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Biology subjects

Donati, E.

Publications and source records attributed to Donati, E..

3 recordsLinked to original sources

PURA Syndrome-causing mutations impair PUR-domain integrity and affect P-body association

Mutations in the human PURA gene cause the neuro-developmental PURA syndrome. In contrast to several other mono-genetic disorders, almost all reported mutations in this nucleic acid binding protein result in the full disease penetrance. In this study, we observed that patient mutations across PURA impair its previously reported co-localization with processing bodies. These mutations either destroyed the folding integrity, RNA binding or dimerization of PURA. We also solved the crystal structures of the N- and C-terminal PUR domains of human PURA and combined them with molecular dynamics simulations and NMR measurements. The observed unusually high dynamics and structural promiscuity of PURA indicated that this protein is particularly susceptible to mutations impairing its structural integrity. It offers an explanation why even conservative mutations across PURA result in the full penetrance of symptoms in patients with PURA syndrome.

molecular biology↗

Backtracking of influenza polymerase upon consecutive incorporation of nucleoside analogue T1106 directly observed by high resolution cryo-electron microscopy

The broad-spectrum antiviral pseudobase T705, a fluorinated pyrazinecarboxamide, is incorporated via its triphosphate form into nascent viral RNA by viral RNA-dependent RNA polymerases. Since it mimics guanine or adenine it can act as a mutagen, whereas consecutive incorporation leads to chain termination. Here we examine the structural basis for incorporation and stalling for the case of influenza polymerase, using T1106-TP, the nucleotide form of T1105, the de-fluoro analogue of T705. We used a specially designed template that allows single T1106-MP incorporation at a defined site followed by consecutive T1106-MP incorporation and stalling four nucleotides later, as demonstrated by biochemical analysis. A high-resolution cryoEM structure of influenza A/H7N9 polymerase, stalled after transcribing this template, revealed that the entire product-template duplex has backtracked by five nucleotides. Consequently, the singly incorporated T1106-MP resides at the +1 position and forms an unexpected wobble base-pair with a U in the template. The relative stability of the canonical and wobble T1106:U base-pairs in different contexts is investigated by molecular dynamics simulations. Using a different template and influenza B polymerase we also observe stalling after double incorporation of T1106-MP and structural analysis showed again that backtracking occurs, this time by four nucleotides. These results show that, at least in early elongation, consecutive T1106-MP incorporation into the product destabilises the proximal end of the product-template duplex, promoting irreversible backtracking until a more favourable overall configuration is achieved. These results give new insight into the unusual mechanism of chain termination by pyrazinecarboxamide base analogues.

molecular biology↗

Specific telomere protection ensured by FOXO3a upon genotoxic stress and during aging

Longevity is determined by diverse signaling pathways including telomere protection and homeostasis master regulators like FOXO3a. We previously showed that the telomeric repeat binding factor 2 (TRF2) expression decreases with age in human skeletal muscle and that, surprisingly, its loss in myofibers does not trigger telomere deprotection. We reveal here that in TERF2-compromised myotubes, FOXO3a is recruited to telomeres where it acts as a protective factor against ATM-dependent DNA damage activation. Moreover, we show that FOXO3a-telomere association increases with age in human skeletal muscle biopsies. In mitotic fibroblasts, the telomere protective properties of FOXO3a are operative if the cells are treated with bleomycin. The telomere function of FOXO3a does not require its Forkhead DNA binding domain but the CR2C. Overall, these findings demonstrate a direct connection between two key longevity pathways, FOXO3a and telomere protection. This unveils an unexpected higher level of integration in the regulation of longevity signaling pathway.

cell biology↗