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The Global Atlas of Edible Insects: Analysis of Diversity and Commonality Contributing to Food Systems and Sustainability

Abstract

The future of the food system on the planet is increasingly facing uncertainties that are attributable to population growth and a surge in demand for nutritious food. Traditional agricultural practices are poised to place strain on production, as well as natural resources and ecosystem services provided, particularly under a changing climate. Given their remarkable attributes, including a low environmental footprint, high food conversion ratio, rapid growth and nutritional values, edible insects can play a vital role in the global food system. Nonetheless, substantial knowledge gaps persist regarding their diversity, global distribution, and shared characteristics across regions, potentially impeding effective scaling and access to edible insects. Therefore, we compiled and analysed the fragmented database on edible insects and identified potential drivers that elucidate insect consumption, globally, focusing on promoting a sustainable food system. We collated data from various sources, including the literature for a list of edible insect species, the Global Biodiversity Information Facility and iNaturalist for the geographical presence of edible insects, the Copernicus Land Service library for Global Land Cover, and FAOSTAT for population, income, and nutritional security parameters. Subsequently, we performed a series of analytics at the country, regional and continental levels. Our study identifies 2205 insect species, consumed across 128 countries globally. Among continents, Asia has the highest number of edible insects (932 species), followed by North America (mainly Mexico) and Africa. The countries with the highest consumption of insects are Mexico (450 species), Thailand (272 species), India (262 species), DRC (255 species), China (235 species), Brazil (140 species), Japan (123 species), and Cameroon (100 species). Our study also revealed some common and specific practices related to edible insect access and utilisation among countries and regions. Although insect consumption is often rooted in cultural practices, it exhibits correlations with land cover, the geographical presence of potentially edible insects, the size of a country's population, and income levels. The practice of eating insects is linked to the culture of people in Africa, Asia, and Latin America, while increased consciousness and the need for food sustainability are driving most of the European countries to evaluate eating insects. Therefore, edible insects are becoming an increasingly significant part of the future of planetary food systems. Therefore, more proactive efforts are required to promote them for their effective contribution to achieving sustainable food production.

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References
1.
Oonincx D, Van Itterbeeck J, Heetkamp M, van den Brand H, van Loon J, van Huis A . An exploration on greenhouse gas and ammonia production by insect species suitable for animal or human consumption. PLoS One. 2011; 5(12):e14445. PMC: 3012052. DOI: 10.1371/journal.pone.0014445. View

2.
de Castro Cardoso Pereira P, dos Reis Baltazar Vicente A . Meat nutritional composition and nutritive role in the human diet. Meat Sci. 2013; 93(3):586-92. DOI: 10.1016/j.meatsci.2012.09.018. View

3.
DEFOLIART G . Insects as food: why the western attitude is important. Annu Rev Entomol. 1999; 44:21-50. DOI: 10.1146/annurev.ento.44.1.21. View

4.
Tanga C, Egonyu J, Beesigamukama D, Niassy S, Emily K, Magara H . Edible insect farming as an emerging and profitable enterprise in East Africa. Curr Opin Insect Sci. 2021; 48:64-71. DOI: 10.1016/j.cois.2021.09.007. View

5.
Henchion M, Hayes M, Mullen A, Fenelon M, Tiwari B . Future Protein Supply and Demand: Strategies and Factors Influencing a Sustainable Equilibrium. Foods. 2017; 6(7). PMC: 5532560. DOI: 10.3390/foods6070053. View