Insects are the waste managers of nature and could play a vital role in closing the loop of nutrients from society back into the food industry and thereby reduce the environmental impact of our food production system, as is the aim of EU’s Farm to Fork strategy. Insects can be used to convert biodegradable waste into their own biomass that can be used as food or in animal feed, thus linking waste management to food production. However, food safety regulations prevent the use of around 70% of available food waste in the EU as rearing substrate for insects. To tap into the true environmental benefits of insects as an alternative protein source, they have to be reared on mixed food waste. The main reason for the food safety regulation is the outbreak of Mad Cow disease (BSE) in the 1980s, caused by prions (misfolded proteins). The circular system that gave rise to Mad Cow disease is the most closed loop system possible. Using insects in waste management to convert bio-waste into animal feed does not entail such a closed loop system, but rather introduces an extra barrier to disease transmission. In order to fully tap into the benefits of insects as an alternative protein source, it is crucial that funds are allocated to determine whether prions are truly a risk in a circular insect food production system.
Boqvist, S., Söderqvist, K. and Vågsholm, I., 2018. Food safety challenges and one health within Europe. Acta Veterinaria Scandinavica 60: 1.https://doi.org/10.1186/s13028-017-0355-3
Centers for Disease Control and Prevention, 2018. Prions disease. Available at:https://www.cdc.gov/prions/index.html
Cobo, S., Dominguez-Ramos, A. and Irabien, A., 2018. From linear to circular integrated waste management systems: a review of methodological approaches. Resources, Conservation and Recycling 135: 279-295.https://doi.org/10.1016/j.resconrec.2017.08.003
De Vries, W., Kros, J., Kroeze, C. and Seitzinger, S.P., 2013. Assessing planetary and regional nitrogen boundaries related to food security and adverse environmental impacts. Current Opinion in Environmental Sustainability 5: 392-402.https://doi.org/10.1016/j.cosust.2013.07.004
Ducrot, C., Arnold, M., De Koeijer, A., Heim, D. and Calavas, D., 2008. Review on the epidemiology and dynamics of BSE epidemics. Veterinary Research 39: 15.https://doi.org/10.1051/vetres:2007053
Ellen Macarthur Foundation, 2015. Growth within: a circular economy vision for a competitive Europe. Ellen MacArthur Foundation, the McKinsey Center for Business and Environment. Available at:https://tinyurl.com/4er4v8df.
European Commission, 2009. Regulation (EC) No 1069/2009 of the European Parliament and of the Council of 21 October 2009 laying down health rules as regards animal by-products and derived products not intended for human consumption and repealing Regulation (EC) No 1774/2002 (Animal by-products Regulation). Official Journal of the European Union L300: 1-33. Available at:http://data.europa.eu/eli/reg/2009/1069/oj.
European Commission, 2015a. Closing the loop – an EU action plan for the circular economy. European Commission, Brussels, Belgium. Available at:https://tinyurl.com/2p97bd6m
European Commission, 2015b. Regulation (EU) 2015/2283 of the European Parliament and of the Council of 25 November 2015 on novel foods, amending Regulation (EU) No 1169/2011 of the European Parliament and of the Council and repealing Regulation (EC) No 258/97 of the European Parliament and of the Council and Commission Regulation (EC) No 1852/2001. Official Journal of the European Union L327: 1-22. Available at:http://data.europa.eu/eli/reg/2015/2283/oj.
European Commission, 2017. Commission Regulation (EU) 2017/893 of 24 May 2017 amending Annexes I and IV to Regulation (EC) No 999/2001 of the European Parliament and of the Council and Annexes X, XIV and XV to Commission Regulation (EU) No 142/2011 as regards the provisions on processed animal protein. Official Journal of the European Union L138: 92-116. Available at:http://data.europa.eu/eli/reg/2017/893/oj.
European Commission, 2019a. Communication from the Commission to the European Parliament, the Council, the European Economic and Social Committee and the Committee of the Regions – the European Green Deal. European Commission, Brussels, Belgium. Available at:https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=COM%3A2019%3A640%3AFIN.
European Commission, 2019b. Report from the Commission to the European Parliament, the Council, the European Economic and Social Committee and the Committee of the Regions on the implementation of the circular economy action plan. European Commission, Brussels, Belgium. Available at:https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX%3A52019DC0190.
European Commission, 2020a. Circular economy action plan – the European Green Deal. European Commission, Brussels, Belgium. Available at:https://tinyurl.com/yzkjjw4b.
European Commission, 2020b. Communication from the Commission to the European Parliament, the Council, the European Economic and Social Committee and the Committee of the Regions – a farm to fork strategy for a fair, healthy and environmentally-friendly food system. European Commission, Brussels, Belgium. Available at:https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX%3A52020DC0381.
European Commission, 2020c. Farm to fork strategy – for a fair, healthy and environmentally-friendly food system. European Commission, Brussels, Belgium. Available at:https://ec.europa.eu/food/horizontal-topics/farm-fork-strategy_nl.
European Commission, 2021a. Commission Regulation (EU) 2021/1372 of 17 August 2021 amending Annex IV to Regulation (EC) No 999/2001 of the European Parliament and of the Council as regards the prohibition to feed non-ruminant farmed animals, other than fur animals, with protein derived from animals. Official Journal of the European Union L295: 1-17. Available at:http://data.europa.eu/eli/reg/2021/1372/oj.
European Commission, 2021b. Commission Regulation (EU) 2021/1925 of 5 November 2021 amending certain Annexes to Regulation (EU) No 142/2011 as regards the requirements for placing on the market of certain insect products and the adaptation of a containment method. Official Journal of the European Union L393: 4-8. Available at:http://data.europa.eu/eli/reg/2021/1925/oj.
Eurostat, 2021. Municipal waste statistics. European Commission, Brussels, Belgium. Available at:https://tinyurl.com/2jbcrrn5
Ewald, N., Vidakovic, A., Langeland, M., Kiessling, A., Sampels, S. and Lalander, C., 2020. Fatty acid composition of black soldier fly larvae (Hermetia illucens) – possibilities and limitations for modification through diet. Waste Management 102: 40-47.https://doi.org/10.1016/j.wasman.2019.10.014
Fowles, T.M. and Nansen, C., 2020. Insect-based bioconversion: value from food waste. In: Närvänen, E., Mesiranta, N., Mattila, M. and Heikkinen, A. (eds.) Food waste management: solving the wicked problem. Springer International Publishing, Cham, Switzerland, pp. 321-346.https://doi.org/10.1007/978-3-030-20561-4_12
Lalander, C., Diener, S., Magri, M.E., Zurbrügg, C., Lindström, A. and Vinnerås, B., 2013. Faecal sludge management with the larvae of the black soldier fly (Hermetia illucens) – from a hygiene aspect. Science of the Total Environment 458-460: 312-318.https://doi.org/10.1016/j.scitotenv.2013.04.033
Lalander, C., Fidjeland, J., Diener, S., Eriksson, S. and Vinnerås, B., 2015. High waste-to-biomass conversion and efficientSalmonella spp. reduction using black soldier fly for waste recycling. Agronomy for Sustainable Development 35: 261-271.https://doi.org/10.1007/s13593-014-0235-4
Lalander, C., Senecal, J., Calvo, M.G., Ahrens, L., Josefsson, S., Wiberg, K. and Vinnerås, B., 2016. Fate of pharmaceuticals and pesticides in fly larvae composting. Science of the Total Environment 565: 279-286.
'Fate of pharmaceuticals and pesticides in fly larvae composting ' () 565 Science of the Total Environment : 279 -286.
Lopes, I.G., Lalander, C., Vidotti, R.M. and Vinnerås, B., 2020. Reduction of bacteria in relation to feeding regimes when treating aquaculture waste in fly larvae composting. Frontiers in Microbiology 11: 1616.https://doi.org/10.3389/fmicb.2020.01616
Purschke, B., Scheibelberger, R., Axmann, S., Adler, A. and Jäger, H., 2017. Impact of substrate contamination with mycotoxins, heavy metals and pesticides on the growth performance and composition of black soldier fly larvae (Hermetia illucens) for use in the feed and food value chain. Food Additives & Contaminants: Part A 34: 1410-1420.https://doi.org/10.1080/19440049.2017.1299946
Rockström, J., Steffen, W., Noone, K., Persson, Å., Chapin, F.S., Lambin, E.F., Lenton, T.M., Scheffer, M., Folke, C., Schellnhuber, H.J., Nykvist, B., De Wit, C.A., Hughes, T., Van der Leeuw, S., Rodhe, H., Sörlin, S., Snyder, P.K., Costanza, R., Svedin, U., Falkenmark, M., Karlberg, L., Corell, R.W., Fabry, V.J., Hansen, J., Walker, B., Liverman, D., Richardson, K., Crutzen, P. and Foley, J.A., 2009. A safe operating space for humanity. Nature 461: 472-475.https://doi.org/10.1038/461472a
Rodrigues, D.P., Calado, R., Pinho, M., Rosário Domingues, M., Antonio Vázquez, J. and Ameixa, O.M.C.C., 2022. Bioconversion and performance of black soldier fly (Hermetia illucens) in the recovery of nutrients from expired fish feeds. Waste Management 141: 183-193.https://doi.org/10.1016/j.wasman.2022.01.035
Smetana, S., Palanisamy, M., Mathys, A. and Heinz, V., 2016. Sustainability of insect use for feed and food: life cycle assessment perspective. Journal of Cleaner Production 137: 741-751.https://doi.org/10.1016/j.jclepro.2016.07.148
Steffen, W., Richardson, K., Rockström, J., Cornell, S.E., Fetzer, I., Bennett, E.M., Biggs, R., Carpenter, S.R., De Vries, W., De Wit, C.A., Folke, C., Gerten, D., Heinke, J., Mace, G.M., Persson, L.M., Ramanathan, V., Reyers, B. and Sörlin, S., 2015. Planetary boundaries: guiding human development on a changing planet. Science 347: 1259855.https://doi.org/10.1126/science.1259855
United Nations Environment Programme, 2021. Food waste index report 2021. UN Environment Programme, Nairobi, Kenya. Available at:https://tinyurl.com/mvskv2mx
Vågsholm, I., Arzoomand, N.S. and Boqvist, S., 2020. Food security, safety, and sustainability – getting the trade-offs right. Frontiers in Sustainable Food Systems 4: 16.https://doi.org/10.3389/fsufs.2020.00016
Van der Fels-Klerx, H.J., Meijer, N., Nijkamp, M.M., Schmitt, E. and Van Loon, J.J.A., 2020. Chemical food safety of using former foodstuffs for rearing black soldier fly larvae (Hermetia illucens) for feed and food use. Journal of Insects as Food and Feed 6: 475-488.https://doi.org/10.3920/jiff2020.0024
Van Looveren, N., Vandeweyer, D., van Schelt, J. and Van Campenhout, L., 2022. Occurrence of Clostridium perfringens vegetative cells and spores throughout an industrial production process of black soldier fly larvae (Hermetia illucens). Journal of Insects as Food and Feed: 1-10.https://doi.org/10.3920/jiff2021.0073
Van Puijenbroek, P.J.T.M., Bouwman, A.F., Beusen, A.H.W. and Lucas, P.L., 2015. Global implementation of two shared socioeconomic pathways for future sanitation and wastewater flows. Water Science and Technology 71: 227-233.https://doi.org/10.2166/wst.2014.498
Vinnerås, B., Björklund, A. and Jönsson, H., 2003. Thermal composting of faecal matter as treatment and possible disinfection method – laboratory-scale and pilot-scale studies. Bioresource Technology 88: 47-54.https://doi.org/10.1016/S0960-8524(02)00268-7
Wobeser, G., 1997. Avian botulism – another perspective. Journal of Wildlife Diseases 33: 181-186.https://doi.org/10.7589/0090-3558-33.2.181
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Insects are the waste managers of nature and could play a vital role in closing the loop of nutrients from society back into the food industry and thereby reduce the environmental impact of our food production system, as is the aim of EU’s Farm to Fork strategy. Insects can be used to convert biodegradable waste into their own biomass that can be used as food or in animal feed, thus linking waste management to food production. However, food safety regulations prevent the use of around 70% of available food waste in the EU as rearing substrate for insects. To tap into the true environmental benefits of insects as an alternative protein source, they have to be reared on mixed food waste. The main reason for the food safety regulation is the outbreak of Mad Cow disease (BSE) in the 1980s, caused by prions (misfolded proteins). The circular system that gave rise to Mad Cow disease is the most closed loop system possible. Using insects in waste management to convert bio-waste into animal feed does not entail such a closed loop system, but rather introduces an extra barrier to disease transmission. In order to fully tap into the benefits of insects as an alternative protein source, it is crucial that funds are allocated to determine whether prions are truly a risk in a circular insect food production system.
All Time | Past 365 days | Past 30 Days | |
---|---|---|---|
Abstract Views | 0 | 0 | 0 |
Full Text Views | 257 | 162 | 31 |
PDF Views & Downloads | 312 | 190 | 23 |