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Błazejewska, A.

Publications and source records attributed to Błazejewska, A..

3 recordsLinked to original sources

Effect of composting and storage on the microbiome and resistome of cattle manure from a commercial dairy farm in Poland

Manure from food-producing animals, rich in antibiotic-resistant bacteria and antibiotic resistance genes (ARGs), poses significant environmental and healthcare risks. Despite global efforts, most manure is not adequately processed before use on fields, escalating the spread of antimicrobial resistance. This study examined how different cattle manure treatments, including composting and storage, affect its microbiome and resistome. The changes occurring in the microbiome and resistome of the treated manure samples were compared with those of raw samples by high-throughput qPCR for ARGs tracking and sequencing of the V3-V4 variable region of 16S rRNA gene to indicate bacterial community composition. We identified 203 ARGs and mobile genetic elements (MGEs) in raw manure. Post-treatment reduced these to 76 in composted and 51 in stored samples. Notably, beta-lactam, cross-resistance to macrolides, lincosamides and streptogramin B (MLSB), and vancomycin-resistance genes decreased, while genes linked to MGEs, integrons, and sulfonamide resistance increased after composting. Overall, total resistance gene abundance significantly dropped with both treatments. During composting, the relative abundance of genes was lower midway than at the end. Moreover, higher biodiversity was observed in samples after composting than storage. Our current research shows that both composting and storage effectively reduce ARGs in cattle manure. However, its challenging to determine which method is superior, as different groups of resistance genes react differently to each treatment, even though a notable overall reduction in ARGs is observed.

microbiology↗

A comprehensive study of the microbiome and resistome of chicken waste from intensive farms

The application of chicken waste to farmland could be detrimental to public health. It may contribute to the dissemination of antibiotic resistance genes (ARG) and antibiotic-resistant bacteria (ARB) from feces and their subsequent entry to the food chain. The present study analyzes the metagenome and resistome of chicken manure and litter obtained from a commercial chicken farm in Poland. ARB were isolated, identified and screened for antibiogram fingerprints using standard microbiological and molecular methods. The physicochemical properties of the chicken waste were also determined. ARG, integrons, and mobile genetic elements (MGE) in chicken waste were analyzed by high-throughput SmartChip qPCR. The results confirm the presence of many ARGs, probably located in MGE, which can be transferred to other bacteria. Potentially pathogenic or opportunistic microorganisms and phytopathogens were isolated. More than 50% of the isolated strains were classified as multi-drug resistant, and the remainder were resistant to at least one antibiotic class; these pose a real risk of entering groundwater and contaminating the surrounding environment. Our results indicate that while chicken manure can be sufficient sources of the nutrients essential for plant growth, its microbiological aspects make this material highly dangerous to the environment.

microbiology↗

Pig manure treatment strategies for mitigating the spread of antibiotic resistance

One of the most important public health challenges facing the world today is that posed by antibiotic resistance. Many pathogenic antibiotic-resistant bacteria and their antibiotic resistance genes, usually located on mobile genetic elements, are frequently present in the faeces of farm animals. To prevent the possibility of antimicrobial resistance transfer to the environment, these faeces should undergo treatment before being used as natural fertilizer. The two strategies for processing pig manure proposed in this study, viz. storage (most commonly used for livestock manure today) and composting, are cheap and do not require special tools or technologies. The present study examines the changes in the physicochemical properties of treated manure, in the microbiome, through metagenomic sequencing, and in the resistome, using the SmartChip Real-time PCR system compared to raw manure. This is the first such comprehensive analysis performed on the same batch of manure. Our results suggest that while none of the processes completely eliminates the environmental risk, composting results in a faster and more pronounced reduction of mobile genetic elements harbouring antibiotic resistance genes, including those responsible for multi-drug resistance. The physicochemical parameters of the treated manure are comparable after both processes; however, composting resulted in significantly higher organic matter. Overall, it appears that the composting process can be an efficient strategy for mitigating the spread of antibiotic resistance in the environment and reducing the risk of its transfer to agricultural crops and hence, the food chain. It also provides the organic matter necessary for humus formation, and increases the sorption properties of the soil and the micro and macro elements necessary for plant growth, which in turn translates into increased soil productivity. HighlightsO_LIThe changes in microbial population composition correlate with changes in specific antibiotic-resistance genes and mobile genetic elements in the studied populations. C_LIO_LIPositive correlations have been demonstrated between microbial phyla and genes coding the multi-drug resistance mechanism C_LIO_LICo-occurrence networks showed positive correlations between antibiotic-resistance genes and mobile genetic elements C_LIO_LIThe composting strategy was most efficient at reducing microbial loads, antibiotic resistance genes and mobile genetic elements. C_LIO_LIComposted manure can be part of a natural, safe soil fertilization strategy. C_LI O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=167 SRC="FIGDIR/small/492273v1_ufig1.gif" ALT="Figure 1"> View larger version (33K): org.highwire.dtl.DTLVardef@155a284org.highwire.dtl.DTLVardef@1209100org.highwire.dtl.DTLVardef@10f9dbborg.highwire.dtl.DTLVardef@3c8b9d_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗