There is a broad consensus nowadays that the Earth is warming up as a result of greenhouse gas emissions caused by anthropogenic activities. It is also clear that current trends in the fields of energy, development and population growth will lead to continuous and ever more dramatic climate change.
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This is bound to affect the fundamental prerequisites for maintaining good health: clean air and water, sufficient food and adequate housing. The planet will warm up gradually, but the consequences of the extreme weather conditions such as frequent
storms, floods, droughts and heat-waves will have sudden onset and acute repercussions. It is widely accepted that climate change will have an impact on the spread of infectious diseases in Europe, which is likely to bring about new public health risks in the majority of cases. Transmission of infectious diseases depends on a number of factors, including climate and environmental elements. Foodborne and waterborne diseases, for instance, are associated with high temperatures. Disease-transmitting vectors (e.g. mosquitoes, sandflies and ticks) are highly sensitive to climate conditions, including temperature and humidity; their geographical distribution will widen as climate conditions change, potentially allowing them to spread into regions where they are not currently able to live.
The primary purpose of this manual on climate change and infectious diseases is to raise the awareness and the level of knowledge of health workers at national, regional and local levels in the former Yugoslav Republic of Macedonia on the health risks associated with climate change and infectious diseases. This manual was devel-
oped as part of the WHO Regional Office for Europe project, Protecting health from climate change: a seven–country initiative, implemented with financial support from the German Federal Ministry for the Environment, Nature Conservation and Nuclear Safety.
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Extreme heat events (EHEs) are a leading cause of weather-related injury and death in the United States, and under a changing climate, these meteorological episodes are predicted to increase in both frequency and intensity. Prolonged heat exposure from EHEs places an increased strain on the heart an
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d may lead to heat-related illness if the cardiovascular system fails to properly thermoregulate internal body temperature. Every individual is susceptible to heat-related illness, however, those with reduced cardiovascular function and pre-existing cardiovascular diseases are at a greater risk for morbidity and mortality during EHEs. This document gives an overview of our current understanding of heat exposure and its impact on cardiovascular health outcomes, an overview of the medications that may exacerbate heat-related cardiovascular illness, and asummary of the interaction between extreme heat and air pollutants, and their collective impact on cardiovascular health. Additionally, this document summarizes epidemiologic evidence and identifies gaps in the extant peer-reviewed literature on the effectiveness of strategies and interventions to protect against heat-related cardiovascular disease and death. This information is intended to aid health departments and other health professionals in understanding and responding to the impacts of heat exposure on cardiovascular health.
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Laboratory Biossafety Manual
IAEA Safety Standards for protecting people and the environment
The mhGAP Humanitarian Intervention Guide (mhGAP-HIG) Training of Health-Care Providers manual is designed to guide facilitators in training non-specialist health care providers to manage mental, neurological and substance use conditions in humanitarian emergency settings.
The manual covers sugge
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sted training schedules, learning objectives, and tips for planning and facilitating the training. It also includes step-by-step training modules for different conditions covered in the mhGAP Humanitarian Intervention Guide (mhGAP-HIG).
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During fresh fruit and vegetables (FFV) production, water is used for a variety of purposes. Even the water was conventionally treated and disinfected, it may still potentially contain human pathogens, albeit at low concentrations. A risk assessment, appropriate to the national or local production c
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ontext, should be conducted to assess the potential risks associated with a specific water source or supply in order to devise the appropriate risk mitigation strategies.
Since the 48th session of Codex Committee on Food Hygiene (CCFH) noted the importance of water safety and quality in food production and processing, FAO and WHO has undertaken the work on this subject. This report describes the output of the third in a series of meetings, which examined appropriate and fit-for-purpose microbiological criteria for water used with fresh fruit and vegetables. The advice herein will support decision making when applying the concept of fit-for-purpose water for use in the pre- and post-harvest production of fresh fruit and vegetables.
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The current global crises, including climate, COVID-19, and environmental change, requires global collective action at all scales. These broad socio-ecological challenges require the engagement of diverse perspectives and ways of knowing and the meaningful engagement of all generations and stages of
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personal and professional development. The combination of systems thinking, change management, quality improvement approaches and models, appreciative/strength-based approaches, narratives, storytelling and the strengths of Indigenous knowledges, offer synergies and potential that can set the stage for transformative, strengths-based education for sustainable healthcare (ESH).
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The Planetary Health Education Framework is a project of the Planetary Health Alliance (planetaryhealthalliance.org). The Planetary Health Alliance is a consortium of over 250 partners from around the world committed to understanding and addressing the human health impacts of global environmental ch
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ange
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The Lancet Published Online September 13, 2016 http://dx.doi.org/10.1016/S0140-6736(16)31404-0
Environmental Research Letters
Microplastic debris floating at the ocean surface can harm marine life. Understanding the severity of this harm requires knowledge of plastic abundance and distributions. Dozens of expeditions measuring microplastics have been carried out since the 1970s, but they ha
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ve primarily focused on the North Atlantic and North Pacific accumulation zones, with much sparser coverage elsewhere. Here, we use the largest dataset of microplastic measurements assembled to date to assess the confidence we can have in global estimates of microplastic abundance and mass. We use a rigorous statistical framework to standardize a global dataset of plastic marine debris measured using surface-trawling plankton nets and coupled this with three different ocean circulation models to spatially interpolate the observations. Our estimates show that the accumulated number of microplastic particles in 2014 ranges from 15 to 51 trillion particles, weighing between 93 and 236 thousand metric tons, which is only approximately 1% of global plastic waste estimated to enter the ocean in the year 2010. These estimates are larger than previous global estimates, but vary widely because the scarcity of data in most of the world ocean, differences in model formulations, and fundamental knowledge gaps in the sources, transformations and fates of microplastics in the ocean.
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National-scale databases and reliability issue
Background report
Open access book describing tools for engaging communities in resilience strategies
Based on practical experience from participatory positive futures visioning in nine Latin American and US cities
For students and professionals of different sectors including sustainability, engineering, ec
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ology and urban planning
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February 2020Earth's Future 8(2):e2019EF001377.The water planetary boundary attempts to provide a global limit to anthropogenic water cycle modifications, but it has been challenging to translate and apply it to the regional and local scales at which water problems and management typically occur. We
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develop a cross‐scale approach by which the water planetary boundary could guide sustainable water management and governance at subglobal contexts defined by physical features (e.g., watershed or aquifer), political borders (e.g., city, nation, or group of nations), or commercial entities (e.g., corporation, trade group, or financial institution).
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Journal of Land Use Science, 16:3, 223-239, DOI: 10.1080/1747423X.2021.1933226
The Kigali Declaration on neglected tropical diseases (NTDs) is a high-level, political declaration which aims to mobilise political will and secure commitments to achieve the Sustainable Development Goal 3 (SDG3) target on NTDs and to deliver the targets set out in the World Health Organization’s
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Neglected Tropical Disease Roadmap (2021-2030).
Available in English, French, Spanish, Portuguese, German, Kiswahli, Chinese,
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this publication serves as a practical guide and useful resource for practitioners, farmers, scientists, and technicians to better understand the initiative undertaken by GGGI. In this compendium, GGGI provides the latest knowledge and capacity building materials on these topics and offers informati
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on on the most relevant topics on technologies related to climate-smart agriculture and solar irrigation – both of which can be used as training materials.
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Projects from around the world
Service Availability and Readiness Assessment Tool
English Analysis on Brazil about Health, Protection and Human Rights and Epidemic; published on 26 May 2021 by SSHAP