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Pasternak, C.

Publications and source records attributed to Pasternak, C..

2 recordsLinked to original sources

Dual regulatory role of IS91-encoded Orf121 in IS91 transposition

Prokaryotic insertion sequences (IS) are pivotal in the propagation of bacterial multidrug resistance, with IS91 notably linked to virulence and antibiotic resistance genes. However, the precise mechanism by which IS91 contributes to gene dissemination remains elusive. Unique among its family, IS91 features a small open reading frame (orf) upstream of the tnpA transposase gene, potentially encoding a 121-amino acid protein, orf121, which may be translationally coupled with tnpA. Using a genetic system based on the mating-out assay in Escherichia coli, we explored the role of orf121 in the in vivo transposition of IS91. Our findings indicate that the overlap between orf121 and tnpA is crucial for tnpA transcription, with both being primarily transcribed as bicistronic mRNAs from the Porf121 promoter. Additionally, the expression of orf121 (whether in cis or trans) significantly reduces the frequency of IS91 transposition and the rate of one-ended transposition. Furthermore, only the single-stranded DNA circles of IS91 intermediates can integrate into new target sequences, and Orf121 negatively influences this insertion step. In summary, orf121 acts as a negative regulator of transposition while ensuring the expression of tnpA, thus providing insights into the complex mechanisms underlying IS91-mediated gene dissemination and its potential role in antibiotic resistance propagation.

molecular biology↗

Myeloid deficiency of the intrinsic clock protein Bmal1 accelerates cognitive aging by disrupting microglial synaptic pruning

Aging is associated with loss of circadian immune responses and circadian gene transcription in peripheral macrophages. Microglia, the resident macrophages of the brain, also show diurnal rhythmicity in regulating local immune responses and synaptic remodeling. To investigate the interaction between aging and microglial circadian rhythmicity, we examined mice deficient in the core clock transcription factor, BMAL1. Aging Cd11bcre;Bmallox/lox mice demonstrated accelerated cognitive decline in association with suppressed hippocampal long-term potentiation and increases in immature dendritic spines. C1q deposition at synapses and synaptic engulfment were significantly decreased in aging Bmal1-deficient microglia, suggesting that BMAL1 plays a role in regulating synaptic pruning in aging. In addition to accelerated age-associated hippocampal deficits, Cd11bcre;Bmallox/lox mice also showed deficits in the sleep-wake cycle with increased wakefulness across light and dark phases. These results highlight an essential role of microglial BMAL1 in maintenance of synapse homeostasis in the aging brain. Significance StatementThis study demonstrates that myeloid deficiency of the circadian clock gene Bmal1 disrupts microglial synaptic pruning in the hippocampus, accelerates age-associated cognitive decline, and disrupts the sleep-wake cycle.

neuroscience↗