[1]

United Nations Framework Convention on Climate Change (UNFCCC). 2023. Why the Global Stock Take is Important for Climate Action this Decade. UNFCCC, Bonn, Germany. https://unfccc.int/topics/global-stocktake/about-the-global-stocktake/why-the-global-stocktake-is-important-for-climate-action-this-decade#tab_home

[2]

International Energy Agency (IEA). 2024. CO 2 Emissions in 2023. IEA, Paris, France. www.iea.org/reports/co2-emissions-in-2023

[3]

Bustamante M, Roy J, Ospina D, Achakulwisut P, Aggarwal A, et al. 2023. Ten new insights in climate science. Global Sustainability 7:e19

doi: 10.1017/sus.2023.25
[4]

Conference of the Parties 28 United Arab Emirates (COP 28 UAE). COP 28 UAE Declaration on Sustainable Agriculture, Resilient Food Systems and Climate Action. 2023. Dubai, UAE. www.cop28.com/en/food-and-agriculture

[5]

Clark MA, Domingo NGG, Colgan K, Thakrar SK, Tilman D, et al. 2020. Global food system emissions could preclude achieving the 1.5° and 2.0° C climate change targets. Science 370:705−8

doi: 10.1126/science.aba7357
[6]

Ivanovich CC, Sun T, Gordon DR, Ocko IB. 2023. Future warming from global food consumption. Nature Climate Change 13:297−302

doi: 10.1038/s41558-023-01605-8
[7]

United Nations Food and Agricultural Organization (FAO). 2018. Sustainable food systems: concept and framework. FAO, Rome, Italy. www.fao.org/3/ca2079en/CA2079EN.pdf

[8]

Crippa M, Solazzo E, Guizzardi D, Monforti-Ferrario F, Tubiello FN, et al. 2021. Food systems are responsible for a third of global anthropogenic GHG emissions. Nature Food 2:198−209

doi: 10.1038/s43016-021-00225-9
[9]

Béné C. 2022. Why the Great Food Transformation may not happen – a deep-dive into our food systems' political economy, controversies and politics of evidence. World Development 154:105881

doi: 10.1016/j.worlddev.2022.105881
[10]

Food and Agriculture Organization (FAO). 2023. Achieving SDG 2 without breaching the 1.5 °C threshold: a global roadmap, Part 1 – how agrifood systems transformation through accelerated climate actions will help achieving food security and nutrition, today and tomorrow, in brief. FAO, Rome, Italy. doi: 10.4060/cc9113en

[11]

World Wide Fund for Nature. 2022. Unlocking and scaling climate solutions in food systems: an assessment of nationally determined contributions. World Wide Fund for Nature, Washington, DC, USA. https://wwfint.awsassets.panda.org/downloads/unlocking_and_scaling_climate_solutions_in_food_systems___wwf_analysis_of_ndcs_2022.pdf

[12]

World Resources Institute. 2019. Enhancing NDCs: a guide to strengthening national climate plans by 2020. World Resources Institute, Washington, DC, USA. https://ndcpartnership.org/knowledge-portal/climate-toolbox/enhancing-ndcs-guide-strengthening-national-climate-plans

[13]

Smith HB, Vaughan NE, Forster J. 2024. Residual emissions in long-term climate strategies show limited climate ambition. One Earth 7:867−84

doi: 10.1016/j.oneear.2024.04.009
[14]

Rosenzweig C, Mbow C, Barioni LG, Benton TG, Herrero M, et al. 2020. Climate change responses benefit from a global food system approach. Nature Food 1:94−97

doi: 10.1038/s43016-020-0031-z
[15]

Hughes AC, Grumbine RE. 2023. The Kunming-Montreal Global Biodiversity Framework: what it does and does not do, and how to improve it. Frontiers in Environmental Science 11:1281536

doi: 10.3389/fenvs.2023.1281536
[16]

Schneider KR, Fanzo J, Haddad L, Herrero M, Moncayo JR, et al. 2023. The state of food systems worldwide in the countdown to 2030. Nature Food 4:1090−110

doi: 10.1038/s43016-023-00885-9
[17]

Verkuijl C, Dutkiewicz J, Scherer L, Behrens P, Lazarus M, et al. 2024. FAO's 1.5 °C roadmap for food systems falls short. Nature Food 5:264−66

doi: 10.1038/s43016-024-00950-x
[18]

Kompas T, Che TN, Grafton RQ. 2024. Global impacts of heat and water stress on food production and severe food insecurity. Scientific Reports 14:14398

doi: 10.1038/s41598-024-65274-z
[19]

Biess B, Gudmundsson L, Windisch MG, Seneviratne SI. 2024. Future changes in spatially compounding hot, wet or dry events and their implications for the world's bread basket regions. Environmental Research Letters 19. 064011. https://iopscience.iop.org/article/10.1088/1748-9326/ad4619/pdf

[20]

Duff H, Debinski D, Maxwell BD. 2024. Landscape context affects patch habitat contributions to biodiversity in agroecosystems. Ecosphere 15:e4879

doi: 10.1002/ecs2.4879
[21]

Grumbine RE, Xu J, Ma L. 2021. An overview of the problems and prospects for circular agriculture in sustainable food systems in the Anthropocene. Circular Agricultural Systems 1:3

doi: 10.48130/CAS-2021-0003
[22]

Caleffi S, Hawkes C, Walton S. 2023. 45 Actions to orient food systems towards environmental sustainability: co-benefits and trade-offs. London, UK: Centre for Food Policy. https://openaccess.city.ac.uk/id/eprint/30532/1/Caleffi%20et%20al.%2C%202023%20%7C%2045%20actions%20to%20orient%20food%20systems%20towards%20environmental%20sustainability%20-%20co-benefits%20and%20trade-offs.pdf

[23]

Forest Declaration Assessment Partners. 2022. Forest declaration assessment: are we on track for 2030? Amsterdam, The Netherlands: Climate Focus. www.forestdeclaration.org

[24]

United Nations Environment Programme (UNEP). 2024. Raising Ambition, Accelerating Action: Towards Enhanced Nationally Determined Contributions for Forests. UNEP, Nairobi, Kenya. https://wedocs.unep.org/20.500.11822/45627

[25]

Zinngrebe Y, Berger J, Bunn C, Felipe-Lucia MR, Graßnick N, et al. 2024. Prioritizing partners and products for the sustainability of the EU's agri-food trade. One Earth 7:674−686

doi: 10.1016/j.oneear.2024.03.002
[26]

Bajželj B, Richards KS, Allwood JM, Smith P, Dennis JS, et al. 2014. Importance of food-demand management for climate mitigation. Nature Climate Change 4:924−29

doi: 10.1038/nclimate2353
[27]

Humpenöder F, Popp A, Merfort L, Luderer G, Weindl I, et al. 2024. Food matters: dietary shifts increase the feasibility of 1.5 °C pathways in line with the Paris Agreement. Science Advances 10:eadj3832

doi: 10.1126/sciadv.adj3832
[28]

Worldwide Fund for Nature (WWF). N.D. Food Forward NDCs. WWF, Washington, DC, USA. https://foodforwardndcs.panda.org/intervention-area/

[29]

Willett W, Rockström J, Loken B, Springmann M, Lang T, et al. 2019. Food in the anthropocene: the EAT-Lancet Commission on healthy-diets from sustainable food systems. Lancet 393:447−92

doi: 10.1016/S0140-6736(18)31788-4
[30]

The Global Climate and Health Alliance. 2023. 2023 Healthy NDC Scorecard. The Global Climate and Health Alliance, Berkeley, California, USA. https://climateandhealthalliance.org/initiatives/healthy-ndcs/ndc-scorecards/

[31]

Chiriac D, Vishnumolakala H, Rosane P. 2023. Landscape of climate finance for agrifood systems. Climate Policy Initiative, Cape Town, South Africa. www.climatepolicyinitiative.org/publication/landscape-of-climate-finance-for-agrifood-systems/

[32]

United Nations Environmental Programme (UNEP). 2023. State of finance for nature: the big nature turnaround – repurposing $7 trillion to combat nature loss. summary for decision-makers. UNEP, Nairobi, Kenya. doi: 10.59117/20.500.11822/44278

[33]

Transnational Institute. 2024. Climate in the Crosshairs. Transnational Institute, Amsterdam, The Netherlands. www.tni.org/en/publication/climate-in-the-crosshairs

[34]

Pörtner HO, Scholes RJ, Arneth A, Barnes DKA, Burrows MT, et al. 2023. Overcoming the coupled climate and biodiversity crises and their societal impacts. Science 380:6642

doi: 10.1126/science.abl4881
[35]

Ruggeri LC, Lotze-Campen H, DeClerck F, Bodirsky BL, Collignon Q, et al. 2024. The economics of the food system transformation. Global Policy Report. Food Systems Economic Commission, Oslo, Norway. https://foodsystemeconomics.org/wp-content/uploads/FSEC-Global_Policy_Report.pdf

[36]

Ambikapathi R, Schneider KR, Davis B, Herrero M, Winters P, et al. 2022. Global food systems transitions have enabled affordable diets but had less favourable outcomes for nutrition, environmental health, inclusion and equity. Nature Food 3:764−79

doi: 10.1038/s43016-022-00588-7
[37]

Juskaite G, Haug R. 2023. Multiple meanings of 'equitable food systems': Food systems and discursive politics of change. Frontiers in Sustainable Food Systems 7:1127562

doi: 10.3389/fsufs.2023.1127562
[38]

Tribaldos T, Kortetmäki T. 2022. Just transition principles and criteria for food systems and beyond. Environmental Innovation and Societal Transitions 43:244−56

doi: 10.1016/j.eist.2022.04.005
[39]

Food, Agriculture, Biodiversity, Land-use, and Energy Coalition (FABLE). 2024. How to reduce agrifood systems' future hidden costs? A Multi-Country Case Study- Background Report for the State of Food and Agriculture 2024. SDSN, Paris. https://fableconsortium.org/media/images/Docs/2024-sofa/241107_SOFA2024_FABLE_FullReport.pdf

[40]

Food and Land Use Coalition (FOLU). 2024. FOLU 2030 - a new strategy for transforming food and land use systems. FOLU, London, UK. www.foodandlandusecoalition.org/wp-content/uploads/2024/09/FOLU-2030-A-New-Strategy-for-Transforming-Food-and-Land-Use-Systems.pdf

[41]

Moallemi EA, Hall A, Leith P, Miller M, Sperling F, et al. 2024. Shortcuts for accelerating food system transitions. One Earth 7:365−69

doi: 10.1016/j.oneear.2024.01.010
[42]

Geels F, Kern WF, Clark WC. 2023. Sustainability transitions in consumption-production systems. Proceedings of the National Academy of Sciences of the United States of America 120:e2310070120

doi: 10.1073/pnas.2310070120
[43]

Otto IM, Donges JF, Cremades R, Bhowmik A, Hewitt RJ, et al. 2020. Social tipping dynamics for stabilizing earth's climate by 2050. Proceedings of the National Academy of Sciences of the United States of America 117:2354−65

doi: 10.1073/pnas.1900577117