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Outbreaks of fungal diseases have devastated plants and animals throughout history. Over the past century, the repeated emergence of coffee wilt disease caused by the fungal pathogen Fusarium xylarioides severely impacted coffee production across sub-Saharan Africa. To improve the disease management of such pathogens, it is crucial to understand their genetic structure and evolutionary potential. We compared the genomes of 13 historic strains spanning 6 decades and multiple disease outbreaks to investigate population structure and host specialisation. We found that F. xylarioides comprised at least 4 distinct lineages: 1 host-specific to Coffea arabica, 1 to C. canephora var. robusta, and 2 historic lineages isolated from various Coffea species. The presence/absence of large genomic regions across populations, the higher genetic similarities of these regions between species than expected based on genome-wide divergence and their locations in different loci in genomes across populations showed that horizontal transfers of effector genes from members of the F. oxysporum species complex contributed to host specificity. Multiple transfers into F. xylarioides populations matched different parts of the F. oxysporum mobile pathogenicity chromosome and were enriched in effector genes and transposons. Effector genes in this region and other carbohydrate-active enzymes important in the breakdown of plant cell walls were shown by transcriptomics to be highly expressed during infection of C. arabica by the fungal arabica strains. Widespread sharing of specific transposons between F. xylarioides and F. oxysporum, and the correspondence of a putative horizontally transferred regions to a Starship (large mobile element involved in horizontal gene transfers in fungi), reinforce the inference of horizontal transfers and suggest that mobile elements were involved. Our results support the hypothesis that horizontal gene transfers contributed to the repeated emergence of coffee wilt disease.
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http://dx.doi.org/10.1371/journal.pbio.3002480 | DOI Listing |
mSphere
September 2025
Department of Microbiology and Immunology, University of British Columbia, Vancouver, Canada.
Through horizontal gene transfer, closely related bacterial strains assimilate distinct sets of genes, resulting in significantly varied lifestyles. However, it remains unclear how strains properly regulate horizontally transferred virulence genes. We hypothesized that strains may use components of the core genome to regulate diverse horizontally acquired genes.
View Article and Find Full Text PDFEmerg Microbes Infect
September 2025
Infectious Diseases Translational Research Programme, Department of Biochemistry, Yong Loo Lin School of Medicine, National University of Singapore, Singapore.
Hypervirulent (hvKp) and classical multidrug-resistant (MDR) strains belong to distinct lineages and hvKp are typically characterized by hypermucoid capsules that have been shown to limit horizontal gene transfer (HGT), including plasmid acquisition. However, the convergence of hypervirulence and MDR is increasingly common worldwide. When we profiled 127 antibiotic-susceptible hvKp strains, we found that most (86%) are highly permissive to plasmid transfer despite their capsules.
View Article and Find Full Text PDFInfect Disord Drug Targets
September 2025
Department of Microbiology, AIIMS, Jodhpur, India.
Introduction: Typhoid fever, caused by Salmonella Typhi and Paratyphi, remains a sig-nificant public health concern, particularly in developing countries. The emergence of antimicrobial resistance, including resistance to first-line drugs, fluoroquinolones, and the development of re-sistance to ceftriaxone, poses a significant threat to effective treatment.
Methods: This study investigated extended-spectrum β-lactamase (ESBL)-producing Salmonella Typhi isolates from blood samples of patients with suspected typhoid fever at a tertiary care hospital in Western Rajasthan, India, between April 2022 and May 2024.
J Hazard Mater
August 2025
State Key Laboratory of Water Pollution Control and Green Resource Recycling, School of Environment, Nanjing University, Nanjing 210023, China. Electronic address:
Micropollutants are widespread in wastewater systems and can impact microbial communities and the transfer of antibiotic resistance genes (ARGs). Nevertheless, the specific concentration thresholds for these effects under environmental conditions remain largely unknown. This study evaluated six micropollutants at five environmentally relevant concentrations (0.
View Article and Find Full Text PDFPestic Biochem Physiol
November 2025
Hunan Provincial Key Laboratory for Biology and Control of Plant Diseases and Insect Pests, Hunan Agricultural University, Nongda Road 1, Furong District, Changsha City, Hunan Province 410128, PR China. Electronic address:
The genus Alternaria comprises a wide range of ubiquitous plant pathogens that affect various host plants. Certain mycoviruses can induce changes in the biological characteristics and virulence of host fungi, offering potential for biocontrol in managing fungal plant diseases. Here, we identified a mycovirus with a high degree of homology to Alternaria arborescens victorivirus 1 (AaVV1), which was previously reported from Alternaria arborescens, in the QRH strain of the heterologous host Alternaria gomphrenae.
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