H2020Individual fellowship2018–2020

SPECTRE · SPEciation and dynamiCs of TRace Elements

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2018-06-01 → 2020-08-31
EU contribution
€204,026
Participants
2
Scheme
MSCA-IF-GF

Lines connect the coordinator with its partners.

Results in brief

SPEciation and dynamiCs of TRace Elements

European waste production (2.5 billion t in 2010) have been steadily increasing. There is now a global consensus on the need to recycle resources to ensure sustainable development and to close the loop in a circular economy. Agricultural recycling makes it possible to effectively and synergistically use livestock, urban and agro-industrial organic waste (OW), but the advantages of using OW as fertilizer and soil amendment (improvement of yields and/or soil quality) need to be assessed together with the potential environmental and toxicological impacts due to the presence of toxic elements. Among these pollutants, antibiotic resistance bacteria (ARB) and trace elements (TEs) are seen as two major threats to environmental and human health. Antibiotic resistance is a major healthcare issue worldwide. Antimicrobial resistance is now recognised as one of the most serious global threats to human health. If left unchecked, 10 million deaths every year could be attributable to antimicrobial resistance by 2050. In the last 20 years, increasing numbers of human pathogens causing cutaneous infections, diarrhoea, etc. have become resistant to all existing antibiotics and a resistant gene can be disseminated worldwide in only two years. The co-existence of trace elements (TEs) and bacteria in organic waste (OW) fosters the development of antibiotic resistant bacteria (ARB). There is growing concern that TEs, particularly copper (Cu) and zinc (Zn), function as selective agents in the maintenance and dissemination of antibiotic resistance in OWs. Surprisingly, to date, there have been no studies on the correlation between ARGs and different forms of TEs, i.e. their speciation in organic wastes. Agricultural organic wastes recycling propagates antibiotic resistance and TEs. Agricultural recycling of OW as fertilizer on farmlands is a widespread practice which enables the recycling of resources to ensure sustainable development, and to deal with the steadily increasing production of waste worldwide. But OW application in crop fields can increase (i) ARB, ARG levels in the soil and (ii) soil Cu and Zn concentrations. Furthermore, recent studies revealed that ARGs were more abundant on vegetables harvested from soil fertilised with OWs as compared to vegetables grown on the control soil. The consumptions of such contaminated vegetables by humans or animals represents a potential route of exposure to ARGs. Because antibiotic resistance is a major healthcare issue, it is crucial to identify which determinants lead to the selection of resistant bacteria. The lack of knowledge on the role of Cu and Zn speciation in the co-selection and dissemination of antibiotic resistance is an emerging scientific issue which needs to be addressed without delay. In this project, I will attempt to answer the following scientific questions: 1. Is the development of resistance to antibiotics driven by the speciation of Cu/Zn in OWs? 2. Are the abundance and diversity of ARGs and the fate of Cu/Zn correlated over time in the OW-soil-plant system?

Data: CORDIS, © European Union

Project objective

Ever-increasing production of waste requires new provisions for waste management to ensure sustainable development. The use of organic waste (OW) as fertiliser is a promising route but may represent an environmental pathway for flows of contaminants. In Europe and across the world, antibiotic resistance genes (ARGs) and trace elements (TEs) are seen as two major threats to environmental and human health. Overcoming the lack of knowledge of the role of TEs as a selective agent in the proliferation of ARGs is a major scientific challenge today. The overall objectives of SPECTRE are to (i) link the spatial distribution of TE speciation in OWs with the development of resistance at microscale and (ii) to assess the fate of TEs and ARGs in the OW-soil-plant system. During the SPECTRE project, I will take full advantage of my time at the interdisciplinary Future Industries Institute (FII, University of South Australia) to acquire new skills in molecular biology to screen interesting bacterial community members and (ii) increase my expertise in TE speciation by harnessing the analytical power of a spectroscopic cutting-edge technique. This training will position me as a leader in Europe in this rapidly advancing field. Furthermore, the unique FII environment will enable me to develop my transversal skills and gain experience in the management of public-private research partnerships. Knowledge transfer (blended learning, hands-on training, training-through-research) is essential to broaden the scope of my research as well as reinforce my future career prospects. Beyond the publication of scientific papers, I will make a particular effort to ensure that the results are widely disseminated to different audiences: schoolchildren (social networking, video link facilities), school teachers (professional development), end-users in the agro-environmental sector (workshop, seminar) and MSc students (e-learning).

Original text from CORDIS.

Participants

  • CENTRE DE COOPERATION INTERNATIONALE EN RECHERCHE AGRONOMIQUE POUR LEDEVELOPPEMENT - C.I.R.A.D. EPIC · ParisCoordinatorFrance
  • UNIVERSITY OF SOUTH AUSTRALIA · AdelaideAustralia

Links

Data: CORDIS, © European Union