bioRxiv Science⌕ Search

Biology subjects

Mercier, P.

Publications and source records attributed to Mercier, P..

2 recordsLinked to original sources

Evolutionary and biological insights into the paternally expressed Snord116-Ipw-Snord115 gene array at the imprinted Prader-Willi syndrome domain

Placental mammal-specific box C/D small nucleolar RNA (SNORD) genes within the imprinted human 15q11q13 domain have garnered increasing attention because their poorly understood roles in the brain and their potential involvement in Prader-Willi syndrome (PWS). Using two novel knockout (KO) mouse models, we demonstrate that combined deletion of Snord116 and Snord115 genes, but not the intervening Ipw ncRNA gene, leads to partially penetrant perinatal lethality (40-50%). Snord116/115-deficient neonates display postnatal growth impairment, hypoglycemia and endocrine dysregulation, including failure of the postnatal leptin surge. Despite showing no overt alterations in feeding behavior, adult Snord116/115-KO mice recapitulate most phenotypes previously reported in Snord116-KO models. RNA-seq analyses of the hypothalamus, prefrontal cortex and cerebellum reveal limited global changes. However, we observed upregulation of two of the most compelling putative RNA targets of Snord116 and Snord115 (Dgkk and Htr2c, respectively) in the postnatal hypothalamus. Nevertheless, no evidence was found to support efficient Snord115-guided ribose methylation of Htr2c mRNA. Finally, comparative analyses across 64 representative placental mammal species reveal that many PWS-associated SNORD genes, including SNORD115, display greater evolutionary changes than previously appreciated, raising questions about the functional relevance and evolutionary selective pressures that have shaped the diversification of certain family members across species. Overall, our study provides an unbiased re-assessment of the evolutionary, molecular and physiological significance of the paternally expressed Snord116-Ipw-Snord115 genomic interval and highlights the early postnatal period as a critical, yet largely underexplored, developmental window during which recently evolved SNORDs likely function as dispensable fine-tuners of gene expression.

genetics↗

R-Loop control and mitochondria genome stability requires the 5'-3' exonuclease/flap-endonuclease OEX1

Maintenance of the plant organelle genomes involves factors mostly inherited from their bacterial symbiotic ancestors. In bacteria, a major player in genome maintenance is DNA Polymerase I (Pol I), which provides a 5-3-exonuclease/flap-endonuclease activity required for multiple replication and repair functions. In plant organelles, DNA polymerases POL1A and POL1B are evolutionarily derived from DNA Pol I but lack this domain. In Arabidopsis, OEX1 and OEX2 (Organellar Exonucleases 1 and 2) represent this missing domain and are targeted to mitochondria and chloroplasts, respectively. An oex1 mutant allele shows developmental and fertility defects that correlate with the differential segregation of mitochondrial DNA (mtDNA) subgenomes generated by recombination, suggesting that OEX1 processes replication and recombination intermediates whose accumulation results in genome instability. Alternative splicing generates two OEX1 isoforms that can differentially interact with POL1A and POL1B and variably affect mtDNA repair. Recombinant OEX1 has 5-3-exonuclease and flap endonuclease activities, the latter being a key function in replication and repair. Furthermore, OEX1 has high affinity for RNA:DNA hybrids, rapidly degrading RNA in Okazaki-like structures and R-loops. Consistent with a role in suppressing R-loops, oex1 plants accumulate R-loops in highly transcribed mtDNA regions. Taken together, our results show that OEX1 plays multiple important roles in the processes required to maintain mtDNA stability.

plant biology↗