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Nalam, V.

Publications and source records attributed to Nalam, V..

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A large accessory genome, high recombination rates, and selection of secondary metabolite genes help maintain global distribution and broad host range of the fungal plant pathogen Claviceps purpurea

Pangenome analyses are increasingly being utilized to study the evolution of eukaryotic organisms, which is often governed by variable gene content. While pangenomes can provide insight into polymorphic gene content, inferences about the ecological and adaptive potential of such organisms also need to be accompanied by additional supportive genomic analyses. In this study we constructed a pangenome of Claviceps purpurea from 24 genomes and examined the positive selection and recombination landscape of an economically important fungal organism for pharmacology and agricultural research. Together, these analyses revealed that C. purpurea has a relatively large accessory genome ([~] 38%) that is likely maintained by high recombination rates ({rho} = 0.044) and transposon mediated gene duplication. However, due to observations of relatively low transposable element (TE) content (8.8%) and a lack of variability in genome sizes, prolific TE expansion is likely controlled by these high recombination rates, which may additionally be influencing the overall trend of purifying selection across the genome. Despite this trend, we observed a strong positive selection pressure on secondary metabolite genes, particularly within the ergoline biosynthetic cluster where we also revealed that the lpsA1 and lpsA2 genes were the result of a recombination event. These results indicate that secondary metabolites are primary factors affecting the diversification of the species into new ecological niches and help maintain its global distribution and broad host range. These results showcase the use of selection and recombination landscapes to identify mechanisms contributing to pangenome structure and primary factors influencing the evolution of an organism. Author SummaryThe use of genomic data to better understand the lifestyle of a pathogen and its relationship with its host has expanded our ability to investigate the evolutionary history of these organisms. This in turn has allowed us to decipher and understand the ambiguity surrounding the true nature of the fungal plant pathogen Claviceps purpurea. By combining three different types of broad genomic analyses we identified primary factors affecting the evolution and adaptive potential of this pathogen; particularly a large accessory genome, high recombination rates, and positive selection of genes associated with stress tolerance. These factors likely contribute to the pathogens global distribution and broad host range. Furthermore, these findings will influence the direction of future research into optimal control methods.

evolutionary biology

Genus-wide comparison reveals divergence and evolution of the four sections within the genus Claviceps are the result of varying mechanisms driving genome evolution and host range

The genus Claviceps has been known for centuries as an economically important fungal genera for pharmacology and agricultural research. Only recently have researchers begun to unravel the evolutionary history of the genus, with origins in South America and classification of four distinct sections through ecological, morphological, and metabolic features (Claviceps sects. Citrinae, Paspalorum, Pusillae, and Claviceps). The first three sections are additionally characterized by narrow host range, while sect. Claviceps is considered evolutionarily more successful and adaptable as it has the largest host range and biogeographical distribution. However, the reasons for this success and adaptability remain unclear. Our study elucidates factors influencing adaptability by sequencing and annotating 50 Claviceps genomes, representing 21 species, for a comprehensive comparison of genome architecture and plasticity in relation to host range potential. Our results show the trajectory from specialized one-speed genomes (sects. Citrinae and Paspalorum) towards adaptive two-speed genomes (sects. Pusillae and Claviceps) through co-localization of transposable elements around predicted effectors and a putative loss of repeat-induced point mutation resulting in unconstrained tandem gene duplication coinciding with increased host range potential and speciation. Alterations of genomic architecture and plasticity can substantially influence and shape the evolutionary trajectory of fungal pathogens and their adaptability. Furthermore, our study provides a large increase in available genomic resources to propel future studies of Claviceps in pharmacology and agricultural research, as well as, research into deeper understanding of the evolution of adaptable plant pathogens.

evolutionary biology