Search bioRxiv⌕ Search

Biology subjects

Aguilar, L. C.

Publications and source records attributed to Aguilar, L. C..

2 recordsLinked to original sources

A microeukaryotic PPR-DYW protein supports multisite C- and A-deamination RNA editing

RNA editing in mitochondria is vital for many eukaryotes. In plants, mitochondrial C-to-U deamination editing is catalyzed by tens to hundreds of PPR-DYW proteins, each typically dedicated to a specific site. Where retained, PPR-DYW family expanded independently in all eukaryotic groups examined here -- except in marine microeukaryotes diplonemids, which encode a single homolog despite deaminating their mitochondrial RNA at more than 100 sites. Here we characterize this unconventional deaminase, PPRD1, from Diplonema papillatum. Native affinity pulldown of the protein identified 20 predominantly sub-stoichiometric partners, including potential RNA-binding helical-repeat proteins. Among them, the divergent PolX-like protein DAPX1 consistently and reciprocally co-purified with PPRD1 in near-equal proportions. Structural modelling suggests that DAPX1 may stabilize the deaminase catalytic domain and expand its interaction interface. Silencing either PPRD1 or DAPX1 inhibited cell growth and reduced in vivo not only C-to-U, but also A-to-I deamination across five mitochondrial RNA-editing clusters encompassing 110 sites. Together, these results support a model of PPRD1 and DAPX1 forming the core of the Diplonema deamination-editing machinery, with sub-stoichiometric partners acting as specificity factors that guide accurate RNA editing with minimal off-target effects.

molecular biology↗

Protein UFMylation regulates early events of ribosomal DNA double-stranded break response

The highly repetitive and transcriptionally active ribosomal DNA (rDNA) genes are exceedingly susceptible to genotoxic stress. Induction of DNA double-strand breaks (DSBs) in rDNA repeats is associated with ATM-dependent rDNA silencing and nucleolar reorganization where rDNA is segregated into nucleolar caps. However, the regulatory events underlying this response remain elusive. Here, we identify protein UFMylation as essential for rDNA damage response in human cells. We further show the only UFM1-E3-ligase UFL1 and its binding partner DDRGK1 localize to nucleolar caps upon rDNA damage, and that UFL1 loss impairs ATM activation and rDNA transcriptional silencing, leading to reduced rDNA segregation. A first-ever analysis of nuclear and nucleolar UFMylation targets in response to DSBs induction further identified key DNA repair factors including ATM, in addition to chromatin and actin network regulators. Taken together, our data provides the first evidence of an essential role for UFMylation in orchestrating rDNA DSB repair.

molecular biology↗