Selected aspects of edible insect rearing and consumption-A review
Abstract
The presented work brings a comprehensive study of edible insect farming with an impact on the environment and human health. The review focuses not only on commonly monitored parameters such as carbon footprint or feed conversion but also on waste management. It also highlights the positive and negative aspects of eating edible insect regarding human health. Compared to other livestock, the rearing of edible insect brings less environmental burden and higher environmental protection. This review aimed to summarise current knowledge and broaden the complex view of the issue.
Full text
149 Czech Journal of Food Sciences, 39, 2021 (3): 149–159 Review https://doi.org/10.17221/288/2020-CJFS Supported bythe Tomas Bata University (TBU) inZlín, theCzech Republic (Internal grant No.IGA/FT/2021/008) andtheBrno University ofTechnology (BUT) inBrno, theCzech Republic (Project No.FEKT-S-20-6215). Selected aspects ofedible insect rearing and consumption –Areview Jiří Mlček1, Anna Adámková1*, Martin Adámek2,3, Marie Borkovcová1, Martina Bednářová4, Lenka Kouřimská5, Veronika Hlobilová1 1Department ofFood Analysis and Chemistry, Faculty ofTechnology, Tomas Bata University, Zlín, Czech Republic 2Department ofMicroelectronics, Faculty ofElectrical Engineering and Communication, Brno University ofTechnology, Czech Republic 3Department ofPhysics and Materials Engineering, Faculty ofTechnology, Tomas Bata University, Zlín, Czech Republic 4Department ofInformation Technology, Mendel University, Brno, Czech Republic 5Department ofMicrobiology, Nutrition and Dietetics, Faculty ofAgrobiology, Food and Natural Resources, Czech University ofLife Sciences Prague, Prague, Czech Republic *Corresponding author: [email protected] Citation: Mlček J., Adámková A., Adámek M., Borkovcová M., Bednářová M., Kouřimská L., Hlobilová V. (2021): Selected aspects ofedible insect rearing and consumption –Areview. Czech J. Food Sci., 39: 149–159. Abstract: Thepresented work brings acomprehensive study ofedible insect farming with animpact onthe environment and human health. Thereview focuses not only oncommonly monitored parameters such ascarbon footprint orfeed conversion but also onwaste management. Italso highlights thepositive and negative aspects ofeating edible insect regarding human health. Compared toother livestock, therearing ofedible insect brings less environmental burden and higher environmental protection. This review aimed tosummarise current knowledge and broaden thecomplex view ofthe issue. Keywords: allergy; carbon footprint; chitin; global warming potential Insects asanimal species exist inthe world for more than 300millionyears, and since thebeginning ofmankind, they are considered a"miracle ofnature" for medical, religious, and food use purposes (Ramos-Elorduy 1998; Meyer-Rochow 2017). Edible insects have been used byhumans since time immemorial and have been one ofthe most available food ingredients of animal origin (Sponheimer et al. 2005; Lesnik 2014). Currently, edible insects are consumed bymore than one-third ofthe world's population (more than 2billionpeople) (vanHuis etal. 2013). Considering thegrowing world population [according toUN(2015), itmay beupto10billion people in2050], theneed tolook for alternative sources offood implies, and edible insects appear tobeasuitable alternative source ofprotein. The nutritional value ofedible insects varies greatly, mainly due tothe variability ofspecies and consumption possible atdifferent developmental stages. Theprotein content in the insect body ranges from 13% to 81% of dry matter (Ramos-Elorduy et al. 1997; Xiaoming etal. 2008). Edible insects contain nutritionally valuable amino acids, including ahigh content ofphenylalanine and tyrosine. According toXiaoming etal. (2008),
150 Review Czech Journal of Food Sciences, 39, 2021 (3): 149–159 https://doi.org/10.17221/288/2020-CJFS thecontent ofessential amino acids may be46–96% ofthe total amino acids. Some insect species also contain large amounts oflysine, tryptophan, and threonine, which are deficient insome cereal proteins (Kouřimská and Adámková 2016). Therefore, itispossible tofortify conventional bakery products toincrease their content. Fat variability depends onmany factors and isusually inthe range of10% to55% ofdry matter (Bednářová etal. 2013). Insect fat can bewidely used, e.g.for food purposes in terms of saturated fatty acids (palmitic acid) content. The total content of polyunsaturated fatty acids, which provide prophylaxis against cardiovascular diseases, such asoleic, linoleic, orlinolenic, can beup to70% oftotal fatty acids (Tzompa-Sosa etal. 2014). Some species ofedible insects can beavaluable source ofminerals, e.g.iron and zinc contents are especially important indeveloping countries (Rumpold and Schlüter 2013; Manditsera 2019). Inthe case ofcommonly bread mealworm larvae, Zielińska etal. (2015) report azinc content of11.2mgkg –1 and Finke (2004) 137mgkg –1 . Edible insects also contain vitamins such asBvitamins, vitaminsA, D, E, K, andC. Ingeneral, most edible insect species provide sufficient energy and protein, meet amino acid requirements for humans, have ahigh content ofmono and polyenoic fatty acids, and are rich intrace elements such ascopper, iron, magnesium, manganese, phosphorus, selenium, andzinc, aswell asriboflavin, pantothenic acid, biotin and insome cases folic acid (Rumpold and Schlüter 2013). InCentral European countries, theinsect iscurrently most often sold aspart ofbakery products, protein bars, mixtures for the preparation of meatballs orvegetable cakes with insects, orasadelicacy prepared byroasting orother cooking techniques. Edible insect asafood bears certain positives and negatives, like other food commodities. VanHuis etal. (2013) listed thefollowing benefits ofedible insect rearing: – Insects can high feed conversion (Mancini etal.2019; Chow etal. 2020; Imathiu 2020); – Insect rearing can be environmentally friendly, reducing environmental pollution (Chow etal. 2020); – Insects can convert organic waste; – Insects produce relatively low quantities of greenhouse gases and ammonia (Mancini etal. 2019; Orsi etal. 2019); – Insect farming requires much less water and land than livestock farming (Garino etal. 2019); – Insects pose alow risk ofzoonotic transmission; – Insects are more efficient inrearing. Van Huis etal. (2013) stated that conversion ofthe house cricket (Acheta domestica) feed istwice aseffective aschicken, fourtimes higher than apig, and more than twelvetimes higher than cattle. Fortheproduction of1kg oflive weight ofinsect, feed consumption of1.7kg for domestic cricket (Acheta domestica) isneeded (Collavo etal. 2005). For comparison, Ayieko (2007) stated the feed requirements to produce 1kg ofmeat asfollows: 7.7kg for beef, 6.3kg for lamb, 3.6kg for pork, and 2.2kg for chicken. Pimentel and Pimentel (2003) calculated aneven lower conversion rate for conventional livestock. Schlup and Brunner (2018) mention that insect needs up to ten times less feed incomparison tocattle toproduce thesame amount ofanimal protein. One ofthe basic advantages ofinsect isthe conversion oforganic waste into protein. Forexample, black soldier fly (Hermetia illucens), mealworm (Tenebrio molitor), and house fly (Musca domestica) are very effective inorganic waste biodegradation. Together, they can process 1.3billiontons ofbio-waste peryear (Veldkamp etal. 2012). Insect farming also has anenvironmental impact (Figure1). In the study of Premalatha et al. (2011) on greenhouse gas and ammonia emissions, greenhouse gasses production ofpig and bovine breeding were compared tothe rearing ofmealworm (Tenebrio molitor), migratory locust (Locusta migratoria), house cricket (Acheta domesticus), and orange-spotted cockroach (Blaptica dubia). The study has shown that insects produced comparable oreven lower amounts ofboth greenhouse gases and CO2 alone, perkilogram ofmeat obtained, when compared topigs, and much less than cattle. Ammonia formation inall four insect species was lower than that ofthe farm animals. Thefact that insect rearing requires much less water and soil than livestock breeding is also significant (Pimentel and Pimentel 2003; Oonincx and de Boer 2012). Entomophagy may also involve some risks that must beconsidered. Collecting thefreely living insect could seriously interfere with thelandscape ecosystem. Itis therefore recommended toconsume insect reared under controlled and defined conditions. Byselecting anappropriate and safe Starving people reduction Safe food (EFSA)Employment increase Controlled farming Nature conservation Figure 1. Impact ofcontrolled farming onthe environment (inspired byHalloran etal. 2018)
151 Czech Journal of Food Sciences, 39, 2021 (3): 149–159 Review https://doi.org/10.17221/288/2020-CJFS feed, theconsequent health ofedible insect isensured. Other possible hazards ofeating edible insect include eating unsuitable developmental stages, inadequate handling, and inappropriate culinary treatment. Eating can also trigger anallergic response. Theinsect has anexternal skeleton made ofchitin, which isdifficult for humans todigest. Today, due tochitin-free food, there isadecrease inchitinase production inhumans. Some people have such asmall amount ofthe enzyme that anallergic reaction occurs after eating aninsect (Mlček etal. 2014). Themost threatened are people suffering from allergies toseafood, such asshrimps. If thecorrect starving, heat treatment, and appropriate storage conditions are not ensured, theedible insect can become dangerous, even from themicrobiological point of view (Giaccone 2005; Klunder et al. 2012). EFSA (2015) recommends further research ofedible insects while focusing on rearing safety and health risks for consumers. This review aimed tosummarise thefindings and spread information onedible insects asapossible alternative source ofprotein for food and feed. INSECT REARING FOR FOOD AND FEED PURPOSES, AND ITS ECONOMIC AND ENVIRONMENTAL EFFICIENCY At present, livestock production is the single largest anthropogenic use ofland. Itmakes up 70% ofall agricultural land use (including feed crop production) and 30% ofthe land surface area on Earth. Itis also alarge source ofgreenhouse gases and themain cause of biodiversity loss through land degradation, water pollution, and soil erosion (Steinfeld etal. 2006). Furthermore, indeveloped countries, resources, including vast areas ofland, are used togenerate animal protein for pet animals. Another advantage is the fact that theedible insects also contain micronutrients (minerals and vitamins) (Dreassi etal. 2017; Montowska etal. 2019; Yoo etal. 2019; Kwon etal. 2020; Wu etal. 2020). A further benefit of edible insects may be the number oflipids contained therein. Forexample, Berezina (2017) claimed that theamount oflipids inthe insect is30–50% onadry matter basis. Megido etal. (2018) mentioned that mealworm contains ~33% of lipids. Having this knowledge, the potential of the insect ashuman food should not beignored any longer, especially its ability to provide the needed protein for hungry people all around theworld. Thesignificance ofentomophagy ishighlighted even more bythe fact that every sixth person onEarth dies from malnutrition and hunger (FAO etal. 2017). Incase theinsect isused asamajor food resource, itwill benecessary tohave aconsiderable amount available. Freely living insect will probably not meet thedemand; moreover, ecosystems may be damaged if we will be using wildlife sources (Mitsuhashi 2010). For food use, insect used should be reared on farms, which would produce a clean specimen with known nutritional values. This will help tocontribute tosustainable ecosystems while avoiding overexploitation offreely living insect. Several farms already produce insect inlarge quantities, for example, projects toeradicate fruit flies and screwworms. Most ofthe larvae raising procedures are automatic, and insect continuous cell lines have been created. This could beamodel for thevast scale edible insect production inthe future (Mitsuhashi 2002). Therearing procedures are well developed, for example, for silkworms, mealworm, and others (Finke 2004; Katayama etal. 2005). Silkworm feeds onmulberry leaves, and mulberry has many cultivars available. Silkworm can bemade polytrophic. Artificial feed tasting like mulberry has already been developed. Pupa inacocoon oradult moth might be suitable as a food source (Katayama et al. 2005). However, it is not possible to cultivate some insect group cells using nowadays techniques, but inthe future, wemay find asolution tothis (Mitsuhashi 2010). Carbon Footprint. Greenhouse gasses (GHG) production isone ofthe possible causes ofclimate change. Themost important greenhouse gases are nitrous oxide(N2O), carbon dioxide(CO2), and methane(CH4). Up to18% oftotal anthropogenic GHGemissions and 64% ofall anthropogenic NH3emissions are produced bythe livestock sector (Steinfeld etal. 2006). Byassigning aCO2value of1global warming potential (GWP), the warming potentials can be expressed on a CO2- -equivalent basis: CH4 has aGWPof25, and N2O has aGWPof298(IPCC 2007). Avast amount ofNH3, produced bylivestock, leads tosoil acidification and nitrification. Increased practice ofentomophagy could help with this problem (Premalatha etal. 2011). Furthermore, other factors that lead togreenhouse gas emissions are closely linked with theproduction offoods from animal products or animal husbandry (production of greenhouse gases infeed production, energy for theproduction and processing ofanimal products, transportation). Oonincx and Dierenfeld (2012) evaluated thecontribution tothe GWP and energy utilisation (EU) and compared them with other animal products – milk, pork, chicken, and beef. Thecontribution toGWP was lower for mealworm than for other commodities –reduced bytwelvetimes, compared tobeef (Figure2). Theenergy used toproduce 1kg ofedible mealworm
152 Review Czech Journal of Food Sciences, 39, 2021 (3): 149–159 https://doi.org/10.17221/288/2020-CJFS protein was comparable toor higher than other commodities (e.g.upto79% for milk) (Figure3). Thereason isthe heating ofthe insect farms atlow ambient temperatures. Considering this, mitigation measures have been proposed, whereby larger larvae produce theexcess ofmetabolic heat, thereby heating thesmaller larvae that require it(Oonincx and Dierenfeld 2012). Oonincx and Dierenfeld (2012) also compared thearea utilisation ofinsect farming with other animal food commodities (Figure 4). The utilisation of area isagain lower for edible insect than for other compared commodities (uptofourteentimes). Oonincx etal. (2010), who also dealt with greenhouse gasses production, states inhis work that GHGemissions of4ofthe5insect species were much lower than ofpigs when expressed perkg ofmass gain and only about 1% from GHG emissions produced by ruminants. Themeasured NH3emission levels ofall insect species inthis experiment were lower than reported NH3emission levels for conventional livestock. Moreover, insect average daily gain(ADG) inthis study was higher than inconventional livestock, while CO2production related toweight gain was comparable orlower, suggesting higher insect feed conversion efficiency. CH4was produced only bytermites, cockroaches, and scarab beetles. Thereason ishindgut Methanobacteriaceae fermentation (Oonincx etal. 2010). Nutrient conversion. Thebody growth: CO2production ratio indicates thefeed conversion efficiency, and thereby itisarelevant environmental impact indicator. Themain three factors that cause thedifference inlife cycle assessment are: feed conversion efficiency, enteric CH4 emissions, and reproduction rates (de Vries and deBoer 2010). Many studies show that insects and small animals, in general, are relatively efficient converters (Beets 1997). Theinsect ismore effective than macrolivestock inassimilating matter –more than tentimes asmany plant resources are needed toproduce one kilogram ofmeat than toproduce one kilogram ofinsect zoomass. Thus, the production of insect-based foods puts much less pressure on ecosystem services than livestock-based foods (Premalatha etal. 2011). Theexplanation ofthis difference isquite simple. Theinsect ispoikilothermic and therefore does not spend asmuch food energy and nutrients as the warm-blooded livestock (Lindroth 1993). Therefore, insect produces much more animal protein perkilogram ofphytomass consumed than ordinary livestock. Insects have much higher fertility and a much faster growth rate: thousands ofoffspring are produced byasingle insect individual, while only afew are produced bynormal livestock. These Figure 2. Contribution toglobal warming potential (GWP) bymealworm (Tenebrio molitor) production with comparison toother commodities Data were normalised to1kg ofdigestible proteins from mealworm larvae [processed according toOonincx and Dierenfeld (2012)] Figure 3. Energy utilisation toproduce 1kg ofdigestible proteins ofmealworm larvae (Tenebrio molitor) compared toother commodities Data were normalised to1kg ofdigestible proteins from mealworm larvae [processed according toOonincx and Dierenfeld (2012)] Figure 4. Energy utilisation toproduce 1kg ofdigestible proteins ofmealworm larvae (Tenebrio molitor) compared toother commodities Data were normalised to1kg ofdigestible proteins from mealworm larvae [processed according toOonincx and Dierenfeld (2012)] Larvae TM Milk Pork Chicken Beef 0 4 8 12 16 Utilised area Normal According to Oonincx and Dierenfeld (2012) Larvae TM Milk Pork Chicken Beef 0 2 4 6 8 10 12 14 Contribution to GWP Normal According to Oonincx and Dierenfeld (2012) 0.0 0.4 0.8 1.2 1.6 Larvae TM Milk Pork Chicken Beef Energy utilisation Normal According to Oonincx and Dierenfeld (2012)
153 Czech Journal of Food Sciences, 39, 2021 (3): 149–159 Review https://doi.org/10.17221/288/2020-CJFS offspring mature within afew days, while inpoultry and ruminants, it takes months or even years. Combined with avery good nutritive value, these properties have impressed space scientists toinclude theuse ofinsect ashuman food into space travel and habitation plans (Huetal. 2010). That isnot all, asbymodelling thesituation inspace modules, where theneed will betoensure food sources within a much smaller space, proposals were also made tosupport and develop asustainable civilisation onEarth (Katayama etal. 2005). There isaneven better outcome for insect while comparing thepossibilities ofbiomass production inan area. Some collectively living insect species are very successful animals regarding biomass and diversity (Hunter 2010). Social insects – notably termites, wasps, bees, and ants have developed theability tolive in colonies with much higher population density than beetles, often since they are "clones" –individuals genetically identical. Although social insects makeup only twopercent ofinsect species, they makeup more than half ofthe total insect mass (Wilson 1990). Thesocial insect needs toutilise resources more effectively toincrease biomass, which isaccomplished bycreating communities that work together tocollect food inwide areas (Hunter 2010). THE RISKS, ALLERGIES, TOXICITY, AND MICROBIAL RISKS OF EDIBLE INSECT Consumption and handling ofinsects are not without risk. Collecting insect inunsuitable areas, wrong culinary preparation, the consumption of inappropriate developmental stages, and handling without protective equipment may result inunfavourable reactions. Risks. Bouvier (1945) observed inhis research that consuming grasshoppers and locusts without removing thelegs may lead tointestinal constipation, caused bythe large spines onthe tibia. Often theonly solution isthe surgical removal ofthese legs. Theautopsy showed that thedeaths ofthe monkeys during thelocus raids had thesame cause. Toxicity. TheAfrican silkworm pupae Anaphespp. has a high activity of relatively heat resistant thiaminase (Nishimune etal. 2000). Insouthwestern Nigeria, acute ataxic syndrome epidemics occur annually during therainy season. Reported symptoms, which appeared after theconsumption ofacarbohydrate meal, were impaired consciousness, intention tremors, and ataxia (Adamolekun etal. 1997). Enzyme reaction can decrease cellular free thiamine concentration orinfluence carbohydrate metabolism or energy production. Theenzyme could influence themetamorphosis ofthe insect. Its gene expression inthe different steps ofsilkworm metamorphosis, which has many apoptosis-like steps, is interesting. A thiaminase I gene has already been sequenced using a cloned bacterial gene (Abe etal. 1987; Costello etal. 1996). Theactivity ofthiaminase inJapanese silkworms (Bombyx mori) ismore than two-thirds lower that of Anaphe spp. This suggests theneed for proper heat treatment for detoxificationofthe African silkworm ifitshould beasafe source ofhigh-quality protein (Nishimune etal. 2000). Pesticide applications against locusts and grasshoppers must also betaken into consideration, asitcan cause problems due totoxic residues (vanHuis 2003; Yen 2009). Allergy. Overly zealous T-helper type 2 response to environmental antigens is the cause of the allergy, which can have fatal consequences. Our bodies constantly encounter potential allergens, either through breathing oreating. Sensitivity toinsect proteins may manifest itself, for example, byasthma, rhinitis, conjunctivitis, dermatitis, contact urticaria, orrhinoconjunctivitis (Bernstein et al. 1983; Schroeckenstein etal. 1990; Freye et al. 1996). In extreme cases, a strong allergic reaction may occur –anaphylactic shock. Itisaserious allergic reaction that occurs quickly and can cause death (Belluco etal. 2013). Allergies usually occur inthe work environment where theemployee encounters insects. Allergic reactions toinsect are mostly reported concerning chitin, which isthe second most abundant biopolymer in nature. Its role in nature is mostly the protection of parasites, fungi, and crustaceans from the dangers in their environments (Elias et al. 2005). Chitin isnot considered acommon allergen; however, it can cause sensitisation due to frequent exposure (Burton and Zaccone 2007). Itisalso arecognition element for tissue infiltration byinnate cells implicated in allergic and helminth immunity, and this process can be negatively regulated by a vertebrate chitinase (Reeseetal. 2007). Theamount ofchitin inedible insects isintherange of2–5% ofdry matter (Berezina 2017). Allergic reactions have been documented mainly for mealworm andOrthoptera, either for contact orrespiratory form (Linares etal. 2008; Garino etal. 2019). Combined allergies tomore than one species ofinsect are not uncommon (Bleßmann-Gurk et al. 2007). Studies show that inhaled particulates from mealworm exoskeletons are potent sensitisers and elicit IgE-mediated occupational asthma, which confirms thefact that Tenebrionid family beetles are potentially significant allergens for employees working with grains orgrain products (Bernstein etal. 1983; Schroeckenstein etal. 1990).
154 Review Czech Journal of Food Sciences, 39, 2021 (3): 149–159 https://doi.org/10.17221/288/2020-CJFS For themealworm, Marono etal. (2015) report anaverage of 5% of chitin, unlike Finke (2015), who states 1.2%. Thecontent ofchitin infield cricket (Gryllus Testaceus Walker) determined byWang etal. (2004) was 8.7% ofchitin onadry matter. Finke (2007) detected 81.5gkg–1 on a dry matter of chitin in the nymph of the house cricket (Acheta domesticus). Goodman (1989) reports anaverage of10%chitin ininsects. However, chitin does not appear inthe pure form but isbound tomany amino acids, most likely cuticular protein. Yet, thechitin content isusually evaluated asthe total content ofthese chitinous substances (Barker etal. 1998; Finke 2002). Chitin exposure originating from shellfish, moulds, dust mites, orinsects might bethe primary external trigger inallergy development. Discontinuous low-level exposure can cause allergies inpeople with agenetic predisposition. It is crucial to understand the allergenic role ofchitin, partially because ofits abundance intheenvironment but also because itiscommonly used inhealthcare and cosmetics. Various studies suggest chitin can quicken wound healing; its molecules are already used inmedicines today (Muzzarelli 1997). Chitin can activate macrophages, which is beneficial for stimulating tissue repair; yet chitin might also recruit polymorphonuclear leukocytes, which starts the allergic reactions (Kodelja et al. 1997). Toxicological tests are mostly performed onanimals whose chitinase activity could be higher. Therefore, further research isrequired toreveal thegenetic basis ofdifferences inchitinase functions and allergy inhumans. Moreover, chitinase has animportant role inthe innate immunity tovarious infectious agents, including parasites. Therefore, we can hypothesise that, when produced in a dysregulated fashion, they also have a relevant role inthe pathogenesis of allergy and/or asthma (Elias etal. 2005). It has also been found that aprototypic chitinase, acidic mammalian chitinase, was induced during TH2inflammation byanIL-13-dependent mechanism. Ithas also been shown tohave acrucial role inthe pathogenesis ofTH2inflammation and activation oftheIL-13effector pathway and isoverexpressed inhuman asthmatic tissues. Thefinding that chitinases contribute tothe host's antiparasitic responses and asthmatic TH2inflammation supports thenotion that asthma could beaparasite with anindependent antiparasitic response (Elias etal. 2005; Burton and Zaccone 2007; Sutherland etal. 2009). Chitin isarecognition element for tissue infiltration bycongenital cells involved innematode allergy and immunity, and this process may benegatively regulated by vertebrate chitinases. Mammalian chitinase (AMCase) and chitotriosidase (ChT) have chitinolytic activity, but theknowledge about their role innasal polyps isscarce. Nasal polyps appear toeliminate chitinase levels, and thepresence orgrowth ofpathogens with thecontent ofchitin may increase chitinase expression, which leads totheformation and growth ofnasal polyp insusceptible individuals (Park etal. 2009). Another potential allergen is tropomyosin protein, which isfound inmuscle and non-muscle cells ofall vertebrate and invertebrate species. Itmay have more isoforms (Belluco etal. 2013). Cross-reaction studies incrustaceans show that tropomyosin isone oftheir major allergens, responsible for the immunological relationship between crustaceans, house dust mites and cockroaches. Shrimps can cross-react with arthropods such asmites and insect species, including cockroaches, grasshoppers, and fruit flies (Leung etal. 1996; Reese etal. 1999). Verhoeckx etal. (2014) and vanBroekhoven etal. (2016) also report similar findings intheir study. Theresults ofvanBroekhoven etal. (2016) further show that heat treatment can weaken allergies, but therisk isnot always ruled out. Microbial risk. Insects, especially their intestines, can beasuitable environment for thegrowth ofmicrobial fauna (Rumpold and Schlüter 2013), which may beharmful tohumans. Therefore, therisk oftransmission of infectious diseases must also be considered. However, from thepoint ofview ofhuman nutrition, thecomposition ofthe microflora oflive edible insect species may not behazardous tothe final food if theinsect isproperly reared and processed using preservation and storage techniques such ascooking orrefrigeration (Belluco etal. 2013). Edible insects can become microbiologically dangerous if proper rearing, shedding, heat treatment, and suitable storage conditions are not ensured (Giaccone 2005; Klunder etal. 2012). Klunder etal. (2012) documents the microbiological content offresh, processed, and stored edible insects. Thestudy focused onthe larvae ofmealworm (Tenebrio molitor) and crickets (Acheta domesticus and Brachytrupes sp.). Theresults showed that infresh insects, various species ofbacteria ofthe family Enterobacteriaceae can bedetected and subsequently isolated, aswell assporulating bacteria, which are most likely toenter theinsect upon contact with thesoil. Cooking insects for 5min isaneffective procedure for removing Enterobacteriaceae (Klunder etal. 2012). Grabowski (2017) documents that cooking for 10min and drying for 24h at80°C reduced thetotal number ofmicroorganisms [total microbial count (TMC)] below adangerous level for 5days ofstorage. If thedrying
155 Czech Journal of Food Sciences, 39, 2021 (3): 149–159 Review https://doi.org/10.17221/288/2020-CJFS temperature was 60°C, theTMC was not reduced below themaximum allowable limit, and thefood remained unfit for human consumption. Thelast heat treatment tested was cooking for 30min followed bydrying at80°C for 12h and drying at100°C for 12h. Interestingly, this heat treatment reduced theTMC below themaximum allowable limit only on the first day of storage, and inthe following days, theTMC rose above theallowed safe limit. Onthe other hand, Staphylococcus was not detected inthese samples, incontrast toother thermal treatments. Microbial analyses performed byAdámek et al. (2018) show that, from a microbiological safety point of view, killing, drying, and subsequent storage are more appropriate than killing and freezing samples. INSECT IN WASTE MANAGEMENT Modern agriculture involves the keeping of many dairies, pigs, chickens, and other animals. This causes theaccumulation ofasignificant amount ofmanure, and that ishazardous totheenvironment (Lietal. 2011b). On the other hand, manure and bio-waste can also beused asaprincipal resource for larvae ofmany insect species such asthe black soldier fly, Hermetia illucens (Booram etal. 1977; Bondari and Sheppard 1981; St-Hilaire etal. 2007; Myers etal. 2008; Lietal. 2011b; Rabani etal. 2019). Such information can provide anincentive for establishing anadequate method for themass production ofprotein-rich dipterous larvae (Larde 1990). Black soldier fly larvae (BSFL) possess another advantage –besides manure liquidation, they can reduce Escherichia coli counts (Liu etal. 2008). Very promising inmany aspects appears tobethe finding that BSFL not only can help us with thedisposing ofthe manure but atthe same time being asource ofquality protein and fats; they are also useful for theproduction ofbiodiesel instead ofcrop oil, which isalimited and expensive food resource. 1000BSFL growing on1kg ofcattle manure can beused toproduce 35.5g ofbiodiesel. Forpig manure, itis57.8g, and for chicken manure, 91.4g (Lietal. 2011a). Petroleum ether could beused toextract grease from BSFL; then, thetwo-step method isapplied toproduce biodiesel. The"waste" from this process, thedry matter residues of BSFL can be utilised as a protein feed (Lietal. 2011a). Theintegration oflarge-scale insect rearing into small-scale farming ventures may pose aninteresting challenge. Anexample can betoinclude insect into organic waste recycling systems (DeFoliart 1995; Ramos-Elorduy 2008). Insects are a basic substance that feeds on organic matter in nature. They make efficient use of all organic resources and feed onall levels ofplants and animals. Duetothese properties and theneed torecycle vast amounts ofwaste generated byup-to-date lifestyles, theinsects could beused asbio-transformers for converting organic waste into protein-rich animal biomass suitable for use inanimal nutrition (Ramos-Elorduy 1996). Thenutritional value ofthe insects increased. There were differences based onthe medium used, but itwas generally slightly better than the control. The recycling time of the waste depended on the species of insect and the substrate used. Forsubstrates that provide abalanced diet, 92% to95% ofthe medium was consumed and transformed into insect tissues (Ramos-Elorduy and Pino 1990). The degree of protein transformation ranged from 5%to8% for poor quality proteins insubstrates to43% to 61% for higher quality proteins (Ramos-Elorduy etal. 1988). Allthese facts show thepossibilities ofrecycling organic matter asaculture medium for insects toobtain nutritious insect biomass. Experiments with insects inanimal nutrition show that they can replace soy orfishmeal when fed poultry orfish with thesame orbetter results (DeFoliart etal. 1982; Ramos-Elorduy etal. 1988; Ramos-Elorduy 1996). Black soldier fly (Hermetia illucens) could be successfully used to reduce animal waste inbreeding facilities and produce animal feed highinprotein and fat, which isthanks toahigh rate ofconversion ofbiomass toprotein and fats (Rabani etal. 2019). If their diet contains fish offal, theflies contain eicosapentaenoic acid (EPA), α-linolenic acid (ALA), and docosahexaenoic acid (DHA). St-Hilaire etal. (2007) examined thedifference infeeding with fish offal and cow manure, where theresults showed that ifthelarvae were fed byfish offal, thelipid amount was onaverage 30%, which was 43% more than if thelarvae were fed bycow manure. Besides, theomega-3fatty acid content reached this level within 24h after feeding theoffal. Omega-3fatty acid elevated pre-pupae may beaswell usable asfish meal and fish oil substitution for carnivorous fish and other animal feeds. This could also beanefficient way toreduce and recycle fish offal from processing factories (St-Hilaire etal. 2007). CONCLUSION The review summarises existing information on the impact of edible insect on the environment, including waste management, and compares thebenefits and risks ofthis food commodity with other commodities ofanimal origin. Thestudy demonstrates alower environmental burden by insect farming, evaluating the need for theproduction of1kg ofprotein compared toother live-
156 Review Czech Journal of Food Sciences, 39, 2021 (3): 149–159 https://doi.org/10.17221/288/2020-CJFS stock. Inparticular, itproves lower greenhouse gas emissions and higher feed conversion. Italso draws attention tothe risks and safety ofrearing and eating edible insect that is comparable to other livestock. The key is controlled insect farming, which ensures significant protection ofthe environment without disturbing its diversity. The review provides acomprehensive view ofthis issue. Ingeneral, themain advantages ofinsect rearing are fast feed conversion, high insect reproduction capacity, low demands onthe rearing area, and theability torear insects on multiple floors. On the contrary, a negative energy load incolder rearing areas ispossible. Inthe food industry and human nutrition, thebasic disadvantages ofconsuming edible insects are thepossibility ofsevere allergic reactions (chitin), possible toxicity, aswell ascomplicated legislation intherearing ofinsects for food purposes and theassociated current high price. Onthe contrary, theadvantages are nutritional values such ashigh protein content, good digestibility, and appropriate representation ofessential amino acids and polyunsaturated fatty acids, and avaluable source ofminerals. REFERENCES Abe M., Ito S., Kimoto M., Hayashi R., Nishimune T. (1987): Molecular studies onthiaminaseI. Biochimica et Biophysica Acta (BBA) –Gene Structure and Expression, 909:213–221. Adámek M., Mlček J., Adámková A., Suchánková J., JanalíkováM., Borkovcová M., Bednářová M. (2018): Effect ofdifferent storage conditions onthe microbiological characteristics ofinsect. Potravinarstvo Slovak Journal ofFood Sciences, 12:248–253. Adamolekun B., Mc Candless D.W., Butterworth R.F. (1997): Epidemic ofseasonal ataxia inNigeria following ingestion ofthe African silkworm Anaphe venata: Role ofthiamine deficiency? Metabolic Brain Disease, 12:251–258. Ayieko A.M. (2007): Nutritional value ofselected species ofreproductive Isoptera and Ephemeroptera within theASAL ofLake Victoria basin. Discovery and Innovation, 19:126–130. Barker D., Fitzpatrick M.P., Dierenfeld E.S. (1998): Nutrient composition ofselected whole invertebrates. Zoo Biology, 17:123–134. Bednářová M., Borkovcová M., Mlček J., Rop O., Zeman L. (2013): Edible insects –Species suitable for entomophagy under condition ofCzech Republic. Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis, 61:587–593. Beets W.C. (1997): Theneed for anincreased use ofsmall and mini livestock inintegrated smallholder farming systems. Ecology ofFood Nutrition, 36:237–245. Belluco S., Losasso C., Maggioletti M., Alonzi C.C., PaolettiM.G., Ricci, A. (2013): Edible insects inafood safety and nutritional perspective: Acritical review. Comprehensive Reviews inFood Science and Food Safety, 12:296–313. Berezina N. (2017): Insects:Novel source oflipids for afan ofapplications. Oilseeds and Fats, Crops and Lipids, 24:1–9. Bernstein D.I., Gallagher J.S., Bernstein I.L. (1983): Mealworm asthma: Clinical and immunologic studies. Journal ofAllergy and Clinical Immunology, 72:475–480. Bleßmann-Gurk B., Hoffmann B., Bayerl C. (2007): Allergic contact urticaria inareptile owner (Allergische Kontakturtikaria bei einem Reptilienhalter). Akt Dermatol, 33:166–167. (in German) Bondari K., Sheppard D.C. (1981): Soldier fly larvae asfeed incommercial fish production. Aquaculture, 24:103–109. Booram C.V., Newton G.L., Hale O.M., Barker R.W. (1977): Manure asasubstrate for protein production via Hermetia illucens larvae. In:Food, Fertilizer & Agricultural Residues: Proceedings ofthe 9th Cornell Agricultural Waste Management Conference, Ann Arbor Science Publishers, Ann Arbor, MI, USA, 1977: 599–604. Bouvier G. (1945): Some questions ofveterinary entomology and thefight against certain arthropods intropical Africa (Quelques questions d'entomologie vétérinaire etlutte contre certains arthropodes enAfrique tropicale). Acta Tropica, 2:42–59. (in French) Burton O.T., Zaccone P. (2007): Thepotential role ofchitin inallergic reactions. Trends inimmunology, 28:419–422. Chow C.Y., Riantiningtyas R.R., Sørensen H., Frøst M.B. (2020): School children cooking and eating insects aspart ofateaching program –Effects ofcooking, insect type, tasting order and food neophobia onhedonic response. Food Quality and Preference, 87: 1–6. Collavo A., Glew R.H., Huang Y.S., Chuang L.T., Bosse R., Paoletti M.G. (2005): House cricket small-scale farming. In:PaolettiM.G.(ed.): Ecological Implications ofMinilivestock: Potential ofInsects, Rodents, Frogs and Snails. Enfield, NH, USA, Science Publishers: 519–544. Costello C.A., Kelleher N.L., Abe M., McLafferty T.W., BeyloyT.P. (1996): Mechanistic studies onThiaminaseI: Overexpression and identification ofthe active site nucleophile. Journal ofBiological Chemistry, 271:3445–3452. De Foliart G.R., Finke M.D., Sunde M.L. (1982): Potential value ofthe mormon cricket (Orthoptera: Tettigoniidae) harvested asahigh-protein feed for poultry. Journal ofEconomic Entomology, 75:848–852. De Foliart G.R. (1995): Edible insects asmini livestock. Biodiversity and Conservation, 4:306–321. deVries M., deBoer I.J.M. (2010): Comparing environmental impacts for livestock products: Areview oflife cycle assessments. Livestock Science, 128:1–11.
157 Czech Journal of Food Sciences, 39, 2021 (3): 149–159 Review https://doi.org/10.17221/288/2020-CJFS Dreassi E., Cito A., Zanfini A., Materozzi L., Botta M., Francardi V. (2017): Dietary fatty acids influence thegrowth and fatty acid composition ofthe yellow mealworm Tenebrio molitor (Coleoptera: Tenebrionidae). Lipids, 52:285–294. EFSA (2015): Risk profile related toproduction and consumption ofinsects asfood and feed. European Food Safety Authority (EFSA) Scientific Committee. EFSA Journal, 13:1–60. Elias J.A., Homer R.J., Hamid Q., Chun G.L. (2005): Chitinases and chitinase-like proteins inTH2 inflammation and asthma. Journal ofAllergy and Clinical Immunology, 116:497–500. FAO, IFAD, UNICEF, WFP, WHO (2017): TheState ofFood Security and Nutrition inthe World 2017: Building Resilience forPeace and Food Security. Rome, Italy, FAO: 117. Finke M.D. (2002): Complete nutrient composition ofcommercially raised invertebrates used asfood for insectivores. Zoo Biology, 21:269–285. Finke M.D. (2004): Nutrient content ofinsects. In:CapineraJ.L.(ed.): Encyclopedia ofEntomology. Dordrecht, theNetherlands, Kluwer Academic Publishers: 1563–1575. Finke M.D. (2007): Estimate ofchitin inraw whole insects. Zoo Biology, 26:105–115. Finke M.D. (2015): Complete nutrient content offour species ofcommercially available feeder insects fed enhanced diets during growth. Zoo Biology, 34:554–564. Freye H.B., Esch R.E., Litwin C.M., Sorkin L. (1996): Anaphylaxis tothe ingestion and inhalation ofTenebrio molitor (mealworm) and Zophobas morio (superworm). Allergy and Asthma Proceedings, 17:215–219. Garino C., Zagon J., Braeuning A. (2019): Insects infood and feed –Allergenicity risk assessment and analytical detection. EFSA Journal, 17:1–12. Giaccone V. (2005): Hygiene and health features of"minilivestock". In: Paoletti M.G. (ed.): Ecological Implications ofMinilivestock: Potential ofInsects, Rodents, Frogs and Snails. Enfield, NH, USA, Science Publishers: 579–598. Goodman W.G. (1989): Chitin: Amagic bullet? Food Insects Newsletter, 2:6–7. Grabowski N.T., Klein G. (2017): Microbiology ofprocessed edible insect products –Results ofapreliminary survey. International Journal ofFood Microbiology, 243:103–107. Halloran A., Flore R., Vantomme P., Roos N. (2018): Edible Insects inSustainable Food Systems. Switzerland, Springer International Publishing: 479. Hu E., Bartsev S.I., Liu H. (2010): Conceptual design ofabioregenerative life support system containing crops and silkworms. Advances inSpace Research, 45:929–939. Hunter P. (2010): Massing life. Research into biomass and food chains attracts increasing attention, given thebiosphere's capacity tosequester CO2 from theatmosphere. European Molecular Biology Organization (EMBO) reports, 11:511–514. Imathiu S. (2020): Benefits and food safety concerns associated with consumption ofedible insects. Nutrition and Food Science (NFS) Journal, 18:1–11. IPCC (2007): Summary for policymakers. In:Solomon S., QinD., Manning M., Chen Z., Marquis M., Averyt K.B., Tignor M., Miller H.L. (eds.): Climate Change 2007: ThePhysical Science Basis. Contribution ofWorking GroupI tothe Fourth Assessment Report ofthe Intergovernmental Panel onClimate Change (IPCC). Cambridge, UK, Cambridge University Press: 3–18. Katayama N., Yamashita M., Wada H., Mitsuhashi J. (2005): Space agriculture task force; entomophagy aspart ofaspace diet for habitation onMars. TheJournal ofSpace Technology and Science, 21:27–38. Klunder H.C., Wolkers-Rooijackers J., Korpela J.M., Nout M.J.R. (2012): Microbiological aspects ofprocessing and storage ofedible insects. Food Control, 26:628–631. Kodelja V., Müller C., Tenorio S., Schebesch C., OrfanosC.E., Goerdt S. (1997): Differences inangiogenic potential ofclassically vs alternatively activated macrophages. Immunobiology, 197:478–493. Kouřimská L., Adámková A. (2016): Nutritional and sensory quality ofedible insects. Nutrition and Food Science (NFS) Journal, 4:22–26. Kwon G.T., Yuk H.G., Lee S.J., Chung Y.H., Jang H.S., YooJ.S., Cho K.H., Kong H., Shin D. (2020): Mealworm larvae (Tenebrio molitor L.) exuviae asanovel prebiotic material for BALB/c mouse gut microbiota. Food Science Biotechnology, 29:531–537. Larde G. (1990): Recycling ofcoffee pulp byHermetia illucens (Diptera: Stratiomyidae) larvae. Biological Wastes, 33:307–310. Lesnik J.J. (2014): Termites inthe hominin diet: Ametaanalysis oftermite genera, species and castes asadietary supplement for South African robust australopithecines. Journal ofHuman Evolution, 71:94–104. Leung P.S., Chow W.K., Duffey S., Kwan H.S., Gershwin M.E., Chu K.H. (1996): IgEreactivity against across-reactive allergen incrustacea and mollusca: Evidence for tropomyosin asthe common allergen. Journal ofAllergy and Clinical Immunology, 98:954–961. Li Q., Zheng L., Cai H., Garza E., Yu Z., Zhou S. (2011a): From organic waste tobiodiesel: Black soldier fly, Hermetia illucens, makes itfeasible. Fuel, 90:1545–1548. Li Q., Zheng L., Qiu N., Cai H., Tomberlin J.K., Yu Z. (2011b): Bioconversion ofdairy manure byblack soldier fly (Diptera: Stratiomyidae) for biodiesel and sugar production. Waste Management, 31:1316–1320.