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Bogdanov, K.

Publications and source records attributed to Bogdanov, K..

2 recordsLinked to original sources

Antibiotic Resistomes And Microbial Communities In The 18th-Century Urban Settlement And Slaughterhouse Environment

Antimicrobial resistance (AMR) is an ancient and natural phenomenon, yet it now poses a critical threat to global health. Human activities, particularly animal husbandry, have shaped microbial evolution by creating manure-rich environments that promote interactions between environmental and host-associated bacteria and facilitate horizontal gene transfer. Here, we investigated dormant, potential antibiotic-producing bacteria, microbial communities, and their AMR genes and mobile genetic elements in 18th-century preindustrial slaughterhouse surroundings excavated in Turku, Finland. By combining cultivation, genomic analyses, metagenomic sequencing, and ancient DNA authentication methods, we reconstructed preindustrial microbiomes and resistomes to better understand the early ecology and evolution of AMR, and to explore the role of antibiotic-producing bacteria in the emergence of AMR. Our results reveal putative ancestral forms of resistance mechanisms only recently characterized, such as fosfomycin thiol transferase fosI, plasmid-associated tmexCD-toprJ efflux pumps conferring resistance to last-resource antibiotic tigecycline, as well as sequences related to mobility of AMR genes. These findings demonstrate that key AMR elements were already present prior to widespread antibiotic use, reflecting their long-term environmental origins.

microbiology↗

Bio-based fertilizers shape soil microbiome, resistome and mobilome through metabolism of antibiotic-producing Streptomyces

Streptomyces are abundant soil inhabitants with extensive secondary metabolism and antibiotic resistance traits. Yet, their ecological role in shaping soil antibiotic resistome dynamics remains understudied. Here, we investigated how two different bio-based fertilizers harbouring Streptomyces shaped soil resistome and mobilome by combining genome analysis of eight Streptomyces isolates to metagenomic profiling of soils before fertilization, within 48 hours after fertilizer application, and six weeks after. Streptomyces genomes showed linkages among antibiotic resistance genes, carbohydrate-active enzymes, and antibiotic-production-associated biosynthetic gene clusters, connecting resistance and biosynthesis to broader metabolic strategies. Relationships between carbon degradation and biosynthesis associated with specific enzyme families, indicating that carbon availability shapes secondary metabolism. We confirmed experimentally that antibacterial potential varied with carbon source, suggesting that microbial activity during manufacturing of the bio-based fertilizers may create localized selection pressures before fertilizers enter the soil. Fertilization with the studied materials induced modest but consistent shifts in resistome and mobilome without major changes in dominant taxa or overall bacterial abundances, indicating functional reorganization within soil communities. Diversity of antibiotic resistance genes and mobile genetic elements increased, whereas abundance changes were small. Mobile genetic element composition showed stronger responses that were associated with fertilizer inputs, Streptomyces abundance, and taxa linked to faecal and resistance sources. Together, our results show that bio-based fertilizers shape soil resistome primarily through ecological restructuring of resident soil communities, while carbon-dependent microbial activity within fertilizers may enrich resistance. These factors should be considered in manufacturing of bio-based fertilizer as well as in designing agricultural practices.

microbiology↗