condensates can play important role in bringing molecules together and facilitate biochemical processes. In this work, we used molecular dynamics simulations to understand how MUT-16 phase separates and forms the scaffold of the so-called Mutator focus. Mutator foci produce small RNA which help to regulates genes. As the scaffold of the Mutator focus, MUT-16 recruit multiple proteins which are important for the production of such small RNAs.

bioinformatics↗

MUT-7 exoribonuclease activity and localisation are mediated by an ancient domain

The MUT-7 family of 3-5 exoribonucleases is evolutionarily conserved across the animal kingdom and plays essential roles in small RNA production in the germline. Most MUT-7 homologs carry a C-terminal domain of unknown function named MUT7-C appended to the exoribonuclease domain. Our analysis shows that the MUT7-C is evolutionary ancient, as a minimal version of the domain exists as an individual protein in prokaryotes. In animals, MUT7-C has acquired an insertion that diverged during evolution, expanding its functions. C. elegans MUT-7 contains a specific insertion within MUT7-C, which allows binding to MUT-8 and, consequently, MUT-7 recruitment to germ granules. In addition, in C. elegans and human MUT-7, the MUT7-C domain contributes to RNA binding and is thereby crucial for nuclease activity. This RNA-binding function most likely represents the ancestral function of the MUT7-C domain. Overall, this study sheds light on MUT7-C and assigns two functions to this previously uncharacterised domain.

biochemistry↗