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Kavagutti, V. S.

Publications and source records attributed to Kavagutti, V. S..

2 recordsLinked to original sources

Heliorhodopsin evolution is driven by photosensory promiscuity in monoderms

The ability to harness Suns electromagnetic radiation by channeling it into high-energy phosphate bonds empowered microorganisms to tap into a cheap and inexhaustible source of energy. Lifes billion-years history of metabolic innovations led to the emergence of only two biological complexes capable of harvesting light: one based on rhodopsins and the other on (bacterio)chlorophyll. Rhodopsins encompass the most diverse and abundant photoactive proteins on Earth and were until recently canonically split between type-1 (microbial rhodopsins) and type-2 (animal rhodopsins) families. Unexpectedly, the long-lived type-1/type-2 dichotomy was recently amended through the discovery of heliorhodopsins (HeRs) (Pushkarev et al. 2018), a novel and exotic family of rhodopsins (i.e. type-3) that evaded recognition in our current homology-driven scrutiny of lifes genomic milieu. Here, we bring to resolution the debated monoderm/diderm occurrence patterns by conclusively showing that HeR distribution is restricted to monoderms. Furthermore, through investigating protein domain fusions, contextual genomic information, and gene co-expression data we show that HeRs likely function as generalised light-dependent switches involved in the mitigation of light-induced oxidative stress and metabolic circuitry regulation. We reason that HeRs ability to function as sensory rhodopsins is corroborated by their photocycle dynamics (Pushkarev et al. 2018) and that their presence and function in monoderms is likely connected to the increased sensitivity to light-induced damage of these organisms (Maclean et al. 2009).

microbiology

Phage-centric ecological interactions in aquatic ecosystems revealed through ultra-deep metagenomics

The persistent inertia in the ability to culture environmentally abundant microbes from aquatic ecosystems represents an obstacle in disentangling the complex web of ecological interactions spun by a diverse assortment of participants (pro- and eukaryotes and their viruses). In aquatic microbial communities, the numerically most abundant actors, the viruses, remain the most elusive, and especially in freshwaters their identities and ecology remain obscure. Here, using ultra-deep metagenomic sequencing from freshwater habitats we recovered complete genomes of >2000 phages, including small \"miniphages\" and large \"megaphages\" infecting iconic prokaryotic lineages. We also show that many phages encode genes that likely enhance survival of infected microbes during strong eukaryotic grazing pressure. For instance, we describe genes that afford protection to their host from reactive oxygen species (ROS) in the environment and from the oxidative burst in protist phagolysosomes (phage-mediated ROS defense) or those that directly effect targeted killing of the predators upon ingestion of a phage-infected microbe (Trojan horse). Spatiotemporal abundance analyses of phage genomes revealed evanescence as the primary dynamic in upper water layers, where they displayed short-lived existences. In contrast, persistence was characteristic for the deeper layers where many identical phage genomes were recovered repeatedly. Phage and host abundances corresponded closely, with distinct populations displaying preferential distributions in different seasons and depths, closely mimicking overall stratification and mixis.

microbiology