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Ceschin, D.

Publications and source records attributed to Ceschin, D..

2 recordsLinked to original sources

Low fidelity DNA polymerase IV accelerates genome evolution in Pseudomonas aeruginosa

Specialized DNA polymerases are crucial for bypassing lesions and facilitating various cellular processes. Despite extensive research, the mutagenic effects of these error-prone enzymes on genomes are still not fully understood. In this study, we examined the genomic instability caused by Pol IV in the bacterial pathogen Pseudomonas aeruginosa. Pol IV mutagenesis primarily involved the misincorporation of oxidized guanine nucleotides opposite template adenine. This activity led to a distinctive mutational signature, characterized by A to C transversions occurring preferentially at AT sites flanked by a 5G and/or 3C. Furthermore, Pol IV preferentially targeted specific chromosomal locations near the replication termination region and rRNA-encoding operons. Several genes associated with virulence, motility, antibiotic resistance and chemotaxis are located in these difficult-to-replicate regions, making them hotspots for Pol IV-mutagenesis. Notably, half of the mutation events catalyzed by Pol IV effectively impaired gene function. This can be attributed to the strong bias of Pol IV for mutating specific codons with its preferred sequence contexts, leading to substitutions primarily to the unreactive Ala and Gly residues. Remarkably, mutation signatures identified for Pol IV were also present in genomes from clinical isolates of P. aeruginosa, providing compelling evidence for its role in genetic diversification during pathogen adaptation.

genomics↗

Human neural rosettes secrete bioactive extracellular vesicles enriched in neuronal and glial cellular components

AO_SCPLOWBSTRACTC_SCPLOWExtracellular vesicles (EVs) play a critical role in the development of neural cells in the central nervous system (CNS). Human neural rosettes (hNRs) are radial cell structures that assemble from induced pluripotent stem cells (hiPSCs) and recapitulate some stages of neural tube morphogenesis. Here we show that hiPSCs and hNRs secrete EVs (hiPSC-EVs and hNR-EVs) with distinct protein cargoes. Remarkably, hNR-EVs carry neuronal and glial cellular components involved in CNS development. By in silico analysis, we found hNR-EVs protein signature is expressed in vivo and in vitro during human brain development. Importantly, hNR-EVs stimulate hiPSCs to change their cellular morphology with a significant reduction in the pluripotency regulator SOX2. Interestingly, these effects were inhibited by antibodies against an unexpected neuroglial cargo of hNR-EVs: the major proteolipid protein (PLP1). These findings show that hNRs secrete bioactive EVs containing neural components and might contribute as trophic factors during human CNS development.

cell biology↗