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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.
Nat Commun ; 11(1): 5203, 2020 10 15.
Article in English | MEDLINE | ID: mdl-33060603

ABSTRACT

Ending all forms of hunger by 2030, as set forward in the UN-Sustainable Development Goal 2 (UN-SDG2), is a daunting but essential task, given the limited timeline ahead and the negative global health and socio-economic impact of hunger. Malnutrition or hidden hunger due to micronutrient deficiencies affects about one third of the world population and severely jeopardizes economic development. Staple crop biofortification through gene stacking, using a rational combination of conventional breeding and metabolic engineering strategies, should enable a leap forward within the coming decade. A number of specific actions and policy interventions are proposed to reach this goal.


Subject(s)
Biofortification/methods , Metabolic Engineering/methods , Breeding , Crops, Agricultural/genetics , Developing Countries , Food Supply , Food, Fortified , Global Health , Humans , Malnutrition/prevention & control , Micronutrients , Minerals , Oryza , Plants/genetics , Plants, Genetically Modified , Policy Making , Provitamins , Sustainable Development/economics , Sustainable Development/trends , United Nations , Vitamins
3.
Molecules ; 24(10)2019 May 14.
Article in English | MEDLINE | ID: mdl-31091783

ABSTRACT

The transition towards a bio-based world is a challenging undertaking. This perspective paper, from an engineering point of view, aims to provide an overview of existing projects and academic disciplines highlighting the potential benefit of increased interdisciplinary exchanges. Furthermore, the current utilization of biomass to produce biogas is discussed, including an economic assessment, showing the need for new strategies of biomass valorization. One solution could be the development of separation processes for the isolation of secondary plant metabolites, which have been especially valuable for pharmaceutical applications, e.g., taxotere ® and artemisinin. The economic feasibility is demonstrated in a case study, evaluating the purification potential of curcuminoids from Curcuma longa L. Subsequently, the conclusion discusses the limitations of large-scale industrial applications and the need for new separation techniques as a step towards a bio-based world.


Subject(s)
Curcuma/chemistry , Plant Extracts/isolation & purification , Sustainable Development/economics , Biofuels , Biomass , Drug Discovery , Economic Development , Industrial Development , Intersectoral Collaboration , Secondary Metabolism
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