Willett, W. et al. Food in the Anthropocene: the EAT-Lancet Commission on healthy diets from sustainable food systems. Lancet 393, 447–492 (2019).
Webb, P. et al. The urgency of food system transformation is now irrefutable. Nat. Food 1, 584–585 (2020).
Caron, P. et al. Food systems for sustainable development: proposals for a profound four-part transformation. Agron. Sustain. Dev. 38, 41 (2018).
Leeuwis, C., Boogaard, B. K. & Atta-Krah, K. How food systems change (or not): governance implications for system transformation processes. Food Sec. 13, 761–780 (2021).
Wojtynia, N., Van Dijk, J., Derks, M., Groot Koerkamp, P. W. G. & Hekkert, M. P. A new green revolution or agribusiness as usual? Uncovering alignment issues and potential transition complications in agri-food system transitions. Agron. Sustain. Dev. 41, 77 (2021).
Jukema, G., Ramaekers, P. & Berkhout, P. De Nederlandse agrarische sector in internationaal verband (Wageningen Economic Research, 2024); https://doi.org/10.18174/648919
Lesschen, J. P. et al. Effecten op emissies bij verplaatsing Nederlandse landbouwproductie (Wageningen Univ. & Research, 2024); https://research.wur.nl/en/publications/9e151596-488b-4af6-b85a-e152935ab0ca
van Grinsven, H. J. M., van Eerdt, M. M., Westhoek, H. & Kruitwagen, S. Benchmarking eco-efficiency and footprints of dutch agriculture in European context and implications for policies for climate and environment. Front. Sustain. Food Syst. 3, 1–17 (2019).
Herrero, M. et al. Innovation can accelerate the transition towards a sustainable food system. Nat. Food 1, 266–272 (2020).
Van Lieshout, M., Dewulf, A., Aarts, N. & Termeer, C. Framing scale increase in Dutch agricultural policy 1950–2012. NJAS: Wageningen J. Life Sci. 64–65, 35–46 (2013).
Röös, E. et al. Greedy or needy? Land use and climate impacts of food in 2050 under different livestock futures. Glob. Environ. Change 47, 1–12 (2017).
Post, P. M. et al. Effects of Dutch livestock production on human health and the environment. Sci. Total Environ. 737, 139702 (2020).
Livestock density index. Eurostat https://ec.europa.eu/eurostat/databrowser/product/page/ef_fsi_lskds (2023).
Wang, J. M. et al. Impacts of international food and feed trade on nitrogen balances and nitrogen use efficiencies of food systems. Sci. Total Environ. 838, 156151 (2022).
Bai, Z. et al. Food and feed trade has greatly impacted global land and nitrogen use efficiencies over 1961–2017. Nat. Food 2, 780–791 (2021).
Voge, J. et al. Food loss and waste in community-supported agriculture in the region of Leipzig, Germany. Int. J. Agric. Sustain. 21, 2242181 (2023).
Chauhan, C., Dhir, A., Akram, M. U. & Salo, J. Food loss and waste in food supply chains. A systematic literature review and framework development approach. J. Cleaner Prod. 295, 126438 (2021).
Mottet, A. et al. Livestock: on our plates or eating at our table? A new analysis of the feed/food debate. Glob. Food Secur. 14, 1–8 (2017).
Van Zanten, H. H. E. et al. Defining a land boundary for sustainable livestock consumption. Glob. Change Biol. 24, 4185–4194 (2018).
Tichenor, N. E., Peters, C. J., Norris, G. A., Thoma, G. & Griffin, T. S. Life cycle environmental consequences of grass-fed and dairy beef production systems in the Northeastern United States. J. Cleaner Prod. 142, 1619–1628 (2017).
Hennessy, D. P., Shalloo, L., van Zanten, H. H. E., Schop, M. & Boer, I. J. M. D. The net contribution of livestock to the supply of human edible protein: the case of Ireland. J. Agric. Sci. 159, 463–471 (2021).
van Zanten, H. H. E., Mollenhorst, H., Klootwijk, C. W., van Middelaar, C. E. & de Boer, I. J. M. Global food supply: land use efficiency of livestock systems. Int. J. Life Cycle Assess. 21, 747–758 (2016).
van Selm, B. et al. Recoupling livestock and feed production in the Netherlands to reduce environmental impacts. Sci. Total Environ. https://doi.org/10.1016/j.scitotenv.2023.165540 (2023).
Lessmann, M., Kanellopoulos, A., Kros, J., Orsi, F. & Bakker, M. A spatially explicit assessment on the carrying capacity of livestock under minimum feed imports and artificial fertilizer use in Dutch agriculture. Agric. Syst. 220, 104092 (2024).
van Selm, B. et al. Interventions to increase circularity and reduce environmental impacts in food systems. Ambio https://doi.org/10.1007/s13280-023-01953-x (2023).
van Rossum, C., Sanderman-Nawijn, E., Brants, H., Dinnissen, C. & Jansen-van der Vliet, M. The Diet of the Dutch. Results of the Dutch National Food Consumption Survey 2019-2021 on Food Consumption and Evaluation with Dietary Guidelines Report No. RIVM rapport 2022-0190 (RIVM, 2023); https://rivm.openrepository.com/handle/10029/627031
Brink, E. et al. Development of healthy and sustainable food-based dietary guidelines for the Netherlands. Public Health Nutr. 22, 2419–2435 (2019).
Foley, J. A. et al. Solutions for a cultivated planet. Nature 478, 337–342 (2011).
Adhikari, S., Schop, M., de Boer, I. J. M. & Huppertz, T. Protein quality in perspective: a review of protein quality metrics and their applications. Nutrients 14, 947 (2022).
van Zanten, H. H. E. et al. Circularity in Europe strengthens the sustainability of the global food system. Nat. Food https://doi.org/10.1038/s43016-023-00734-9 (2023).
CBS. CBS StatLine. Statistics Database https://opendata.cbs.nl/#/CBS/nl/ (2024).
Nijdam, D. S., Rood, T. G. A. & van Oorschot, M. M. P. Land use related to Dutch consumption, 1990–2013. Land Use Policy 82, 401–413 (2019).
Kunming-Montreal Global Biodiversity Framework (UNEP, 2022).
Population density. Eurostat https://ec.europa.eu/eurostat/databrowser/view/tps00003/default/table (2024).
Jackson, P. et al. Food as a commodity, human right or common good. Nat. Food 2, 132–134 (2021).
Raworth, K. A doughnut for the anthropocene: humanity’s compass in the 21st century. Lancet Planet. Health 1, e48–e49 (2017).
Dagevos, H., Verhoog, D., Van Horne, P. & Hoste, R. Vleesconsumptie per hoofd van de bevolking in Nederland, 2005-2023 (Wageningen Economic Research, 2024); https://research.wur.nl/en/publications/8ede49c8-db7d-4a12-a2dc-25d13467a47e
Hennessy, D. P. The Role of Pasture-Based Ruminants in Circular Food Systems – The Case of Ireland (Wageningen Univ., 2024); https://doi.org/10.18174/672618
Van Ittersum, M. K., Rabbinge, R. & Van Latesteijn, H. C. Exploratory land use studies and their role in strategic policy making. Agric. Syst. 58, 309–330 (1998).
Bozzola, M., Lamonaca, E. & Santeramo, F. G. Impacts of climate change on global agri-food trade. Ecol. Indic. 154, 110680 (2023).
Janssens, C. et al. Global hunger and climate change adaptation through international trade. Nat. Clim. Change 10, 829–835 (2020).
Deppermann, A. et al. The market impacts of shortening feed supply chains in Europe. Food Sec. 10, 1401–1410 (2018).
Porkka, M., Guillaume, J. H. A., Siebert, S., Schaphoff, S. & Kummu, M. The use of food imports to overcome local limits to growth. Earth’s Future 5, 393–407 (2017).
Erisman, J. W. Setting ambitious goals for agriculture to meet environmental targets. One Earth 4, 15–18 (2021).
Strategic Dialogue on the Future of EU Agriculture (24AD) (European Commission, 2025).
Rockström, J. et al. The EAT–Lancet Commission on healthy, sustainable, and just food systems. Lancet 406, 1625–1700 (2025).
Tamsma, D. W. et al. Does scale matter? How local sourcing affects land use for circular food systems in the Netherlands. Agric. Syst. 229, 104436 (2025).
Mestbeleid 2019-2021 Tabel 2 Stikstof Landbouwgrond (RVO, 2021); https://www.rvo.nl/sites/default/files/2020/02/Tabel-2-Stikstof-landbouwgrond-2019-2021.pdf
de Vries, W., Kros, J., Oenema, O. & de Klein, J. Uncertainties in the fate of nitrogen II: a quantitative assessment of the uncertainties in major nitrogen fluxes in the Netherlands. Nutr. Cycling Agroecosyst. 66, 71–102 (2003).
van Dijk, W. et al. Effecten van een verlaagde stikstofbemesting op marktbare opbrengst en stikstofopname van akker- en tuinbouwgewassen (Wageningen Univ. & Research, 2007).
Lun, F. et al. Global and regional phosphorus budgets in agricultural systems and their implications for phosphorus-use efficiency. Earth Syst. Sci. Data 10, 1–18 (2018).
Vellinga, T. V. et al. Methodology used in feedprint: a tool quantifying greenhouse gas emissions of feed production and utilization. Livest. Res. Rep. 674, 121 (2013).
Technical Conversion Factors for Agricultural Commodities (FAO, 1996).
Caldeira, C., De Laurentiis, V., Corrado, S., van Holsteijn, F. & Sala, S. Quantification of food waste per product group along the food supply chain in the European Union: a mass flow analysis. Resour. Conserv. Recycl. 149, 479–488 (2019).
Agrimate – VoorzieningsBalansen. Wageningen Economic Research https://agrimatie.nl/VoorzieningsBalansen.aspx (2024).
FAOSTAT (FAO, 2024).
Blonk Consultants. Part 1: methodology and basic principles. Agri-footprint 5.0 (2019).
Vitamins and minerals – calcium. NHS https://www.nhs.uk/conditions/vitamins-and-minerals/calcium/ (2017).
Kromhout, D. et al. The 2015 Dutch food-based dietary guidelines. Eur. J. Clin. Nutr. 70, 869–878 (2016).