Combining the effects of increased atmospheric carbon dioxide on protein, iron, and zinc availability and projected climate change on global diets: a modelling study
Summary: Background: Increasing atmospheric concentrations of carbon dioxide (CO2) affect global nutrition via effects on agricultural productivity and nutrient content of food crops. We combined these effects with economic projections to estimate net changes in nutrient availability between 2010 a...
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Elsevier
2019-07-01
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Series: | The Lancet Planetary Health |
Online Access: | http://www.sciencedirect.com/science/article/pii/S2542519619300944 |
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Article |
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DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Robert H Beach, PhD Timothy B Sulser, MS Allison Crimmins, MS Nicola Cenacchi, MSc Jefferson Cole, MA Naomi K Fukagawa, PhD Daniel Mason-D'Croz, MA Samuel Myers, MD Marcus C Sarofim, PhD Matthew Smith, PhD Lewis H Ziska, PhD |
spellingShingle |
Robert H Beach, PhD Timothy B Sulser, MS Allison Crimmins, MS Nicola Cenacchi, MSc Jefferson Cole, MA Naomi K Fukagawa, PhD Daniel Mason-D'Croz, MA Samuel Myers, MD Marcus C Sarofim, PhD Matthew Smith, PhD Lewis H Ziska, PhD Combining the effects of increased atmospheric carbon dioxide on protein, iron, and zinc availability and projected climate change on global diets: a modelling study The Lancet Planetary Health |
author_facet |
Robert H Beach, PhD Timothy B Sulser, MS Allison Crimmins, MS Nicola Cenacchi, MSc Jefferson Cole, MA Naomi K Fukagawa, PhD Daniel Mason-D'Croz, MA Samuel Myers, MD Marcus C Sarofim, PhD Matthew Smith, PhD Lewis H Ziska, PhD |
author_sort |
Robert H Beach, PhD |
title |
Combining the effects of increased atmospheric carbon dioxide on protein, iron, and zinc availability and projected climate change on global diets: a modelling study |
title_short |
Combining the effects of increased atmospheric carbon dioxide on protein, iron, and zinc availability and projected climate change on global diets: a modelling study |
title_full |
Combining the effects of increased atmospheric carbon dioxide on protein, iron, and zinc availability and projected climate change on global diets: a modelling study |
title_fullStr |
Combining the effects of increased atmospheric carbon dioxide on protein, iron, and zinc availability and projected climate change on global diets: a modelling study |
title_full_unstemmed |
Combining the effects of increased atmospheric carbon dioxide on protein, iron, and zinc availability and projected climate change on global diets: a modelling study |
title_sort |
combining the effects of increased atmospheric carbon dioxide on protein, iron, and zinc availability and projected climate change on global diets: a modelling study |
publisher |
Elsevier |
series |
The Lancet Planetary Health |
issn |
2542-5196 |
publishDate |
2019-07-01 |
description |
Summary: Background: Increasing atmospheric concentrations of carbon dioxide (CO2) affect global nutrition via effects on agricultural productivity and nutrient content of food crops. We combined these effects with economic projections to estimate net changes in nutrient availability between 2010 and 2050. Methods: In this modelling study, we used the International Model for Policy Analysis of Agricultural Commodities and Trade to project per capita availability of protein, iron, and zinc in 2050. We used estimated changes in productivity of individual agricultural commodities to model effects on production, trade, prices, and consumption under moderate and high greenhouse gas emission scenarios. Two independent sources of data, which used different methodologies to determine the effect of increased atmospheric CO2 on different key crops, were combined with the modelled food supply results to estimate future nutrient availability. Findings: Although technological change, market responses, and the effects of CO2 fertilisation on yield are projected to increase global availability of dietary protein, iron, and zinc, these increases are moderated by negative effects of climate change affecting productivity and carbon penalties on nutrient content. The carbon nutrient penalty results in decreases in the global availability of dietary protein of 4·1%, iron of 2·8%, and zinc of 2·5% as calculated using one dataset, and decreases in global availability of dietary protein of 2·9%, iron of 3·9%, and zinc of 3·4% using the other dataset. The combined effects of projected increases in atmospheric CO2 (ie, carbon nutrient penalty, CO2 fertilisation, and climate effects on productivity) will decrease growth in the global availability of nutrients by 19·5% for protein, 14·4% for iron, and 14·6% for zinc relative to expected technology and market gains by 2050. The many countries that currently have high levels of nutrient deficiency would continue to be disproportionately affected. Interpretation: This approach is an improvement in estimating future global food security by simultaneously projecting climate change effects on crop productivity and changes in nutrient content under increased concentrations of CO2, which accounts for a much larger effect on nutrient availability than CO2 fertilisation. Regardless of the scenario used to project future consumption patterns, the net effect of increasing concentrations of atmospheric CO2 will slow progress in decreasing global nutrient deficiencies. Funding: US Environmental Protection Agency, Consultative Group on International Agricultural Research (CIGAR) Research Program on Policies, Institutions and Markets (PIM), and the CGIAR Research Program on Climate Change and Food Security (CCAFS). |
url |
http://www.sciencedirect.com/science/article/pii/S2542519619300944 |
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doaj-28eb924711ae454c938c280a2903c3732020-11-25T02:20:59ZengElsevierThe Lancet Planetary Health2542-51962019-07-0137e307e317Combining the effects of increased atmospheric carbon dioxide on protein, iron, and zinc availability and projected climate change on global diets: a modelling studyRobert H Beach, PhD0Timothy B Sulser, MS1Allison Crimmins, MS2Nicola Cenacchi, MSc3Jefferson Cole, MA4Naomi K Fukagawa, PhD5Daniel Mason-D'Croz, MA6Samuel Myers, MD7Marcus C Sarofim, PhD8Matthew Smith, PhD9Lewis H Ziska, PhD10RTI International, Environmental and Health Sciences, Research Triangle Park, NC, USAInternational Food Policy Research Institute, Environment and Production Technology Division, Washington, DC, USAU.S. Environmental Protection Agency, Washington, DC, USA; Correspondence to: Dr Allison Crimmins, U.S. Environmental Protection Agency, William Jefferson Clinton Building, Mail Code 6207A, Washington, DC 20460, USAInternational Food Policy Research Institute, Environment and Production Technology Division, Washington, DC, USAU.S. Environmental Protection Agency, Washington, DC, USAU.S. Department of Agriculture, Agricultural Research Service, Beltsville, MD, USACommonwealth Scientific and Industrial Research Organization (CSIRO), Global Food and Nutrition Security, Agriculture and Food, St Lucia, QLD, AustraliaHarvard T.H. Chan School of Public Health, Department of Environmental Health, Boston, MA, USAU.S. Environmental Protection Agency, Washington, DC, USAHarvard T.H. Chan School of Public Health, Department of Environmental Health, Boston, MA, USAU.S. Department of Agriculture, Agricultural Research Service, Beltsville, MD, USASummary: Background: Increasing atmospheric concentrations of carbon dioxide (CO2) affect global nutrition via effects on agricultural productivity and nutrient content of food crops. We combined these effects with economic projections to estimate net changes in nutrient availability between 2010 and 2050. Methods: In this modelling study, we used the International Model for Policy Analysis of Agricultural Commodities and Trade to project per capita availability of protein, iron, and zinc in 2050. We used estimated changes in productivity of individual agricultural commodities to model effects on production, trade, prices, and consumption under moderate and high greenhouse gas emission scenarios. Two independent sources of data, which used different methodologies to determine the effect of increased atmospheric CO2 on different key crops, were combined with the modelled food supply results to estimate future nutrient availability. Findings: Although technological change, market responses, and the effects of CO2 fertilisation on yield are projected to increase global availability of dietary protein, iron, and zinc, these increases are moderated by negative effects of climate change affecting productivity and carbon penalties on nutrient content. The carbon nutrient penalty results in decreases in the global availability of dietary protein of 4·1%, iron of 2·8%, and zinc of 2·5% as calculated using one dataset, and decreases in global availability of dietary protein of 2·9%, iron of 3·9%, and zinc of 3·4% using the other dataset. The combined effects of projected increases in atmospheric CO2 (ie, carbon nutrient penalty, CO2 fertilisation, and climate effects on productivity) will decrease growth in the global availability of nutrients by 19·5% for protein, 14·4% for iron, and 14·6% for zinc relative to expected technology and market gains by 2050. The many countries that currently have high levels of nutrient deficiency would continue to be disproportionately affected. Interpretation: This approach is an improvement in estimating future global food security by simultaneously projecting climate change effects on crop productivity and changes in nutrient content under increased concentrations of CO2, which accounts for a much larger effect on nutrient availability than CO2 fertilisation. Regardless of the scenario used to project future consumption patterns, the net effect of increasing concentrations of atmospheric CO2 will slow progress in decreasing global nutrient deficiencies. Funding: US Environmental Protection Agency, Consultative Group on International Agricultural Research (CIGAR) Research Program on Policies, Institutions and Markets (PIM), and the CGIAR Research Program on Climate Change and Food Security (CCAFS).http://www.sciencedirect.com/science/article/pii/S2542519619300944 |