H2020Individual fellowship2015–2017

ARBUATEM · Antibiotic resistant bacteria and genes, associated with urban agriculture in Low and Middle Income Countries: Ecological and medical perspectives

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2015-10-01 → 2017-10-31
EU contribution
€195,455
Participants
1
Scheme
MSCA-IF-EF-ST

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Results in brief

Antibiotic resistant bacteria and genes, associated with urban agriculture in Low and Middle Income Countries: Ecological and medical perspectives

The population growth associated with urbanization and climate change, increase pressures on regional water resources and the need for the (re)use of wastewater for irrigation of agricultural lands worldwide. At the same time, the spread and evolution of antibiotic resistant bacteria in the environment, animals and people is one of the most important threats to global human health. It is estimated that more than 800 million farmers are involved in urban peri-urban agriculture in the world, out of which 200 million rely on raw or diluted wastewater for irrigation. Vegetable crops, because of their higher yield potential, low cost of production, higher nutritional value, and high prices in urban market owing to the increasing population in urban cities, are the most commonly irrigated crops with wastewater in low and middle-income countries. In this project, we used metagenomics to investigate microbial patterns, the presence of pathogenic bacteria, plasmids and antibiotic resistance genes in wastewater used for urban agriculture in two African countries (Burkina-Faso and Cameroon). The aim was to evaluate the epidemiological risks associated with the use of wastewater for urban agriculture in these countries, in terms of spreading bacterial drug resistance. • The first objective was to conduct representative sampling of wastewaters and soils with samples that represented all the investigated areas. • The second objective was to assess physical-chemical characteristics of collected samples, and pollution by selected antibiotics. This was to evaluate the influence of abiotic factors and antibiotic pressure on the dynamics of antibiotic-resistant bacteria and antibiotic-resistance genes. • The third objective was to identify the underlying commonalities / similarities in antibiotic resistant bacteria community structures in wastewaters and soils. This information was to further allow understanding of the influence of wastewater irrigation on the potential establishment of bacterial phyla, which are known to include strains that can act as facultative or opportunistic human pathogen. • The fourth objective was to identify antibiotic resistant genes and evaluate their abundance in wastewaters and soils. That was to allow a description of antibiotic resistant genes of medical interest, their taxonomic position, and development under continuous pollution. • The fifth objective was to identify plasmid amplicons of clinical relevance. This was to give a broader insight into mobile genetic elements involved in the dissemination of transmissible antibiotic resistance genes.

Data: CORDIS, © European Union

Project objective

About 20 million hectares of arable lands are irrigated with wastewaters in the world and almost nothing is known about the presence, evolution and dissemination of antibiotic resistant bacteria and antibiotic resistance genes in these fields, and their possible transmission to humans and animals via the food chain. The proposed project will address that scientific question by using analytical chemistry, flow cytometry, molecular biology, metagenomic approaches, and computational biology, in order to characterise antibiotic resistant bacterial community structures and antibiotic resistance genes in untreated wastewaters and the corresponding irrigated agricultural sites compared to control sites in low and middle income countries, as well as the influence of abiotic factors. The new scientific data arising from this project will help to determine the factors that drive resistance and can be minimized by developing strategies to prevent further spread of antibiotic resistant bacteria and antibiotic resistance genes worldwide. The fellow, with a strong background in Microbial ecology and Biochemistry, will conduct this project under the supervision of Prof Piddock, a medical microbiologist and expert in antibiotic resistance, at the University of Birmingham.

Original text from CORDIS.

Participants

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Data: CORDIS, © European Union