This report provides an overview of the main findings of the 2019–2020 harmonised AMR monitoring in the main food-producing animal populations monitored, in carcase/meat samples and in humans. Where available, monitoring data obtained from pigs, calves, broilers, laying hens and turkeys, as well a
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s from carcase/meat samples and humans were combined and compared at the EU level, with particular emphasis on multidrug resistance, complete susceptibility and combined resistance patterns to critically important antimicrobials, as well as Salmonella and E. coli isolates possessing ESBL-/AmpC-/carbapenemase phenotypes.
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Accessed Sept, 5 2018
Weekly epidemiological record, Relevé épidémiologique hebdomadaire : Vol.93 (2018) No.13
Comprehensive Reviews in Food Science and Food Safety, Vol.12 (2013) pp.234-248
In 2006, the Institute of Food Technologists (IFT) published an Expert Report entitled “Antimicrobial Resistance: Implications for the Food System” (IFT 2006). That report summarized current scientific knowledge pe
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rtaining to the public-health impact of antimicrobial use in the food system and the development and control of antimicrobial resistance. Since that time, intense interest in this topic has continued within the regulatory and scientific communities as well as the general public. This IFT Scientific Status Summary serves to update that 2006 IFT Expert Report by briefly reviewing new scientific evidence relevant to the goals of the initial report and providing a number of key observations and conclusions.
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The ECDC, the EFSA and the EMA have for the first time jointly explored associations between consumption of antimicrobials in humans and food-producing animals, and antimicrobial resistance in bacteria from humans and food-producing animals, using 2011 and 2012 data currently available from their re
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levant five EU monitoring networks. Combined data on antimicrobial consumption and corresponding resistance in animals and humans for EU MSs and reporting countries were analysed using logistic regression models for selected combinations of bacteria and antimicrobials. A summary indicator of the proportion of resistant bacteria in the main food-producing animal species was calculated for the analysis, as consumption data in food-producing animals were not available at the species level
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In aquaculture, antibiotics have been used mainly for therapeutic purposes and as prophylactic agents. The contribution to antimicrobial resistance of antibiotics used in aquaculture is reviewed here, using a risk analysis framework. Some recommendations on responsible conduct in this context are pr
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oposed, aimed at diminishing the threat of build up of antimicrobial resistance.
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Detection, confirmation and management Salmonella Typhi outbreak
Handbook of Foodborne Pathogenic Microorganisms and Natural Toxins
Journal of The Association of Physicians of India, Vol. 63 November 2015,, pp.77-96
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In Kenya, the bacterial infections that contribute most to human disease are often those in which re-‐sistance is most evident. Examples are multidrug-‐resistant enteric bacterial pathogens such as typhoid,
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diarrhoeagenic Escherichia coli and invasive non-‐typhi salmonella, penicillin-‐resistant Streptococcus pneu-‐moniae, vancomycin-‐resistant enterococci, methicillin-‐resistant Staphylococcus aureus and multidrug-‐re-‐sistant Mycobacterium tuberculosis. Resistance to medicines commonly used to treat malaria is of particu-‐lar concern, as is the emerging resistance to anti-‐HIV drugs. Often, more expensive medicines are required to treat these infections, and this becomes a major challenge in resource-‐poor settings.
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MICROBIAL DRUG RESISTANCEVolume 24, Number 5, 2018ªMary Ann Liebert, Inc.DOI: 10.1089/mdr.2017.0383
Antibiotic resistance (ABR) is a worldwide publichealth concern, with serious health, economic, and so-cietal repercussions. Its emergence is attributed to the se-lective pressure exerted by antib
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iotic use in the community, hospitals, veterinary health, agriculture, aquaculture, and the environment. Additionally aggravating the situation is the fact that very few new antibiotics have recently been produced by pharmaceutical companies. It is widely acknowledged that food animals are key reservoirs of antibiotic-resistant bacteria and that antibiotic usage in this population favors the emergence, selection, and spread of resistance among animals and humans, both through zoonoses (infectious diseases trans-mitted between animals and humans) and the food chain.
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This short paper aims to identify key evidence gaps in our knowledge of livestock- and fisheries-linked antimicrobial resistance in the developing world, and to document on-going or planned research initiatives on this topic by key stakeholders.
The antimicrobial resistant (AMR) infections in anima
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ls that are of most potential risk to human health are likely to be zoonotic pathogens transmitted through food, especially Salmonella and Campylobacter. In addition, livestock associated methicillin resistant Staphylococcus aureus (LA MRSA) and extended spectrum beta lactamase E. coli (ESBL E. coli) are emerging problems throughout the world.
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Pakistan Global Antibiotic Resistance Partnership (GARP) was formed in the wake of international and national efforts for AMR curtailment. A group of experts from microbiology, infectious diseases and veterinary medicine formed a core group at the organizational meet
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ing of GARP in Kathmandu, Nepal in July 2016. In the meeting, this core group was expanded to include other members from different sectors with the selection of the Chair and co-chairs. These were asked to serve on a voluntary basis, in their own individual capacities, with no personal gains, or gains to the institutions to which they are affiliated. The first phase of GARP took place from 2009 to 2011 and involved four countries: India, Kenya, South Africa and Vietnam. Phase one culminated in the 1st Global Forum on Bacterial Infections, held in October 2011 in New Delhi, India. In 2012, phase two of GARP was initiated with the addition of working groups in Mozambique, Tanzania, Nepal and Uganda. Phase three has added Bangladesh, Lao PDR, Nigeria, Pakistan and Zimbabwe to the network to date.
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The Lancet Planetary Health Volume 5, ISSUE 7, e466-e478, July 01, 2021
Transmission of many infectious diseases depends on interactions between humans, animals, and the environment. Incorporating these complex processes in transmission dynamic models can help inform policy and disease control int
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erventions. We identified 20 diseases involving environmentally persistent pathogens (ie, pathogens that survive for more than 48 h in the environment and can cause subsequent human infections), of which indirect transmission can occur from animals to humans via the environment.
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ຢາຕ້ານເຊື້ອຈຸລະຊີບ (Antimicrobial medicines) ມີຄວາມສໍາຄັນຫຼາຍຕໍ່ວຽກງານການແພດ, ສາທາລະນະສຸກ, ສຸຂະພາບສັດ ແລະ ການຜະລິດອາຫານ. ເນ
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່ອງຈາກວ່າ ຢາດັ່ງກ່າວນີ້ ແມ່ນໃຊ້ເພື່ອປ້ອງກັນ ແລະ ປິ່ນປົວພະຍາດຊືມເຊື້ອ ທີ່ມີ ຈໍາພວກເຊື້ອຈຸລິນຊີ (Bacteria) ເປັນຫນື່ງໃນສາເຫດທີ່ເຮັດໃຫ້ຄົນ ແລະ ສັດເສຍຊີວິດ ໃຫ້ຫຼຸດລົງໄດ້ ແລະ ມີບົດບາດຫຼາຍໃນວົງ ການແພດແຜນປະຈຸບັນ ເປັນຕົ້ນແມ່ນ ການຜ່າຕັດ ຊຶ່ງມີຄວາມສ່ຽງຕໍ່ການຕິດເຊື້ອໄດ້ງ່າຍຈຶ່ງຈໍາເປັນຕ້ອງໄດ້ເພິ່ງພາຢາຕ້ານເຊື້ອຈຸລະ ຊີບ ທີ່ມີປະສິດທິພາບເພື່ອປ້ອງກັນ ແລະ ປິ່ນປົວການຕິດເຊື້ອທີ່ອາດເກີດຂຶ້ນ. ນອກຈາກນີ້ແລ້ວ ມັນຍັງມີຄວາມຈໍາເປັນສໍາລັບ ປ້ອງກັນ ແລະ ປິ່ນປົວ ໃນວຽກງານສັດຕະວະແພດ ແລະ ການກະສິກໍາ ເປັນຕົ້ນ: ການລ້ຽງສັດ, ການປະມົງ, ການປູກຝັງ ແລະ ມີຄວາມສໍາຄັນຕໍ່ ສຸຂະພາບສັດ ພືດ ຕ່ອງໂສ້ການຜະລິດອາຫານ ແລະ ເສດຖະກິດຂອງຊາດອີກດ້ວຍ.
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Mortality due to enteric infections is projected to increase because of global warming; however, the different temperature sensitivities of major enteric pathogens have not yet been considered in projections on a global scale. We aimed to project global temperature-attributable enteric infection mor
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tality under various future scenarios of sociodemographic development and climate change.
The Lancet Planetary Health Volume 5, ISSUE 7, e436-e445, July 01, 2021
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