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Characterizing the informativeness of pathogen genome sequence datasets about transmission between population groups.

Title: Characterizing the informativeness of pathogen genome sequence datasets about transmission between population groups.
Authors: Tran-Kiem, Cécile; Perofsky, Amanda C.; Lessler, Justin; Bedford, Trevor
Source: Proceedings of the Royal Society B: Biological Sciences; 3/18/2026, Vol. 293 Issue 2067, p1-12, 12p
Subject Terms: INFECTIOUS disease transmission; MOLECULAR epidemiology; MICROBIAL genomes; NUCLEOTIDE sequencing; SOCIAL groups; PHYLOGEOGRAPHY; STATISTICAL sampling; EVOLUTIONARY models
Abstract: Pathogen genome analysis helps characterize transmission between population groups. The information carried by pathogen sequences comes from the accumulation of mutations within their genomes; thus, the pace at which mutations accumulate should determine the granularity of transmission processes that pathogen sequences can characterize. Here, we investigate how the complex interplay between mutation, transmission, population mixing and sampling impacts study power. First, we develop a conceptual probabilistic framework to quantify the ability of pairs of sequences in capturing between-group transmission history. This allows us to comprehensively explore the space of possible phylogeographic analyses by explicitly considering the pace at which mutations accumulate and the pace at which between-group transmission events occur. Using this framework, we identify a pathogen-intrinsic limit in the mixing scale at which their sequence data remain informative, with faster mutating pathogens enabling finer spatial characterization. Second, we perform a simulation study exploring a range of assumptions regarding sequencing intensity. The sample size further imposes a limit on the characterization of between-group transmission processes. This work highlights inherent horizons of resolvability for population mixing processes that depend on the interaction between evolution, transmission, mixing and sampling. Such considerations are important for the design of pathogen genomic studies. [ABSTRACT FROM AUTHOR]
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Database: Complementary Index