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The Global Antimicrobial Resistance Surveillance System (GLASS) is a platform for global data sharing on antimicrobial resistance worldwide. It has been launched by WHO as part of the implementation
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of the Global Action Plan on Antimicrobial Resistance (AMR). The data generated will help to inform national, regional and global decision-making, strategies and advocacy.
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In concordance with the global and WHO activities on ARC, the Ministry of Health and Family Welfare (MoHFW) in Bangladesh has come forward and initiative was taken to conduct program for containment of antimicrobial resistance in Bangladesh. Directo
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r, Disease Control and Line Director, Communicable Disease Control, DGHS was selected as a national focal point to coordinate the national program. Since AMR is a multi-faceted problem, conduction of activities in well-coordinated manner through One Health approach is very important.
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AMR is a serious and growing global problem. A WHO report released in 2014 stated that this serious threat is no longer a prediction for the future it is happening now in every region of the world and has potential to affect anyone, of any age in any community – a real threat to the public health.
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The coming together of the various important stakeholders to develop this document is the testimony of their agreement of how serious is the issue at hand and their intentions to combat AMR is translated into an Action Plan. WHO also reported that there are about 2 million people in the US are infected with the AMR organism while 23,000 die annually from AMR infections. Fiji is just 10 hours journey away from the United States of America therefore Fiji must act now to keep our population safe from AMR organisms.
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The current trend in AMR in Uganda and globally is rising and calls for immediate action. The 71st UN General Assembly (UNGA), the 68th World Health Assembly, and organizations including the World Health Organization (WHO), the Food and Agriculture Organization (FAO), and the World Organization for
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Animal Health (OIE), have agreed on a set of actions that member countries such as Uganda are committed to implement. The Government of Uganda (GoU) has put in place a framework through this National AMR Action Plan to address the threat AMR poses to the welfare of the peoples of Uganda. The Action Plan sets out a coordinated and collaborative One Health approach involving key stakeholders in government and other sectors to confront the threat and shall be coordinated by a Uganda National Antimicrobial Resistance Committee (UNAMRC).
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Antibiotics have been a critical public health tool since the discovery of Penicillin in 1928, saving the lives of millions of people around the world. In developing country like ours, where the burden of treatable disease is very high and access to health facilities and laboratories is difficult, a
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ntibiotics have long acted as miracle drugs. Today, however, the emergence of drug
resistance in bacteria is reversing the miracles of the past eighty years, with drug choices for the treatment of many bacterial infections becoming increasingly limited, expensive, and in some cases, nonexistent. Diseases previously regarded as relatively easy to manage are much harder to treat as doctors must use “last-resort” drugs that are more costly, take longer to work
and are often unavailable or unaffordable in developing countries. Moreover, regular prescription of antibiotics, random treatment, over the counter sales, inadequate dosage, inclusion of antibiotics in animal feeds and agriculture has contributed equally to emergence of antibiotics resistance as silent epidemic within the country.
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The purpose of this guidance is to assist WHO Member States, and other stakeholders, in the establishment and development of programmes of integrated surveillance of antimicrobial resistance in foodborne bacteria (i.e., bacteria commonly transmitted
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by food). In this guidance, “integrated surveillance of antimicrobial resistance in foodborne bacteria” is defined as the collection, validation, analyses and reporting of relevant microbiological and epidemiological data on antimicrobial resistance in foodborne bacteria from humans, animals, and food, and on relevant antimicrobial use in humans and animals. Integrated surveillance of antimicrobial resistance in foodborne bacteria therefore includes data from relevant food chain sectors (animals, food and humans) and includes data on both antimicrobial resistance and antimicrobial use. Integrated surveillance of antimicrobial resistance for foodborne bacteria expands on traditional public health surveillance to include multiple elements of the food chain, and to include antimicrobial use data, to better understand the sources of infection and transmission routes.
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A conceptual framework for the environmental surveillance of antibiotics and antibiotic resistance
Patricia M.C. Huijbers, Carl-Fredrik Flach, D.G. Joakim Larsson
Centre for Antibiotic Resistance Research (CARe), University of Gothenburg
(2019)
C2
The systematic surveillance of antibiotic use and antibiotic re-sistance prevalence in humans and animals is imperative for managingbacterial infectious disease (JPIAMR, 2019;WHO, 2015). Many low-income countries currently face substantial challenges in building national surveillance systems due to
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a lack of infrastructure and resources,resulting in a shortage of systematic data (FAO/OIE/WHO, 2018)
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Guide to enrolment for antimicrobial resistance national focal points
Molecular methods for antimicrobial resistance (AMR)diagnostics to enhance the Global Antimicrobial Resistance Surveillance System
The Ghanaian Cabinet approved the antimicrobial resistance (AMR)Policy and Implementation plan(hereafter referred to as the national action plan or NAP)in December 2017, whilst the country case study was in progress. This has set in motion the impl
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ementation phase for Ghana, which is a long awaited event since the drafting of the Policy started in 2011. This case study, whilst limited in its ability to interact with all stakeholders, has identified entrypoints within the operational divisions of Ghana Health Services,as potential areas where the AMR policy platform may seek to embed AMR activities. Much work has already been done within Ghana to identify the key entrypoints within the various ministries and government agencieswhere AMR can be incorporated. These stakeholders already form part of the AMR Policy Platform which is the governance structure for AMR and have been participating actively in the development of the AMR Policy and NAP activities formulation.
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The most significant finding of the case study for integrating antimicrobial resistance (AMR)into existing programs and mobilising resources for funding in Nigeria, is that most of the AMR activities within the Nigerian National Actio
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n Plan (NAP)canalready be incorporated within existing programs of the Federal Ministry of Health (FMOH), Federal Ministry of Agriculture and Rural Development (FMARD) and their agencies or institutes. Certain programs and initiatives already have an AMR element incorporated or could,with little effort,include some additional AMR actions, however much is already being planned and has started with existing federal funding and existing staffing and other resources including development partner support and is being driven by significant political will from the ministries as well as implementation support from the Nigerian Centers for Disease Control as the focal point.
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Le présent document de travail a été conçu pour offrir des conseils pratiqueset des suggestions sur la manièred’établir et de maintenir la collaboration multisectorielle nécessaire pour élaborer et mettre en œuvre les plans d’action nationaux (PAN) de lutte contre la RAM. Il s’adresse
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à tous ceux qui ont pourresponsabilité de combattre la RAM au niveau national. S’appuyant à la fois sur la littérature publiée et sur l’expérience pratique de quatre «pays focaux» (Éthiopie, Kenya, Philippines et Thaïlande), ce documentrésume les enseignements tirés et les derniers points de vuesur la collaboration multisectorielle en vue d’une action efficace contre la RAM.
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This working paper was conceived to offer practical tips and suggestions on how to establish and sustain the multisectoral coordination needed to develop and implement National Action Plans on AMR (NAPs). It is intended for anyone with responsibility for addressing AMR at country level. Drawing on b
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oth the published literature and the operational experience of four ‘focal countries’ (Ethiopia, Kenya, Philippines and Thailand), it summarizes lessons learned and the latest thinking on multisectoral working to achieve effective AMR action. The experience in focal countries points to a number of tools and tactics that can be used to help establish and enhance sustainable multisectoral collaboration for AMR action. These can be grouped into four categories: political commitment, resources, governance mechanisms, and practical management.
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Nosocomial infections and antimicrobial resistance are two special health issues listed in Annex 1 of Commission Decision 2000/96/EC of 22 December 1999 on the communicable diseases to be progressively covered by the Community network under Decision
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No 2119/98/EC of the European Parliament and of the Council.
Nosocomial infections correspond to infections acquired in hospitals. The term “Healthcare-associated infections” is now preferred because it includes not only infections acquired in hospitals, but also in other settings where healthcare is provided, e.g. long-term care facilities, nursing homes, home care, etc.
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This course is designed for anyone with an interest in antibiotic resistance, no matter if you are a member of the public, a student, a health professional or any other expert.
Our focus is to provide an overview of antibiotic
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resistance from several different angles. An important aim is to give an understanding of the mechanisms behind the increasing prevalence of antibiotic resistance worldwide, but also what the society and you as an individual can do to control and prevent further emergence and spread of antibiotic-resistant bacteria.
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While infections that develop during hospitalization may appear to be an uncommon but recognized risk of hospital care today, the incidence of these infections has been increasing dramatically during the last 2 to 3 decades, and the risk of acquiring an organism that is resistant to 1 or more antibi
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otics is becoming increasingly common.
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A short movie about the history and the current status of antibiotics from the four week online course: Antibiotic Resistance: the silent tsunami, produced by ReAct and Uppsala University, Sweden.
The infectious disease burden in India is among the highest in the world. A large amount of antibiot-ics are consumed in fighting infections, some of them saving lives, but every use adding to antibiotic resistance in bacteria. Antibiotic use i
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s increasing steadily (table 1), particularly certain antibiotic classes (beta-lactam antibacterials), most notably in the more prosperous states. Resistance follows in lock-step.
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This study addresses part of the Terms of Reference for a scoping report ‘An analysis of approaches to laboratory capacity strengthening for drug resistant infections in low and middle income countries’. It has been produced as a separate report because it is also very relevant for a second stud
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y ‘Supporting Surveillance Capacity for Antimicrobial Resistance: Regional Networks and Educational Resources’. This study compares antimicrobial surveillance systems in three low and middle income countries in order to describe the components of these systems and to understand which surveillance models are best suited to particular contexts. Ghana, Nigeria and Nepal were selected as study countries because they cover different continents and include one ‘fragile’ context (Nigeria). Brief information from Malawi is also included.
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Stenotrophomonas maltophiliais a nonfermenting Gram-negative rod that is ubiquitous in nature (predominantly occurring in aquatic environments and on plants). Biochemically, it iscatalase positive and oxidase negative, and it produces acid frommaltose (hence the name“maltophilia”). Due to it
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s chargedcell wall surface and biofilm production, it may attach to and survive on abiotic surfaces in clinical settings (eg, central venouscatheters, disinfectant and hand-washing solutions, solutions for hemodialysis, endoscopes, inspiration/expiration circuits of ventilators, nebulizers, tap water, and showerheads).
Health Services Research and Managerial Epidemiology Volume 6: 1-9ªThe Author(s) 2019
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