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Kamath, R.

Publications and source records attributed to Kamath, R..

2 recordsLinked to original sources

A phiKMV ligase-dependent DNA repair mechanism that mitigates DNA-targeting nucleases

Bacteria employ diverse DNA-targeting systems, including restriction-modification (R-M) and CRISPR-Cas, to cleave invading bacteriophage genomes. In response, phages encode counter-defense strategies that block or mitigate DNA damage. Here, we screened a panel of Pseudomonas aeruginosa phages against native and heterologous DNA-targeting systems and identified the Phikmvvirus phage genus as broadly resistant to multiple CRISPR-Cas and R-M systems. Following CRISPR-Cas12a exposure, most protospacer sequences remained genetically unchanged. However, at an intergenic protospacer, mutations accumulated with high frequency at the Cas12a cleavage site rather than within PAM or seed sequences, resembling repair-associated indels observed after genome editing in eukaryotic cells. Genetic screens to isolate Cas12a- and EcoRI-sensitized phage mutants revealed perturbations to the phage DNA ligase. A Cas12a-sensitive mutant phage was rescued by DNA ligase expression in trans, which was also sufficient to reverse CRISPR targeting of an unrelated phage. Together, our results support a model in which phiKMV-like phages tolerate certain nucleases through ligase-dependent repair of nuclease-induced double-stranded breaks.

microbiology↗

Functional clusters for shape, texture, and motion encoding in macaque V2

Macaque primary visual cortex (V1) exhibits exquisite columnar organization, while midlevel area V4 does not. Here we investigated the functional organization and representational bases of intervening area V2 with high-density Neuropixels recordings and a variety of visual stimuli--shape, texture, drifting grating, and translational motion patches. We observed dense clusters of similarly tuned neurons often spanning [~]500 {micro}m for shape and motion stimuli, and larger for texture stimuli, consistent with a columnar structure. In terms of representational bases, V2 responses were largely explained by stimulus features based on local image statistics: shape tuning is well-modeled by a linear combination of orientation filters, and direction selectivity is stronger with surface compared to object motion, in striking contrast to V4. Overall, our results support the progression from columns to sparse clusters as neuronal representations transform from encoding local features and feature conjunctions in V1/V2 to a high-dimensional object-based code in V4. Significance StatementBy recording hundreds of neurons simultaneously across layers of macaque visual area V2, we show the first evidence of exquisite fine-scale functional clusters that encode higher-order shape, texture, and motion features, extending well beyond the classic orientation-selective columns seen in area V1. Comparative analyses with V4 further reveal distinct representational bases and organization patterns between adjacent cortical areas, offering insights into how columnar organization is preserved in early visual areas (V1 and V2) but markedly attenuated in higher-order cortex such as V4.

neuroscience↗