Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 3 de 3
Filter
Add more filters

Database
Language
Journal
Publication year range
1.
Nature ; 616(7955): 104-112, 2023 04.
Article in English | MEDLINE | ID: mdl-36813964

ABSTRACT

Blue foods, sourced in aquatic environments, are important for the economies, livelihoods, nutritional security and cultures of people in many nations. They are often nutrient rich1, generate lower emissions and impacts on land and water than many terrestrial meats2, and contribute to the health3, wellbeing and livelihoods of many rural communities4. The Blue Food Assessment recently evaluated nutritional, environmental, economic and justice dimensions of blue foods globally. Here we integrate these findings and translate them into four policy objectives to help realize the contributions that blue foods can make to national food systems around the world: ensuring supplies of critical nutrients, providing healthy alternatives to terrestrial meat, reducing dietary environmental footprints and safeguarding blue food contributions to nutrition, just economies and livelihoods under a changing climate. To account for how context-specific environmental, socio-economic and cultural aspects affect this contribution, we assess the relevance of each policy objective for individual countries, and examine associated co-benefits and trade-offs at national and international scales. We find that in many African and South American nations, facilitating consumption of culturally relevant blue food, especially among nutritionally vulnerable population segments, could address vitamin B12 and omega-3 deficiencies. Meanwhile, in many global North nations, cardiovascular disease rates and large greenhouse gas footprints from ruminant meat intake could be lowered through moderate consumption of seafood with low environmental impact. The analytical framework we provide also identifies countries with high future risk, for whom climate adaptation of blue food systems will be particularly important. Overall the framework helps decision makers to assess the blue food policy objectives most relevant to their geographies, and to compare and contrast the benefits and trade-offs associated with pursuing these objectives.


Subject(s)
Aquatic Organisms , Food Security , Internationality , Seafood , Sustainable Development , Humans , Diet/methods , Diet/statistics & numerical data , Diet/trends , Environment , Meat , Nutritional Status , Internationality/legislation & jurisprudence , Seafood/economics , Seafood/statistics & numerical data , Seafood/supply & distribution , Sustainable Development/economics , Sustainable Development/legislation & jurisprudence , Sustainable Development/trends , Food Security/economics , Food Security/legislation & jurisprudence , Food Security/methods , Climate Change , Health Policy , Environmental Policy , Socioeconomic Factors , Cultural Characteristics , Fatty Acids, Omega-3 , Carbon Footprint , Cardiovascular Diseases/epidemiology
2.
Nature ; 597(7876): 360-365, 2021 09.
Article in English | MEDLINE | ID: mdl-34526707

ABSTRACT

Fish and other aquatic foods (blue foods) present an opportunity for more sustainable diets1,2. Yet comprehensive comparison has been limited due to sparse inclusion of blue foods in environmental impact studies3,4 relative to the vast diversity of production5. Here we provide standardized estimates of greenhouse gas, nitrogen, phosphorus, freshwater and land stressors for species groups covering nearly three quarters of global production. We find that across all blue foods, farmed bivalves and seaweeds generate the lowest stressors. Capture fisheries predominantly generate greenhouse gas emissions, with small pelagic fishes generating lower emissions than all fed aquaculture, but flatfish and crustaceans generating the highest. Among farmed finfish and crustaceans, silver and bighead carps have the lowest greenhouse gas, nitrogen and phosphorus emissions, but highest water use, while farmed salmon and trout use the least land and water. Finally, we model intervention scenarios and find improving feed conversion ratios reduces stressors across all fed groups, increasing fish yield reduces land and water use by up to half, and optimizing gears reduces capture fishery emissions by more than half for some groups. Collectively, our analysis identifies high-performing blue foods, highlights opportunities to improve environmental performance, advances data-poor environmental assessments, and informs sustainable diets.


Subject(s)
Aquaculture , Ecosystem , Environmental Monitoring , Seafood , Sustainable Development , Animals , Aquaculture/trends , Climate Change , Diet , Ecology , Environmental Policy , Fisheries , Food Supply/methods , Greenhouse Gases , Humans , Mollusca , Nitrogen , Phosphorus , Seafood/supply & distribution , Seaweed , Sustainable Development/trends
3.
Nature ; 562(7728): 519-525, 2018 10.
Article in English | MEDLINE | ID: mdl-30305731

ABSTRACT

The food system is a major driver of climate change, changes in land use, depletion of freshwater resources, and pollution of aquatic and terrestrial ecosystems through excessive nitrogen and phosphorus inputs. Here we show that between 2010 and 2050, as a result of expected changes in population and income levels, the environmental effects of the food system could increase by 50-90% in the absence of technological changes and dedicated mitigation measures, reaching levels that are beyond the planetary boundaries that define a safe operating space for humanity. We analyse several options for reducing the environmental effects of the food system, including dietary changes towards healthier, more plant-based diets, improvements in technologies and management, and reductions in food loss and waste. We find that no single measure is enough to keep these effects within all planetary boundaries simultaneously, and that a synergistic combination of measures will be needed to sufficiently mitigate the projected increase in environmental pressures.


Subject(s)
Agriculture/methods , Agriculture/trends , Environment , Food Supply , Sustainable Development , Climate Change , Crops, Agricultural/metabolism , Nitrogen/metabolism , Phosphorus/metabolism , Uncertainty
SELECTION OF CITATIONS
SEARCH DETAIL