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Henoch, A.

Publications and source records attributed to Henoch, A..

2 recordsLinked to original sources

Synteny-aware microbial pangenome graphs reveal blueprints of genomic variation

Pangenomics quantifies the conserved and variable gene repertoire among genomes, but popular implementations ignore gene synteny. Graph-based approaches incorporate both gene homology and synteny, but become difficult to interpret due to pervasive rearrangements. Here we present network-pruning and graph-layout algorithms that enable interactive, synteny-aware quantification and visualization of gene conservation and variability. Applied to 29 genomes of the marine genus Undatipelagibacter (formerly SAR11 subclade Ia.3.VI), we find that genomic variability forms not a few hypervariable islands against a static backbone but a structured continuum, whose variable regions differ in scale, topology, function, and evolutionary character. Genome variation spans from ancient, specialized regions of hundreds of genes whose propensity to vary is conserved across genera, to single hypervariable genes shaped by epistatic co-selection with partners dispersed genome-wide, and shows that chromosomal context carries evolutionary information synteny-unaware pangenomics cannot capture, and some evolutionary processes act on entire functional subsystems throughout a pangenome.

microbiology↗

Defining the Mycobacterium tuberculosis Pangenome and Suggestions for a New Composite Reference Sequence

Mycobacterium tuberculosis (Mtb) causes tuberculosis (TB), a global disease with diverse clinical and microbiological manifestations. Studies into the biological causes of this phenotypic diversity have been largely limited to a few reference strains. A pangenome approach is likely to provide new insights. Pangenomic tuberculosis studies have been limited the availability of only fragmented genome sequences and error-prone reference genomes. We used a de novo assembly pipeline that generates extremely complete and accurate whole genome sequences to generate 50 closed Mtb genomes across all seven major lineages. We identified 3,377 core gene clusters and 379 accessory clusters. Analysis showed multi-copy core clusters were largely due to gene fragmentation (76%), paralogs (12%), nearly identical gene duplications (4%), or combinations (8%). Sixteen hypervariable regions (HVRs) were identified, including novel paralogs and variable PE/PPE genes. We consolidated these findings into a Pangenome Gene Reference Resource (PGRR) for precision alignment. Our study demonstrates the closed nature of the Mtb pangenome, with most variation in accessory genes and HVRs. The PGRR provides a foundation for improved drug/vaccine target discovery and highlights the need to move beyond the commonly used H37Rv strain to study Mtb genetic and phenotypic diversity. IMPORTANCETuberculosis (TB), caused by Mycobacterium tuberculosis, affects millions globally. Genetic differences among Mtb strains have been difficult to resolve due to incomplete genome references. We sequenced and analyzed complete genomes of 50 Mtb strains from all lineages, identifying 16 hypervariable regions and 3,498 core gene clusters whose diversity mostly stemmed from gene fragmentation, paralog duplication and deletion events and differences in the PE/PPE gene family representation. These differences may explain many of the varied clinical manifestations of TB. We created Pangenome Gene Reference Resource to unify genetic data for precise comparison studies to aid in developing new drugs vaccines and other interventions against this disease.

microbiology↗