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Biology subjects

Hassler, H. B.

Publications and source records attributed to Hassler, H. B..

2 recordsLinked to original sources

Deep shifts in Evolutionary Rate Trajectories of Ancient Bacterial Genes

Reconstruction of ancestral gene repertoires from extant genomes captures only the genes that survived; those lost from the record are invisible. Among the genes that did persist, selective pressures change not only across lineages but across time. Here, we resolve evolutionary rate trajectories across 528 genes in the Last Bacterial Common Ancestor (LBCA). We hypothesized that LBCA genes would show distinct evolutionary rate trajectories across bacterial history and tested this by resolving normalized branch lengths across five calibrated taxonomic intervals (phylum, class, order, family, and genus), spanning approximately 2.1 billion years of bacterial diversification. The distribution of rate trajectories is continuous, but four clusters capture the major patterns: Decelerating, Class-Peaking, Constant, and Accelerating. The Decelerating and Class-Peaking clusters are composed predominantly of Genetic Information Processing genes, whereas the Constant and Accelerating clusters are enriched for Metabolic genes. Specifically, the Decelerating cluster is enriched for core informational machinery, including translation initiation factors and components of the expressome, the molecular complex physically coupling transcription and translation, suggesting that transcription-translation interfaces locked in early in bacterial history. Cofactor-dependence and cofactor biosynthesis are decoupled: biosynthetic pathways producing metallocofactors such as heme, molybdopterin, and cobalamin, concentrated in the Constant and Accelerating clusters but proportionally more proteins use inorganic cofactors in the Decelerating and Class-Peaking clusters. This offset coincides with the shift in metal bioavailability associated with the Great Oxidation Event and reveals genomic fingerprints of the co-evolution of bacterial metabolism with planetary geochemistry.

evolutionary biology↗

Purifying selection and adaptive evolution proximate to the zoonosis of SARS-CoV-1 and SARS-CoV-2

Over the past two decades the pace of spillovers from animal viruses to humans has accelerated, with COVID-19 becoming the most deadly zoonotic disease in living memory. Prior to zoonosis, it is conceivable that the virus might largely be subjected to purifying selection, requiring no additional selective changes for successful zoonotic transmission. Alternatively, selective changes occurring in the reservoir species may coincidentally preadapt the virus for human-to-human transmission, facilitating spread upon cross-species exposure. Here we quantify changes in the genomes of SARS-CoV-2 and SARS-CoV-1 proximate to zoonosis to evaluate the selection pressures acting on the viruses. Application of molecular-evolutionary and population-genetic approaches to quantify site-specific selection within both SARS-CoV genomes revealed strong purifying selection across many genes at the time of zoonosis. Even in the viral surface-protein Spike that has been fast-evolving in humans, there is little evidence of positive selection proximate to zoonosis. Nevertheless, in SARS-CoV-2, NSP12, a core protein for viral replication, exhibited a region under adaptive selection proximate to zoonosis. Furthermore, in both SARS-CoV-1 and SARS-CoV-2, regions of adaptive selection proximate to zoonosis were found in ORF7a, a putative Major Histocompatibility Complex modulatory gene. These findings suggest that these replication and immunomodulatory proteins have played a previously underappreciated role in the adaptation of SARS coronaviruses to human hosts.

evolutionary biology↗