Alternativas de alimentación de monogástricos a base de larvas de soldado negro (hermetia illucens): revisión de literatura

El crecimiento de la población humana mundial y de sus ingresos impulsa la demanda de alimentos y cambia las preferencias dietéticas hacia un mayor consumo de productos de origen animal. Siendo los insectos fuente natural de alimento para varias especies animales, la producción y posterior inclusión...

Full description

Autores:
Figueredo Matheus, Julieth Andrea
Tipo de recurso:
Trabajo de grado de pregrado
Fecha de publicación:
2019
Institución:
Universidad Cooperativa de Colombia
Repositorio:
Repositorio UCC
Idioma:
OAI Identifier:
oai:repository.ucc.edu.co:20.500.12494/13213
Acceso en línea:
https://hdl.handle.net/20.500.12494/13213
Palabra clave:
Mosca soldado negro
Inclusión
Dietas
Monogástricos
TG 2019 MVZ 13213
Black soldier fly
Inclusion
Diets
Monogastrics
Rights
closedAccess
License
Atribución – Sin Derivar
id COOPER2_aaaa9383c9816af467ea545436e0f09a
oai_identifier_str oai:repository.ucc.edu.co:20.500.12494/13213
network_acronym_str COOPER2
network_name_str Repositorio UCC
repository_id_str
dc.title.spa.fl_str_mv Alternativas de alimentación de monogástricos a base de larvas de soldado negro (hermetia illucens): revisión de literatura
title Alternativas de alimentación de monogástricos a base de larvas de soldado negro (hermetia illucens): revisión de literatura
spellingShingle Alternativas de alimentación de monogástricos a base de larvas de soldado negro (hermetia illucens): revisión de literatura
Mosca soldado negro
Inclusión
Dietas
Monogástricos
TG 2019 MVZ 13213
Black soldier fly
Inclusion
Diets
Monogastrics
title_short Alternativas de alimentación de monogástricos a base de larvas de soldado negro (hermetia illucens): revisión de literatura
title_full Alternativas de alimentación de monogástricos a base de larvas de soldado negro (hermetia illucens): revisión de literatura
title_fullStr Alternativas de alimentación de monogástricos a base de larvas de soldado negro (hermetia illucens): revisión de literatura
title_full_unstemmed Alternativas de alimentación de monogástricos a base de larvas de soldado negro (hermetia illucens): revisión de literatura
title_sort Alternativas de alimentación de monogástricos a base de larvas de soldado negro (hermetia illucens): revisión de literatura
dc.creator.fl_str_mv Figueredo Matheus, Julieth Andrea
dc.contributor.advisor.none.fl_str_mv Albarracín Balaguera, Miguel Antonio
dc.contributor.author.none.fl_str_mv Figueredo Matheus, Julieth Andrea
dc.subject.spa.fl_str_mv Mosca soldado negro
Inclusión
Dietas
Monogástricos
topic Mosca soldado negro
Inclusión
Dietas
Monogástricos
TG 2019 MVZ 13213
Black soldier fly
Inclusion
Diets
Monogastrics
dc.subject.classification.spa.fl_str_mv TG 2019 MVZ 13213
dc.subject.other.spa.fl_str_mv Black soldier fly
Inclusion
Diets
Monogastrics
description El crecimiento de la población humana mundial y de sus ingresos impulsa la demanda de alimentos y cambia las preferencias dietéticas hacia un mayor consumo de productos de origen animal. Siendo los insectos fuente natural de alimento para varias especies animales, la producción y posterior inclusión de estos en sus dietas es materia de investigación en la última década. La mosca soldado negro MSN (Hermetia illucens) posee características únicas que han hecho que sea reconocida como modelo para reducir el desperdicio orgánico al mismo tiempo que se produce biomasa de alto valor biológico. En este sentido, el objetivo de la presente revisión es describir la viabilidad de incorporar larvas de mosca soldado negro en la alimentación de monogástricos, fundamentado en el conocimiento de su potencial productivo de biomasa, características nutricionales y alimenticias y la inclusión idónea en dietas de varias especies animales.
publishDate 2019
dc.date.accessioned.none.fl_str_mv 2019-08-06T21:05:59Z
dc.date.available.none.fl_str_mv 2019-08-06T21:05:59Z
dc.date.issued.none.fl_str_mv 2019
dc.type.none.fl_str_mv Trabajo de grado - Pregrado
dc.type.coar.none.fl_str_mv http://purl.org/coar/resource_type/c_7a1f
dc.type.driver.none.fl_str_mv info:eu-repo/semantics/bachelorThesis
dc.type.version.none.fl_str_mv info:eu-repo/semantics/acceptedVersion
format http://purl.org/coar/resource_type/c_7a1f
status_str acceptedVersion
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12494/13213
dc.identifier.bibliographicCitation.spa.fl_str_mv Figueredo Matheus, J. A. (2019). Alternativas de alimentación de monogástricos a base de larvas de Soldado Negro (Hermetia illucens): Revisión de literatura. (Tesis de pregrado). Recuperado de: http://repository.ucc.edu.co/handle/ucc/13213
url https://hdl.handle.net/20.500.12494/13213
identifier_str_mv Figueredo Matheus, J. A. (2019). Alternativas de alimentación de monogástricos a base de larvas de Soldado Negro (Hermetia illucens): Revisión de literatura. (Tesis de pregrado). Recuperado de: http://repository.ucc.edu.co/handle/ucc/13213
dc.relation.references.spa.fl_str_mv Smetana S, Palanisamy M, Mathys A, Heinz V. Sustainability of insect use for feed and food: Life Cycle Assessment perspective. J Clean Prod. 2016;137:741-51.
van Zanten HHE, Mollenhorst H, Klootwijk CW, van Middelaar CE, de Boer IJM. Global food supply: land use efficiency of livestock systems. Int J Life Cycle Assess. 1 de mayo de 2016;21(5):747-58.
FAO, 2018. The future of food and agriculture – Alternative pathways to 2050. Rome; 224 p.
Sánchez-Muros M-J, Barroso FG, Manzano-Agugliaro F. Insect meal as renewable source of food for animal feeding: a review. J Clean Prod. 15 de febrero de 2014;65:16-27.
Ritchie H, Roser M. Meat and Seafood Production & Consumption. Our World Data [Internet]. 25 de agosto de 2017 [citado 25 de junio de 2019]; Disponible en: https://ourworldindata.org/meat-and-seafood-production-consumption
Hall Stephen, Delaporte Anne, Phillpis Michael, Beveridge Malcolm, O’keefe Mark. Blue frontiers: Managing the environmenrtal costs of Aquaculture. Malaysia: The Worldfish Center; 2011.
Spranghers T, Ottoboni M, Klootwijk C, Ovyn A, Deboosere S, Meulenaer BD, et al. Nutritional composition of black soldier fly (Hermetia illucens) prepupae reared on different organic waste substrates. J Sci Food Agric. 2017;97(8):2594-600.
Lalander C, Diener S, Zurbrügg C, Vinnerås B. Effects of feedstock on larval development and process efficiency in waste treatment with black soldier fly (Hermetia illucens). J Clean Prod. 20 de enero de 2019;208:211-9.
Henry M, Gasco L, Piccolo G, Fountoulaki E. Review on the use of insects in the diet of farmed fish: Past and future. Anim Feed Sci Technol. 1 de mayo de 2015;203:1-22.
Huis A van. Edible insects: future prospects for food and feed security. Rome: Food and Agriculture Organization of the United Nations; 2013. 187 p. (FAO forestry paper).
Smetana S, Schmitt E, Mathys A. Sustainable use of Hermetia illucens insect biomass for feed and food: Attributional and consequential life cycle assessment. Resour Conserv Recycl. 1 de mayo de 2019;144:285-96.
Spranghers T, Michiels J, Vrancx J, Ovyn A, Eeckhout M, De Clercq P, et al. Gut antimicrobial effects and nutritional value of black soldier fly (Hermetia illucens L.) prepupae for weaned piglets. Anim Feed Sci Technol. 1 de enero de 2018;235:33-42.
Stadtlander T, Stamer A, Buser A, Wohlfahrt J, Leiber F, Sandrock C. Hermetia illucens meal as fish meal replacement for rainbow trout on farm. J Insects Food Feed. 1 de septiembre de 2017;3(3):165-75.
Renna M, Schiavone A, Gai F, Dabbou S, Lussiana C, Malfatto V, et al. Evaluation of the suitability of a partially defatted black soldier fly (Hermetia illucens L.) larvae meal as ingredient for rainbow trout (Oncorhynchus mykiss Walbaum) diets. J Anim Sci Biotechnol [Internet]. 2017;8(1). Disponible en: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85021676323&doi=10.1186%2fs40104-017-0191-3&partnerID=40&md5=4a75231a3175fcd7a3441b9454cbde78
Dumas A, Raggi T, Barkhouse J, Lewis E, Weltzien E. The oil fraction and partially defatted meal of black soldier fly larvae (Hermetia illucens) affect differently growth performance, feed efficiency, nutrient deposition, blood glucose and lipid digestibility of rainbow trout (Oncorhynchus mykiss). Aquaculture. 1 de julio de 2018;492:24-34.
Ushakova NA, Bastrakov AI, Kozlova AA, Ponomarev SV, Bakaneva YM, Fedorovykh YV, et al. Features of the effect of a complex probiotic with Bacillus bacteria and the larvae of Hermetia illucens biomass on Mozambique tilapia (Oreochromis mossambicus × O. niloticus) and Russian sturgeon (Acipenser gueldenstaedti) fry. Biol Bull. 2016;43(5):450-6.
Dietz C, Liebert F. Does graded substitution of soy protein concentrate by an insect meal respond on growth and N-utilization in Nile tilapia (Oreochromis niloticus)? Aquac Rep. 1 de noviembre de 2018;12:43-8.
Magalhães R, Sánchez-López A, Leal RS, Martínez-Llorens S, Oliva-Teles A, Peres H. Black soldier fly (Hermetia illucens) pre-pupae meal as a fish meal replacement in diets for European seabass (Dicentrarchus labrax). Aquaculture. 2017;476:79-85.
Li S, Ji H, Zhang B, Tian J, Zhou J, Yu H. Influence of black soldier fly (Hermetia illucens) larvae oil on growth performance, body composition, tissue fatty acid composition and lipid deposition in juvenile Jian carp (Cyprinus carpio var. Jian). Aquaculture. 1 de diciembre de 2016;465:43-52.
Kumar K, Borsra MZS, Ganesan D, Kuppusamy G, Herriman M, Salter A, et al. Efficacy of insect larval meal to replace fish meal in juvenile barramundi, Lates calcarifer reared in freshwater. Int Aquat Res. diciembre de 2017;9(4):303-12.
Kroeckel S, Harjes A-GE, Roth I, Katz H, Wuertz S, Susenbeth A, et al. When a turbot catches a fly: Evaluation of a pre-pupae meal of the Black Soldier Fly (Hermetia illucens) as fish meal substitute - Growth performance and chitin degradation in juvenile turbot (Psetta maxima). Aquaculture. 2012;364-365:345-52.
Veldkamp T, Bosch G. Insects: A protein-rich feed ingredient in pig and poultry diets. Anim Front. 2015;5(2):45-50.
Cummins VC, Rawles SD, Thompson KR, Velasquez A, Kobayashi Y, Hager J, et al. Evaluation of black soldier fly (Hermetia illucens) larvae meal as partial or total replacement of marine fish meal in practical diets for Pacific white shrimp (Litopenaeus vannamei). Aquaculture. 2017;473:337-44.
Belghit I, Liland NS, Gjesdal P, Biancarosa I, Menchetti E, Li Y, et al. Black soldier fly larvae meal can replace fish meal in diets of sea-water phase Atlantic salmon (Salmo salar). Aquaculture [Internet]. 12 de diciembre de 2018; Disponible en: http://www.sciencedirect.com/science/article/pii/S0044848618322208
Belghit I, Liland NS, Waagbø R, Biancarosa I, Pelusio N, Li Y, et al. Potential of insect-based diets for Atlantic salmon (Salmo salar). Aquaculture. 1 de abril de 2018;491:72-81.
Clarke R, Bostock J. Regional Review on Status and Trends in Aquaculture Development in Europe - 2015 [Internet]. Food and Agriculture Organisation of the United Nations; 2017 [citado 28 de junio de 2019]. Disponible en: http://dspace.stir.ac.uk/handle/1893/24988
Secci G, Mancini S, Iaconisi V, Gasco L, Basto A, Parisi G. Can the inclusion of black soldier fly (Hermetia illucens) in diet affect the flesh quality/nutritional traits of rainbow trout (Oncorhynchus mykiss) after freezing and cooking? Int J Food Sci Nutr. 17 de julio de 2018;1-11.
Mancini S, Medina I, Iaconisi V, Gai F, Basto A, Parisi G. Impact of black soldier fly larvae meal on the chemical and nutritional characteristics of rainbow trout fillets. Anim Int J Anim Biosci. agosto de 2018;12(8):1672-81.
Huyben D, Vidaković A, Werner Hallgren S, Langeland M. High-throughput sequencing of gut microbiota in rainbow trout (Oncorhynchus mykiss) fed larval and pre-pupae stages of black soldier fly (Hermetia illucens). Aquaculture. 1 de febrero de 2019;500:485-91.
Bruni L, Pastorelli R, Viti C, Gasco L, Parisi G. Characterisation of the intestinal microbial communities of rainbow trout (Oncorhynchus mykiss) fed with Hermetia illucens (black soldier fly) partially defatted larva meal as partial dietary protein source. Aquaculture. 25 de febrero de 2018;487:56-63
Zarantoniello M, Bruni L, Randazzo B, Vargas A, Gioacchini G, Truzzi C, et al. Partial Dietary Inclusion of Hermetia illucens (Black Soldier Fly) Full-Fat Prepupae in Zebrafish Feed: Biometric, Histological, Biochemical, and Molecular Implications. Zebrafish. octubre de 2018;15(5):519-32.
Vargas A, Randazzo B, Riolo P, Truzzi C, Gioacchini G, Giorgini E, et al. Rearing Zebrafish on Black Soldier Fly (Hermetia illucens): Biometric, Histological, Spectroscopic, Biochemical, and Molecular Implications. Zebrafish. 2018;15(4):404-19.
Arnold van Huis. Edible insects contributing to food security? Agric Food Secur [Internet]. 2015;4. Disponible en: https://search.proquest.com/docview/1771742653?accountid=44394
Wallace PA, Nyameasem JK, Adu-Aboagye GA, Affedzie-Obresi S, Nkegbe EK, Karbo N, et al. Impact of black soldier fly larval meal on growth performance, apparent digestibility, haematological and blood chemistry indices of guinea fowl starter keets under tropical conditions. Trop Anim Health Prod. 2017;49(6):1163-9.
Wallace PA, Nyameasem JK, Aboagye GA, Affedzie-Obresi S, Nkegbe K, Murray F, et al. Effects of replacing fishmeal with black soldier fly larval meal in the diets of grower-finishing guinea fowls reared under tropical conditions. Trop Anim Health Prod. octubre de 2018;50(7):1499-507
Cullere M, Tasoniero G, Giaccone V, Miotti-Scapin R, Claeys E, De Smet S, et al. Black soldier fly as dietary protein source for broiler quails: Apparent digestibility, excreta microbial load, feed choice, performance, carcass and meat traits. Animal. 2016;10(12):1923-30.
Cullere M, Tasoniero G, Giaccone V, Acuti G, Marangon A, Dalle Zotte A. Black soldier fly as dietary protein source for broiler quails: meat proximate composition, fatty acid and amino acid profile, oxidative status and sensory traits. Anim Int J Anim Biosci. 2018;12(3):640-7.
Martins C, Cullere M, Zotte AD, Cardoso C, Alves SP, De Bessa RJB, et al. Incorporation of two levels of black soldier fly (Hermetia illucens L.) larvae fat or extruded linseed in diets of growing rabbits: Effects on growth performance and diet digestibility. Czech J Anim Sci. 2018;63(9):356-62.
Dalle Zotte A, Cullere M, Martins C, Alves SP, Freire JPB, Falcão-e-Cunha L, et al. Incorporation of Black Soldier Fly (Hermetia illucens L.) larvae fat or extruded linseed in diets of growing rabbits and their effects on meat quality traits including detailed fatty acid composition. Meat Sci. 1 de diciembre de 2018;146:50-8.
Loponte R, Nizza S, Bovera F, De Riu N, Fliegerova K, Lombardi P, et al. Growth performance, blood profiles and carcass traits of Barbary partridge (Alectoris barbara) fed two different insect larvae meals (Tenebrio molitor and Hermetia illucens). Res Vet Sci. 1 de diciembre de 2017;115:183-8.
Pastor B, Velasquez Y, Gobbi P, Rojo S. Conversion of organic wastes into fly larval biomass: bottlenecks and challenges. J Insects Food Feed. 3 de julio de 2015;1(3):179-93.
Craig Sheppard D, Larry Newton G, Thompson SA, Savage S. A value added manure management system using the black soldier fly. Bioresour Technol. 1 de enero de 1994;50(3):275-9.
Veldkamp T, Duinkerken G van, Huis A van, Lakemond CMM, Ottevanger E, Bosch G, et al. Insects as a sustainable feed ingredient in pig and poultry diets : a feasibility study = Insecten als duurzame diervoedergrondstof in varkens- en pluimveevoeders : een haalbaarheidsstudie [Internet]. Lelystad: Wageningen UR Livestock Research; 2012 [citado 27 de diciembre de 2018] p. Report No.: 638. Disponible en: https://library.wur.nl/WebQuery/wurpubs/428703
Collins S. Antinutritional factors in modeling plant-based rainbow trout diets. febrero de 2014 [citado 17 de marzo de 2019]; Disponible en: https://harvest.usask.ca/handle/10388/ETD-2014-02-1426
Santamaría, S. C. Monografía Nutrición y alimentación en peces nativos [Internet]. Universidad Nacional Abierta y a Distancia-ECAPMA; 2014. Disponible en: https://repository.unad.edu.co/bitstream/10596/2697/1/23591903.pdf
Nguyen TTX, Tomberlin JK, Vanlaerhoven S. Influence of resources on Hermetia illucens (Diptera: Stratiomyidae) larval development. J Med Entomol. julio de 2013;50(4):898-906.
Arango Gutiérrez GP, Vergara Ruiz RA, Humberto Mejía Vélez. Análisis composicional, microbiológico y digestibilidad de la proteína de la harina de larvas de hermetia illuscens L (diptera:stratiomyiidae) en angelópolis-Antioquia, Colombia. Rev Fac Nac Agron Medellin. 2004;57(2):2491-9.
Cortes Ortiz JA, Ruiz AT, Morales-Ramos JA, Thomas M, Rojas MG, Tomberlin JK, et al. Chapter 6 - Insect Mass Production Technologies. En: Dossey AT, Morales-Ramos JA, Rojas MG, editores. Insects as Sustainable Food Ingredients [Internet]. San Diego: Academic Press; 2016. p. 153-201. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780128028568000065
Béné C, Barange M, Subasinghe R, Pinstrup-Andersen P, Merino G, Hemre G-I, et al. Feeding 9 billion by 2050 – Putting fish back on the menu. Food Secur. abril de 2015;7(2):261-74.
FAO, editor. Building climate resilience for food security and nutrition. Rome: FAO; 2018. 181 p. (The state of food security and nutrition in the world).
Onsongo VO, Osuga IM, Gachuiri CK, Wachira AM, Miano DM, Tanga CM, et al. Insects for Income Generation Through Animal Feed: Effect of Dietary Replacement of Soybean and Fish Meal With Black Soldier Fly Meal on Broiler Growth and Economic Performance. J Econ Entomol. 11 de mayo de 2018.
Banaszkiewicz T. Nutritional Value of Soybean Meal. Soybean Nutr [Internet]. 12 de septiembre de 2011 [citado 11 de marzo de 2019]; Disponible en: https://www.intechopen.com/books/soybean-and-nutrition/nutritional-value-of-soybean-meal
Sánchez-Muros M-J, Barroso FG, Manzano-Agugliaro F. Insect meal as renewable source of food for animal feeding: a review. J Clean Prod. 15 de febrero de 2014;65:16-27.
Sánchez-Muros MJ, Barroso FG, de Haro C. Chapter 10 - Brief Summary of Insect Usage as an Industrial Animal Feed/Feed Ingredient. En: Dossey AT, Morales-Ramos JA, Rojas MG, editores. Insects as Sustainable Food Ingredients [Internet]. San Diego: Academic Press; 2016. p. 273-309. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780128028568000107
Mertenat A, Diener S, Zurbrügg C. Black Soldier Fly biowaste treatment – Assessment of global warming potential. Waste Manag. febrero de 2019;84:173-81.
Muys, B, Roffeis, M. Generic life cycle assessment of proteins from insects. En Netherlands; 2014. p. 27. Disponible en: https://www.biw.kuleuven.be/lbh/lbnl/forecoman/docs/Generic%20LCA%20proteinsect.pdf
Nguyen TTX, Tomberlin JK, Vanlaerhoven S. Ability of Black Soldier Fly (Diptera: Stratiomyidae) Larvae to Recycle Food Waste. Environ Entomol. 1 de abril de 2015;44(2):406-10.
Zheng L, Hou Y, Li W, Yang S, Li Q, Yu Z. Biodiesel production from rice straw and restaurant waste employing black soldier fly assisted by microbes. Energy. noviembre de 2012;47(1):225-9.
Tripathi AD, Mishra R, Maurya KK, Singh RB, Wilson DW. Chapter 1 - Estimates for World Population and Global Food Availability for Global Health. En: Singh RB, Watson RR, Takahashi T, editores. The Role of Functional Food Security in Global Health [Internet]. Academic Press; 2019. p. 3-24. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780128131480000013
Ran Y, van Middelaar CE, Lannerstad M, Herrero M, de Boer IJM. Freshwater use in livestock production—To be used for food crops or livestock feed? Agric Syst. 1 de julio de 2017;155:1-8.
Flachowsky G, Meyer U, Karl-Heinz Südekum. Invited review: Resource inputs and land, water and carbon footprints from the production of edible protein of animal origin. Arch Fuer Tierz. 2018;61(1):17-36.
Barragan-Fonseca KB, Dicke M, van Loon JJA. Nutritional value of the black soldier fly (Hermetia illucens L.) and its suitability as animal feed - a review. J Insects Food Feed. 2017;3(2):105-20.
World Population Prospects - Population Division - United Nations [Internet]. [citado 14 de abril de 2019]. Disponible en: https://population.un.org/wpp/Graphs/Probabilistic/POP/TOT/
ONU: Asamblea General. Declaración Universal de los Derechos Humanos [Internet]. 1948. Disponible en: https://www.ohchr.org/EN/UDHR/Documents/UDHR_Translations/spn.pdf
Asamblea Nacional Constituyente. Constitución Política de Colombia [Internet]. 1991. Disponible en: https://www.cna.gov.co/1741/articles-186370_constitucion_politica.pdf
Departamento Nacional de Planeación. Documento CONPES Social 113: Política Nacional de Seguridad Alimentaria y Nutricional (PSAN) [Internet]. 2007. Disponible en: https://www.icbf.gov.co/sites/default/files/conpes_113_de_2008.pdf
Di Paola A, Rulli MC, Santini M. Human food vs. animal feed debate. A thorough analysis of environmental footprints. Land Use Policy. 1 de septiembre de 2017;67:652-9.
Day L. Proteins from land plants – Potential resources for human nutrition and food security. Trends Food Sci Technol. 1 de julio de 2013;32(1):25-42.
Ankamah-Yeboah I, Jacobsen JB, Olsen SB. Innovating out of the fishmeal trap. Br Food J. 2018;120(10):2395-410.
van Huis A. Potential of Insects as Food and Feed in Assuring Food Security. Annu Rev Entomol. 2013;58(1):563-83.
Mottet A, de Haan C, Falcucci A, Tempio G, Opio C, Gerber P. Livestock: On our plates or eating at our table? A new analysis of the feed/food debate. Glob Food Secur. 1 de septiembre de 2017;14:1-8.
Nebel BJ, Wright RT. Ciencias ambientales: ecología y desarrollo sostenible. Pearson Educación; 1999. 738 p.
Gahukar RT. Chapter 4 - Edible Insects Farming: Efficiency and Impact on Family Livelihood, Food Security, and Environment Compared With Livestock and Crops. En: Dossey AT, Morales-Ramos JA, Rojas MG, editores. Insects as Sustainable Food Ingredients [Internet]. San Diego: Academic Press; 2016. p. 85-111. Disponible en: http://www.sciencedirect.com/science/article/pii/B978012802856800004
Moutinho S, Martínez-Llorens S, Tomás-Vidal A, Jover-Cerdá M, Oliva-Teles A, Peres H. Meat and bone meal as partial replacement for fish meal in diets for gilthead seabream (Sparus aurata) juveniles: Growth, feed efficiency, amino acid utilization, and economic efficiency. Aquaculture. 1 de febrero de 2017;468:271-7.
Suloma A, Mabroke RS, El-Haroun ER. Meat and bone meal as a potential source of phosphorus in plant-protein-based diets for Nile tilapia (Oreochromis niloticus). Aquac Int. 1 de abril de 2013;21(2):375-85.
correspondent RSC affairs. Dog food made from insects to go on sale in UK for first time. The Guardian [Internet]. 10 de enero de 2019 [citado 30 de junio de 2019]; Disponible en: https://www.theguardian.com/environment/2019/jan/10/dog-food-made-from-insects-on-sale
Swanson KS, Carter RA, Yount TP, Aretz J, Buff PR. Nutritional Sustainability of Pet Foods12. Adv Nutr. 6 de marzo de 2013;4(2):141-50.
Oonincx DGAB, Itterbeeck J van, Heetkamp MJW, Brand H van den, Loon JJA van, Huis A van. An Exploration on Greenhouse Gas and Ammonia Production by Insect Species Suitable for Animal or Human Consumption. PLOS ONE. dic de 2010;5(12):e14445.
Makkar HPS, Tran G, Heuzé V, Ankers P. State-of-the-art on use of insects as animal feed. Anim Feed Sci Technol. 2014;197:1-33.
Allegretti G, Talamini E, Schmidt V, Bogorni PC, Ortega E. Insect as feed: An emergy assessment of insect meal as a sustainable protein source for the Brazilian poultry industry. J Clean Prod. 2018;171:403-12.
Barroso FG, de Haro C, Sánchez-Muros M-J, Venegas E, Martínez-Sánchez A, Pérez-Bañón C. The potential of various insect species for use as food for fish. Aquaculture. 20 de febrero de 2014;422-423:193-201.
Liu C, Zhao J. Insects as a Novel Food. En: Melton L, Shahidi F, Varelis P, editores. Encyclopedia of Food Chemistry [Internet]. Oxford: Academic Press; 2019. p. 428-36. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780081005965217824
Gallo M. Novel Foods: Insects - Safety Issues. En: Ferranti P, Berry EM, Anderson JR, editores. Encyclopedia of Food Security and Sustainability [Internet]. Oxford: Elsevier; 2019. p. 294-9. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780081005965221343
Patel S, Suleria HAR, Rauf A. Edible insects as innovative foods: Nutritional and functional assessments. Trends Food Sci Technol. 1 de abril de 2019;86:352-9.
Sidali KL, Pizzo S, Garrido-Pérez EI, Schamel G. Between food delicacies and food taboos: A structural equation model to assess Western students’ acceptance of Amazonian insect food. Food Res Int. 1 de enero de 2019;115:83-9.
Dossey AT, Morales-Ramos JA, Rojas MG. Insects as Sustainable Food Ingredients: Production, Processing and Food Applications. Academic Press; 2016. 404 p.
Wang Y-S, Shelomi M. Review of Black Soldier Fly (Hermetia illucens) as Animal Feed and Human Food. Foods Basel Switz. 18 de octubre de 2017;6(10).
Kuhnlein HV, Food and Agriculture Organization of the United Nations, McGill University, editores. Indigenous peoples’ food systems & well-being: interventions & policies for healthy communities. Rome : Ste. Anne de Bellevue, Quebec: Food and Agriculture Organization of the United Nations ; Centre for Indigenous Peoples’ Nutrition and Environment; 2013. 398 p.
Gere A, Radványi D, Héberger K. Which insect species can best be proposed for human consumption? Innov Food Sci Emerg Technol. 1 de marzo de 2019;52:358-67.
Choi W-H, Yun J-H, Chu J-P, Chu K-B. Antibacterial effect of extracts of Hermetia illucens (Diptera: Stratiomyidae) larvae against Gram-negative bacteria. Entomol Res. 2012;42(5):219-26.
Gere A, Zemel R, Radványi D, Moskowitz H. Consumer Response to Insect Foods. En: Reference Module in Food Science [Internet]. Elsevier; 2018. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780081005965218817
Dossey AT, Tatum JT, McGill WL. Chapter 5 - Modern Insect-Based Food Industry: Current Status, Insect Processing Technology, and Recommendations Moving Forward. En: Dossey AT, Morales-Ramos JA, Rojas MG, editores. Insects as Sustainable Food Ingredients [Internet]. San Diego: Academic Press; 2016. p. 113-52. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780128028568000053
Rumpold BA, Schlüter OK. Nutritional composition and safety aspects of edible insects. Mol Nutr Food Res. mayo de 2013;57(5):802-23.
Vantomme P, Mertens E, van Huis A, Klunder H. Assessing the Potential of Insects as Food and Feed in assuring Food Security-Summary report [Internet]. Rome: FAO; 2012 p. 38. Disponible en: http://www.fao.org/docrep/015/an233e/an233e00.pdf
Lalander CH, Fidjeland J, Diener S, Eriksson S, Vinnerås B. High waste-to-biomass conversion and efficient Salmonella spp. reduction using black soldier fly for waste recycling. Agron Sustain Dev. 1 de enero de 2015;35(1):261-71.
Müller A, Wolf D, Gutzeit HO. The black soldier fly, Hermetia illucens – a promising source for sustainable production of proteins, lipids and bioactive substances. Z Für Naturforschung C. 26 de septiembre de 2017;72(9-10):351-63.
YaşAr B, çIrik T. Life Tables of Hermetia illucens (Linnaeus, 1758) (Diptera: Stratiomyidae) on Different Foods. Süleyman Demirel Üniversitesi Fen Bilim Enstitüsü Derg. 10 de septiembre de 2018;22(Özel):392.
Liu X, Chen X, Wang H, Yang Q, Ur Rehman K, Li W, et al. Dynamic changes of nutrient composition throughout the entire life cycle of black soldier fly. PLoS ONE [Internet]. 2017;12(8). Disponible en: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85027281644&doi=10.1371%2fjournal.pone.0182601&partnerID=40&md5=60541abd26d99c442535753d49d93c18
Allegretti G, Schmidt V, Talamini E. Insects as feed: Species selection and their potential use in Brazilian poultry production. Worlds Poult Sci J. 2017;73(4):928-37.
Zamprogna A, Baldrighi P. Introducing Black soldier fly (Hermetia illucens) as a cheap protein source for poultry nutrition - Course APS-31306 "Future Livestock Systems’. 2017.
Oonincx DGAB, van Broekhoven S, van Huis A, van Loon JJA. Feed Conversion, Survival and Development, and Composition of Four Insect Species on Diets Composed of Food By-Products. Papadopoulos NT, editor. PLOS ONE. 23 de diciembre de 2015;10(12):e0144601.
Barragan-Fonseca KB, Dicke M, van Loon JJA. Influence of larval density and dietary nutrient concentration on performance, body protein, and fat contents of black soldier fly larvae (Hermetia illucens). Entomol Exp Appl. 2018;166(9):761-70.
Moula N, Scippo M-L, Douny C, Degand G, Dawans E, Cabaraux J-F, et al. Performances of local poultry breed fed black soldier fly larvae reared on horse manure. Anim Nutr. 1 de marzo de 2018;4(1):73-8.
Xiao X, Mazza L, Yu Y, Cai M, Zheng L, Tomberlin JK, et al. Efficient co-conversion process of chicken manure into protein feed and organic fertilizer by Hermetia illucens L. (Diptera: Stratiomyidae) larvae and functional bacteria. J Environ Manage. 1 de julio de 2018;217:668-76.
Eilenberg J, Vlak J m., Nielsen-LeRoux C, Cappellozza S, Jensen A b. Diseases in insects produced for food and feed. J Insects Food Feed. 1 de enero de 2015;1(2):87-102.
Elhag O, Zhou D, Song Q, Soomro AA, Cai M, Zheng L, et al. Screening, Expression, Purification and Functional Characterization of Novel Antimicrobial Peptide Genes from Hermetia illucens (L.). PLOS ONE. ene de 2017;12(1):e0169582.
Diener S, Lalander C, Zurbrügg C, Vinnerås B. Opportunities and constraints for medium-scale organic waste treatment with fly larvae composting. En 2015.
Dortmans B., Diener S., Verstappen B., Zurbrügg C. Black Soldier Fly Biowaste Processing. A Step-by-Step Guide. Dübendorf, Switzerland: Swiss Federal Institute of Aquatic Science and Technology; 2017. 100 p.
Home [Internet]. AgriProtein. [citado 29 de mayo de 2019]. Disponible en: https://agriprotein.com/
Bühler Insect Technology Solutions [Internet]. [citado 29 de mayo de 2019]. Disponible en: https://www.buhlergroup.com/global/en/about-buehler/insects-sustainable-protein-source/buehler-insect-technology-solutions.htm
Food For the Future F4F [Internet]. F4F. [citado 1 de julio de 2019]. Disponible en: http://f4f.cl/
Salomone R, Saija G, Mondello G, Giannetto A, Fasulo S, Savastano D. Environmental impact of food waste bioconversion by insects: Application of Life Cycle Assessment to process using Hermetia illucens. J Clean Prod. 1 de enero de 2017;140:890-905.
Gold M, Tomberlin JK, Diener S, Zurbrügg C, Mathys A. Decomposition of biowaste macronutrients, microbes, and chemicals in black soldier fly larval treatment: A review. Waste Manag. 1 de diciembre de 2018;82:302-18.
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 (Text with EEA relevance. ) [Internet]. OJ L, 32017R0893 may 25, 2017. Disponible en: http://data.europa.eu/eli/reg/2017/893/oj/eng
Al-Qazzaz MFA, Ismail D, Akit H, Idris LH. Effect of using insect larvae meal as a complete protein source on quality and productivity characteristics of laying hens. Rev Bras Zootec. 2016;45:518-23.
Bovera F, Loponte R, Pero ME, Cutrignelli MI, Calabrò S, Musco N, et al. Laying performance, blood profiles, nutrient digestibility and inner organs traits of hens fed an insect meal from Hermetia illucens larvae. Res Vet Sci. 2018;120:86-93.
Mwaniki Z, Neijat M, Kiarie E. Egg production and quality responses of adding up to 7.5% defatted black soldier fly larvae meal in a corn-soybean meal diet fed to Shaver White Leghorns from wk 19 to 27 of age. Poult Sci. 2018;97(8):2829-35.
Marono S, Loponte R, Lombardi P, Vassalotti G, Pero ME, Russo F, et al. Productive performance and blood profiles of laying hens fed Hermetia illucens larvae meal as total replacement of soybean meal from 24 to 45 weeks of age. Poult Sci. 2017;96(6):1783-90.
Secci G, Bovera F, Nizza S, Baronti N, Gasco L, Conte G, et al. Quality of eggs from Lohmann Brown Classic laying hens fed black soldier fly meal as substitute for soya bean. Anim Int J Anim Biosci. octubre de 2018;12(10):2191-7.
Schiavone A, Dabbou S, De Marco M, Cullere M, Biasato I, Biasibetti E, et al. Black soldier fly larva fat inclusion in finisher broiler chicken diet as an alternative fat source. Anim Int J Anim Biosci. octubre de 2018;12(10):2032-9.
Leiber F, Gelencsér T, Stamer A, Amsler Z, Wohlfahrt J, Früh B, et al. Insect and legume-based protein sources to replace soybean cake in an organic broiler diet: Effects on growth performance and physical meat quality. Renew Agric Food Syst. febrero de 2017;32(1):21-7.
De Marco M, Martínez S, Hernandez F, Madrid J, Gai F, Rotolo L, et al. Nutritional value of two insect larval meals (Tenebrio molitor and Hermetia illucens) for broiler chickens: Apparent nutrient digestibility, apparent ileal amino acid digestibility and apparent metabolizable energy. Anim Feed Sci Technol. 1 de noviembre de 2015;209:211-8.
Dabbou S, Gai F, Biasato I, Capucchio MT, Biasibetti E, Dezzutto D, et al. Black soldier fly defatted meal as a dietary protein source for broiler chickens: Effects on growth performance, blood traits, gut morphology and histological features. J Anim Sci Biotechnol [Internet]. 2018;9. Disponible en: https://search.proquest.com/docview/2071466065?accountid=44394
Brede A, Wecke C, Liebert F. Does the Optimal Dietary Methionine to Cysteine Ratio in Diets for Growing Chickens Respond to High Inclusion Rates of Insect Meal from Hermetia illucens? Anim Open Access J MDPI. 23 de octubre de 2018;8(11).
Pieterse E, Erasmus SW, Uushona T, Hoffman LC. Black soldier fly (Hermetia illucens) pre-pupae meal as a dietary protein source for broiler production ensures a tasty chicken with standard meat quality for every pot. J Sci Food Agric. 16 de julio de 2018;
Altmann BA, Neumann C, Velten S, Liebert F, Mörlein D. Meat Quality Derived from High Inclusion of a Micro-Alga or Insect Meal as an Alternative Protein Source in Poultry Diets: A Pilot Study. Foods. 2018;7(3):34.
Lee J, Kim Y-M, Park Y-K, Yang Y-C, Jung B-G, Lee B-J. Black soldier fly (Hermetia illucens) larvae enhances immune activities and increases survivability of broiler chicks against experimental infection of Salmonella Gallinarum. J Vet Med Sci. 2018;80(5):736-40.
Neumann C, Velten S, Liebert F. N Balance Studies Emphasize the Superior Protein Quality of Pig Diets at High Inclusion Level of Algae Meal (Spirulina platensis) or Insect Meal (Hermetia illucens) when Adequate Amino Acid Supplementation Is Ensured. Anim Open Access J MDPI. 3 de octubre de 2018;8(10).
Nekrasov RV, Pravdin IV, Kravtsova LZ, Bastrakov AI, Pashkova LA, Ushakova NA. BIOCHEMICAL CHARACTERISTICS OF HERMETIA ILLUCENS: A BASE FOR PROSPECTIVE USE OF LARVAL BIOMASS IN YOUNG PIG FOOD. J Nat Sci Sustain Technol. 2015;9(2):407-16.
dc.rights.license.none.fl_str_mv Atribución – Sin Derivar
dc.rights.accessrights.none.fl_str_mv info:eu-repo/semantics/closedAccess
dc.rights.coar.none.fl_str_mv http://purl.org/coar/access_right/c_14cb
rights_invalid_str_mv Atribución – Sin Derivar
http://purl.org/coar/access_right/c_14cb
eu_rights_str_mv closedAccess
dc.format.extent.spa.fl_str_mv 62 p.
dc.publisher.spa.fl_str_mv Universidad Cooperativa de Colombia, Facultad de Ciencias de la Salud, Medicina Veterinaría y Zootecnia, Bucaramanga
dc.publisher.program.spa.fl_str_mv Medicina veterinaria y zootecnia
dc.publisher.place.spa.fl_str_mv Bucaramanga
institution Universidad Cooperativa de Colombia
bitstream.url.fl_str_mv https://repository.ucc.edu.co/bitstreams/caba696c-4647-4d09-9bdc-86c707745751/download
https://repository.ucc.edu.co/bitstreams/068da927-e143-465f-9529-46d15e9c6002/download
https://repository.ucc.edu.co/bitstreams/f347bd06-0389-4443-ace8-4073e4c26713/download
https://repository.ucc.edu.co/bitstreams/0d51b3b8-e146-4344-a600-3e7116ee2a68/download
https://repository.ucc.edu.co/bitstreams/ac3727c4-ccce-4850-b3c1-4e27a3cb22a4/download
https://repository.ucc.edu.co/bitstreams/f64293b0-70c4-4f66-ae14-573fcceabec2/download
https://repository.ucc.edu.co/bitstreams/6b161997-873d-4ec6-8d3a-54a87aa88c71/download
bitstream.checksum.fl_str_mv 62b314373cd38d4777a1ce9e54f7cf75
2a6c8bc233ddf5d349e3c1015ce05bed
3bce4f7ab09dfc588f126e1e36e98a45
aeea1c9580684dd2916e7190f9591ec6
f11baaf015e3c6b78be37a037534d447
24ae57189c1460014d058ef270440942
6d93d3216dc4a7f5df47d4876fbec4d3
bitstream.checksumAlgorithm.fl_str_mv MD5
MD5
MD5
MD5
MD5
MD5
MD5
repository.name.fl_str_mv Repositorio Institucional Universidad Cooperativa de Colombia
repository.mail.fl_str_mv bdigital@metabiblioteca.com
_version_ 1808788891278245888
spelling Albarracín Balaguera, Miguel AntonioFigueredo Matheus, Julieth Andrea2019-08-06T21:05:59Z2019-08-06T21:05:59Z2019https://hdl.handle.net/20.500.12494/13213Figueredo Matheus, J. A. (2019). Alternativas de alimentación de monogástricos a base de larvas de Soldado Negro (Hermetia illucens): Revisión de literatura. (Tesis de pregrado). Recuperado de: http://repository.ucc.edu.co/handle/ucc/13213El crecimiento de la población humana mundial y de sus ingresos impulsa la demanda de alimentos y cambia las preferencias dietéticas hacia un mayor consumo de productos de origen animal. Siendo los insectos fuente natural de alimento para varias especies animales, la producción y posterior inclusión de estos en sus dietas es materia de investigación en la última década. La mosca soldado negro MSN (Hermetia illucens) posee características únicas que han hecho que sea reconocida como modelo para reducir el desperdicio orgánico al mismo tiempo que se produce biomasa de alto valor biológico. En este sentido, el objetivo de la presente revisión es describir la viabilidad de incorporar larvas de mosca soldado negro en la alimentación de monogástricos, fundamentado en el conocimiento de su potencial productivo de biomasa, características nutricionales y alimenticias y la inclusión idónea en dietas de varias especies animales.World population and income growth drives up food demand and change people’s dietary preferences towards a greater consumption of animal origin products. Insects are natural source of food for many animal species, reason why in the last decade its inclusion in their diets is being research. Black Soldier Fly (Hermetia illucens) has been recognized as a model to reduce organic waste at the same time its high biological value biomass is produced. Hence, the objective of the present review is to describe the feasibility of black soldier inclusion in monogastric feeding, based on the knowledge of its biomass productive potential, nutritional characteristics and ideal inclusion in varied animal species.Resumen. -- Introducción. -- 1. Planteamiento del problema. -- Pregunta de investigación. -- 2. Justificación. -- 3. Objetivos. -- 3.1. General. -- 3.2. Específicos. -- 4. Metodología. -- 4.1. Diseño de la investigación. -- 4.2. Universo. -- 4.3. Población de estudio. -- 4.4. Criterios de estudio. -- 4.4.1. Criterios de inclusión. -- 4.4.2. Criterios de exclusión. -- 5. Descripción del proyecto de investigación. -- 6. Marco teórico. -- 6.1. Aumento demanda mundial de alimentos para consumo humano. -- 6.2. Demanda mundial de materias primas de origen vegetal y animal para alimentación de monogástricos. -- 6.3. Insectos como fuente de alimentación. -- 6.4. Insectos en la alimentación humana. -- 6.5. Insectos en la alimentación animal. -- 6.6. Especies de insectos usados en alimentación animal. -- 6.6.1. Orden Diptera. -- 6.6.2. Orden Coleoptera. -- 6.6.3. Orden Lepidoptera. -- 6.6.4. Orden Orthoptera. -- 7. Resultados. -- 7.1. MSN Hermetia illucens como alternativa en la alimentación animal. -- 7.1.1. Ciclo de vida. -- 7.1.2. Entorno ambiental y potencial productivo. -- 7.1.3. Potencial económico de la MSN. -- 7.1.4. Normatividad asociada a su producción y comercialización. -- 7.2. Valor nutricional de la larva de la mosca soldado negro. -- 7.3. Uso de larvas de mosca soldado negro en la alimentación de monogástricos. -- 7.3.1. Sistema de producción avícola. -- 7.3.2. Sistema de producción porcícola. -- 7.3.3. Sistema de producción acuícola. -- 7.3.4. Otras especies. -- 8. Conclusiones. -- 9. Bibliografía.julieth.figueredom@campusucc.edu.co62 p. Universidad Cooperativa de Colombia, Facultad de Ciencias de la Salud, Medicina Veterinaría y Zootecnia, BucaramangaMedicina veterinaria y zootecniaBucaramangaMosca soldado negroInclusiónDietasMonogástricosTG 2019 MVZ 13213Black soldier flyInclusionDietsMonogastricsAlternativas de alimentación de monogástricos a base de larvas de soldado negro (hermetia illucens): revisión de literaturaTrabajo de grado - Pregradohttp://purl.org/coar/resource_type/c_7a1finfo:eu-repo/semantics/bachelorThesisinfo:eu-repo/semantics/acceptedVersionAtribución – Sin Derivarinfo:eu-repo/semantics/closedAccesshttp://purl.org/coar/access_right/c_14cbSmetana S, Palanisamy M, Mathys A, Heinz V. Sustainability of insect use for feed and food: Life Cycle Assessment perspective. J Clean Prod. 2016;137:741-51.van Zanten HHE, Mollenhorst H, Klootwijk CW, van Middelaar CE, de Boer IJM. Global food supply: land use efficiency of livestock systems. Int J Life Cycle Assess. 1 de mayo de 2016;21(5):747-58.FAO, 2018. The future of food and agriculture – Alternative pathways to 2050. Rome; 224 p.Sánchez-Muros M-J, Barroso FG, Manzano-Agugliaro F. Insect meal as renewable source of food for animal feeding: a review. J Clean Prod. 15 de febrero de 2014;65:16-27.Ritchie H, Roser M. Meat and Seafood Production & Consumption. Our World Data [Internet]. 25 de agosto de 2017 [citado 25 de junio de 2019]; Disponible en: https://ourworldindata.org/meat-and-seafood-production-consumptionHall Stephen, Delaporte Anne, Phillpis Michael, Beveridge Malcolm, O’keefe Mark. Blue frontiers: Managing the environmenrtal costs of Aquaculture. Malaysia: The Worldfish Center; 2011.Spranghers T, Ottoboni M, Klootwijk C, Ovyn A, Deboosere S, Meulenaer BD, et al. Nutritional composition of black soldier fly (Hermetia illucens) prepupae reared on different organic waste substrates. J Sci Food Agric. 2017;97(8):2594-600.Lalander C, Diener S, Zurbrügg C, Vinnerås B. Effects of feedstock on larval development and process efficiency in waste treatment with black soldier fly (Hermetia illucens). J Clean Prod. 20 de enero de 2019;208:211-9.Henry M, Gasco L, Piccolo G, Fountoulaki E. Review on the use of insects in the diet of farmed fish: Past and future. Anim Feed Sci Technol. 1 de mayo de 2015;203:1-22.Huis A van. Edible insects: future prospects for food and feed security. Rome: Food and Agriculture Organization of the United Nations; 2013. 187 p. (FAO forestry paper).Smetana S, Schmitt E, Mathys A. Sustainable use of Hermetia illucens insect biomass for feed and food: Attributional and consequential life cycle assessment. Resour Conserv Recycl. 1 de mayo de 2019;144:285-96.Spranghers T, Michiels J, Vrancx J, Ovyn A, Eeckhout M, De Clercq P, et al. Gut antimicrobial effects and nutritional value of black soldier fly (Hermetia illucens L.) prepupae for weaned piglets. Anim Feed Sci Technol. 1 de enero de 2018;235:33-42.Stadtlander T, Stamer A, Buser A, Wohlfahrt J, Leiber F, Sandrock C. Hermetia illucens meal as fish meal replacement for rainbow trout on farm. J Insects Food Feed. 1 de septiembre de 2017;3(3):165-75.Renna M, Schiavone A, Gai F, Dabbou S, Lussiana C, Malfatto V, et al. Evaluation of the suitability of a partially defatted black soldier fly (Hermetia illucens L.) larvae meal as ingredient for rainbow trout (Oncorhynchus mykiss Walbaum) diets. J Anim Sci Biotechnol [Internet]. 2017;8(1). Disponible en: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85021676323&doi=10.1186%2fs40104-017-0191-3&partnerID=40&md5=4a75231a3175fcd7a3441b9454cbde78Dumas A, Raggi T, Barkhouse J, Lewis E, Weltzien E. The oil fraction and partially defatted meal of black soldier fly larvae (Hermetia illucens) affect differently growth performance, feed efficiency, nutrient deposition, blood glucose and lipid digestibility of rainbow trout (Oncorhynchus mykiss). Aquaculture. 1 de julio de 2018;492:24-34.Ushakova NA, Bastrakov AI, Kozlova AA, Ponomarev SV, Bakaneva YM, Fedorovykh YV, et al. Features of the effect of a complex probiotic with Bacillus bacteria and the larvae of Hermetia illucens biomass on Mozambique tilapia (Oreochromis mossambicus × O. niloticus) and Russian sturgeon (Acipenser gueldenstaedti) fry. Biol Bull. 2016;43(5):450-6.Dietz C, Liebert F. Does graded substitution of soy protein concentrate by an insect meal respond on growth and N-utilization in Nile tilapia (Oreochromis niloticus)? Aquac Rep. 1 de noviembre de 2018;12:43-8.Magalhães R, Sánchez-López A, Leal RS, Martínez-Llorens S, Oliva-Teles A, Peres H. Black soldier fly (Hermetia illucens) pre-pupae meal as a fish meal replacement in diets for European seabass (Dicentrarchus labrax). Aquaculture. 2017;476:79-85.Li S, Ji H, Zhang B, Tian J, Zhou J, Yu H. Influence of black soldier fly (Hermetia illucens) larvae oil on growth performance, body composition, tissue fatty acid composition and lipid deposition in juvenile Jian carp (Cyprinus carpio var. Jian). Aquaculture. 1 de diciembre de 2016;465:43-52.Kumar K, Borsra MZS, Ganesan D, Kuppusamy G, Herriman M, Salter A, et al. Efficacy of insect larval meal to replace fish meal in juvenile barramundi, Lates calcarifer reared in freshwater. Int Aquat Res. diciembre de 2017;9(4):303-12.Kroeckel S, Harjes A-GE, Roth I, Katz H, Wuertz S, Susenbeth A, et al. When a turbot catches a fly: Evaluation of a pre-pupae meal of the Black Soldier Fly (Hermetia illucens) as fish meal substitute - Growth performance and chitin degradation in juvenile turbot (Psetta maxima). Aquaculture. 2012;364-365:345-52.Veldkamp T, Bosch G. Insects: A protein-rich feed ingredient in pig and poultry diets. Anim Front. 2015;5(2):45-50.Cummins VC, Rawles SD, Thompson KR, Velasquez A, Kobayashi Y, Hager J, et al. Evaluation of black soldier fly (Hermetia illucens) larvae meal as partial or total replacement of marine fish meal in practical diets for Pacific white shrimp (Litopenaeus vannamei). Aquaculture. 2017;473:337-44.Belghit I, Liland NS, Gjesdal P, Biancarosa I, Menchetti E, Li Y, et al. Black soldier fly larvae meal can replace fish meal in diets of sea-water phase Atlantic salmon (Salmo salar). Aquaculture [Internet]. 12 de diciembre de 2018; Disponible en: http://www.sciencedirect.com/science/article/pii/S0044848618322208Belghit I, Liland NS, Waagbø R, Biancarosa I, Pelusio N, Li Y, et al. Potential of insect-based diets for Atlantic salmon (Salmo salar). Aquaculture. 1 de abril de 2018;491:72-81.Clarke R, Bostock J. Regional Review on Status and Trends in Aquaculture Development in Europe - 2015 [Internet]. Food and Agriculture Organisation of the United Nations; 2017 [citado 28 de junio de 2019]. Disponible en: http://dspace.stir.ac.uk/handle/1893/24988Secci G, Mancini S, Iaconisi V, Gasco L, Basto A, Parisi G. Can the inclusion of black soldier fly (Hermetia illucens) in diet affect the flesh quality/nutritional traits of rainbow trout (Oncorhynchus mykiss) after freezing and cooking? Int J Food Sci Nutr. 17 de julio de 2018;1-11.Mancini S, Medina I, Iaconisi V, Gai F, Basto A, Parisi G. Impact of black soldier fly larvae meal on the chemical and nutritional characteristics of rainbow trout fillets. Anim Int J Anim Biosci. agosto de 2018;12(8):1672-81.Huyben D, Vidaković A, Werner Hallgren S, Langeland M. High-throughput sequencing of gut microbiota in rainbow trout (Oncorhynchus mykiss) fed larval and pre-pupae stages of black soldier fly (Hermetia illucens). Aquaculture. 1 de febrero de 2019;500:485-91.Bruni L, Pastorelli R, Viti C, Gasco L, Parisi G. Characterisation of the intestinal microbial communities of rainbow trout (Oncorhynchus mykiss) fed with Hermetia illucens (black soldier fly) partially defatted larva meal as partial dietary protein source. Aquaculture. 25 de febrero de 2018;487:56-63Zarantoniello M, Bruni L, Randazzo B, Vargas A, Gioacchini G, Truzzi C, et al. Partial Dietary Inclusion of Hermetia illucens (Black Soldier Fly) Full-Fat Prepupae in Zebrafish Feed: Biometric, Histological, Biochemical, and Molecular Implications. Zebrafish. octubre de 2018;15(5):519-32.Vargas A, Randazzo B, Riolo P, Truzzi C, Gioacchini G, Giorgini E, et al. Rearing Zebrafish on Black Soldier Fly (Hermetia illucens): Biometric, Histological, Spectroscopic, Biochemical, and Molecular Implications. Zebrafish. 2018;15(4):404-19.Arnold van Huis. Edible insects contributing to food security? Agric Food Secur [Internet]. 2015;4. Disponible en: https://search.proquest.com/docview/1771742653?accountid=44394Wallace PA, Nyameasem JK, Adu-Aboagye GA, Affedzie-Obresi S, Nkegbe EK, Karbo N, et al. Impact of black soldier fly larval meal on growth performance, apparent digestibility, haematological and blood chemistry indices of guinea fowl starter keets under tropical conditions. Trop Anim Health Prod. 2017;49(6):1163-9.Wallace PA, Nyameasem JK, Aboagye GA, Affedzie-Obresi S, Nkegbe K, Murray F, et al. Effects of replacing fishmeal with black soldier fly larval meal in the diets of grower-finishing guinea fowls reared under tropical conditions. Trop Anim Health Prod. octubre de 2018;50(7):1499-507Cullere M, Tasoniero G, Giaccone V, Miotti-Scapin R, Claeys E, De Smet S, et al. Black soldier fly as dietary protein source for broiler quails: Apparent digestibility, excreta microbial load, feed choice, performance, carcass and meat traits. Animal. 2016;10(12):1923-30.Cullere M, Tasoniero G, Giaccone V, Acuti G, Marangon A, Dalle Zotte A. Black soldier fly as dietary protein source for broiler quails: meat proximate composition, fatty acid and amino acid profile, oxidative status and sensory traits. Anim Int J Anim Biosci. 2018;12(3):640-7.Martins C, Cullere M, Zotte AD, Cardoso C, Alves SP, De Bessa RJB, et al. Incorporation of two levels of black soldier fly (Hermetia illucens L.) larvae fat or extruded linseed in diets of growing rabbits: Effects on growth performance and diet digestibility. Czech J Anim Sci. 2018;63(9):356-62.Dalle Zotte A, Cullere M, Martins C, Alves SP, Freire JPB, Falcão-e-Cunha L, et al. Incorporation of Black Soldier Fly (Hermetia illucens L.) larvae fat or extruded linseed in diets of growing rabbits and their effects on meat quality traits including detailed fatty acid composition. Meat Sci. 1 de diciembre de 2018;146:50-8.Loponte R, Nizza S, Bovera F, De Riu N, Fliegerova K, Lombardi P, et al. Growth performance, blood profiles and carcass traits of Barbary partridge (Alectoris barbara) fed two different insect larvae meals (Tenebrio molitor and Hermetia illucens). Res Vet Sci. 1 de diciembre de 2017;115:183-8.Pastor B, Velasquez Y, Gobbi P, Rojo S. Conversion of organic wastes into fly larval biomass: bottlenecks and challenges. J Insects Food Feed. 3 de julio de 2015;1(3):179-93.Craig Sheppard D, Larry Newton G, Thompson SA, Savage S. A value added manure management system using the black soldier fly. Bioresour Technol. 1 de enero de 1994;50(3):275-9.Veldkamp T, Duinkerken G van, Huis A van, Lakemond CMM, Ottevanger E, Bosch G, et al. Insects as a sustainable feed ingredient in pig and poultry diets : a feasibility study = Insecten als duurzame diervoedergrondstof in varkens- en pluimveevoeders : een haalbaarheidsstudie [Internet]. Lelystad: Wageningen UR Livestock Research; 2012 [citado 27 de diciembre de 2018] p. Report No.: 638. Disponible en: https://library.wur.nl/WebQuery/wurpubs/428703Collins S. Antinutritional factors in modeling plant-based rainbow trout diets. febrero de 2014 [citado 17 de marzo de 2019]; Disponible en: https://harvest.usask.ca/handle/10388/ETD-2014-02-1426Santamaría, S. C. Monografía Nutrición y alimentación en peces nativos [Internet]. Universidad Nacional Abierta y a Distancia-ECAPMA; 2014. Disponible en: https://repository.unad.edu.co/bitstream/10596/2697/1/23591903.pdfNguyen TTX, Tomberlin JK, Vanlaerhoven S. Influence of resources on Hermetia illucens (Diptera: Stratiomyidae) larval development. J Med Entomol. julio de 2013;50(4):898-906.Arango Gutiérrez GP, Vergara Ruiz RA, Humberto Mejía Vélez. Análisis composicional, microbiológico y digestibilidad de la proteína de la harina de larvas de hermetia illuscens L (diptera:stratiomyiidae) en angelópolis-Antioquia, Colombia. Rev Fac Nac Agron Medellin. 2004;57(2):2491-9.Cortes Ortiz JA, Ruiz AT, Morales-Ramos JA, Thomas M, Rojas MG, Tomberlin JK, et al. Chapter 6 - Insect Mass Production Technologies. En: Dossey AT, Morales-Ramos JA, Rojas MG, editores. Insects as Sustainable Food Ingredients [Internet]. San Diego: Academic Press; 2016. p. 153-201. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780128028568000065Béné C, Barange M, Subasinghe R, Pinstrup-Andersen P, Merino G, Hemre G-I, et al. Feeding 9 billion by 2050 – Putting fish back on the menu. Food Secur. abril de 2015;7(2):261-74.FAO, editor. Building climate resilience for food security and nutrition. Rome: FAO; 2018. 181 p. (The state of food security and nutrition in the world).Onsongo VO, Osuga IM, Gachuiri CK, Wachira AM, Miano DM, Tanga CM, et al. Insects for Income Generation Through Animal Feed: Effect of Dietary Replacement of Soybean and Fish Meal With Black Soldier Fly Meal on Broiler Growth and Economic Performance. J Econ Entomol. 11 de mayo de 2018.Banaszkiewicz T. Nutritional Value of Soybean Meal. Soybean Nutr [Internet]. 12 de septiembre de 2011 [citado 11 de marzo de 2019]; Disponible en: https://www.intechopen.com/books/soybean-and-nutrition/nutritional-value-of-soybean-mealSánchez-Muros M-J, Barroso FG, Manzano-Agugliaro F. Insect meal as renewable source of food for animal feeding: a review. J Clean Prod. 15 de febrero de 2014;65:16-27.Sánchez-Muros MJ, Barroso FG, de Haro C. Chapter 10 - Brief Summary of Insect Usage as an Industrial Animal Feed/Feed Ingredient. En: Dossey AT, Morales-Ramos JA, Rojas MG, editores. Insects as Sustainable Food Ingredients [Internet]. San Diego: Academic Press; 2016. p. 273-309. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780128028568000107Mertenat A, Diener S, Zurbrügg C. Black Soldier Fly biowaste treatment – Assessment of global warming potential. Waste Manag. febrero de 2019;84:173-81.Muys, B, Roffeis, M. Generic life cycle assessment of proteins from insects. En Netherlands; 2014. p. 27. Disponible en: https://www.biw.kuleuven.be/lbh/lbnl/forecoman/docs/Generic%20LCA%20proteinsect.pdfNguyen TTX, Tomberlin JK, Vanlaerhoven S. Ability of Black Soldier Fly (Diptera: Stratiomyidae) Larvae to Recycle Food Waste. Environ Entomol. 1 de abril de 2015;44(2):406-10.Zheng L, Hou Y, Li W, Yang S, Li Q, Yu Z. Biodiesel production from rice straw and restaurant waste employing black soldier fly assisted by microbes. Energy. noviembre de 2012;47(1):225-9.Tripathi AD, Mishra R, Maurya KK, Singh RB, Wilson DW. Chapter 1 - Estimates for World Population and Global Food Availability for Global Health. En: Singh RB, Watson RR, Takahashi T, editores. The Role of Functional Food Security in Global Health [Internet]. Academic Press; 2019. p. 3-24. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780128131480000013Ran Y, van Middelaar CE, Lannerstad M, Herrero M, de Boer IJM. Freshwater use in livestock production—To be used for food crops or livestock feed? Agric Syst. 1 de julio de 2017;155:1-8.Flachowsky G, Meyer U, Karl-Heinz Südekum. Invited review: Resource inputs and land, water and carbon footprints from the production of edible protein of animal origin. Arch Fuer Tierz. 2018;61(1):17-36.Barragan-Fonseca KB, Dicke M, van Loon JJA. Nutritional value of the black soldier fly (Hermetia illucens L.) and its suitability as animal feed - a review. J Insects Food Feed. 2017;3(2):105-20.World Population Prospects - Population Division - United Nations [Internet]. [citado 14 de abril de 2019]. Disponible en: https://population.un.org/wpp/Graphs/Probabilistic/POP/TOT/ONU: Asamblea General. Declaración Universal de los Derechos Humanos [Internet]. 1948. Disponible en: https://www.ohchr.org/EN/UDHR/Documents/UDHR_Translations/spn.pdfAsamblea Nacional Constituyente. Constitución Política de Colombia [Internet]. 1991. Disponible en: https://www.cna.gov.co/1741/articles-186370_constitucion_politica.pdfDepartamento Nacional de Planeación. Documento CONPES Social 113: Política Nacional de Seguridad Alimentaria y Nutricional (PSAN) [Internet]. 2007. Disponible en: https://www.icbf.gov.co/sites/default/files/conpes_113_de_2008.pdfDi Paola A, Rulli MC, Santini M. Human food vs. animal feed debate. A thorough analysis of environmental footprints. Land Use Policy. 1 de septiembre de 2017;67:652-9.Day L. Proteins from land plants – Potential resources for human nutrition and food security. Trends Food Sci Technol. 1 de julio de 2013;32(1):25-42.Ankamah-Yeboah I, Jacobsen JB, Olsen SB. Innovating out of the fishmeal trap. Br Food J. 2018;120(10):2395-410.van Huis A. Potential of Insects as Food and Feed in Assuring Food Security. Annu Rev Entomol. 2013;58(1):563-83.Mottet A, de Haan C, Falcucci A, Tempio G, Opio C, Gerber P. Livestock: On our plates or eating at our table? A new analysis of the feed/food debate. Glob Food Secur. 1 de septiembre de 2017;14:1-8.Nebel BJ, Wright RT. Ciencias ambientales: ecología y desarrollo sostenible. Pearson Educación; 1999. 738 p.Gahukar RT. Chapter 4 - Edible Insects Farming: Efficiency and Impact on Family Livelihood, Food Security, and Environment Compared With Livestock and Crops. En: Dossey AT, Morales-Ramos JA, Rojas MG, editores. Insects as Sustainable Food Ingredients [Internet]. San Diego: Academic Press; 2016. p. 85-111. Disponible en: http://www.sciencedirect.com/science/article/pii/B978012802856800004Moutinho S, Martínez-Llorens S, Tomás-Vidal A, Jover-Cerdá M, Oliva-Teles A, Peres H. Meat and bone meal as partial replacement for fish meal in diets for gilthead seabream (Sparus aurata) juveniles: Growth, feed efficiency, amino acid utilization, and economic efficiency. Aquaculture. 1 de febrero de 2017;468:271-7.Suloma A, Mabroke RS, El-Haroun ER. Meat and bone meal as a potential source of phosphorus in plant-protein-based diets for Nile tilapia (Oreochromis niloticus). Aquac Int. 1 de abril de 2013;21(2):375-85.correspondent RSC affairs. Dog food made from insects to go on sale in UK for first time. The Guardian [Internet]. 10 de enero de 2019 [citado 30 de junio de 2019]; Disponible en: https://www.theguardian.com/environment/2019/jan/10/dog-food-made-from-insects-on-saleSwanson KS, Carter RA, Yount TP, Aretz J, Buff PR. Nutritional Sustainability of Pet Foods12. Adv Nutr. 6 de marzo de 2013;4(2):141-50.Oonincx DGAB, Itterbeeck J van, Heetkamp MJW, Brand H van den, Loon JJA van, Huis A van. An Exploration on Greenhouse Gas and Ammonia Production by Insect Species Suitable for Animal or Human Consumption. PLOS ONE. dic de 2010;5(12):e14445.Makkar HPS, Tran G, Heuzé V, Ankers P. State-of-the-art on use of insects as animal feed. Anim Feed Sci Technol. 2014;197:1-33.Allegretti G, Talamini E, Schmidt V, Bogorni PC, Ortega E. Insect as feed: An emergy assessment of insect meal as a sustainable protein source for the Brazilian poultry industry. J Clean Prod. 2018;171:403-12.Barroso FG, de Haro C, Sánchez-Muros M-J, Venegas E, Martínez-Sánchez A, Pérez-Bañón C. The potential of various insect species for use as food for fish. Aquaculture. 20 de febrero de 2014;422-423:193-201.Liu C, Zhao J. Insects as a Novel Food. En: Melton L, Shahidi F, Varelis P, editores. Encyclopedia of Food Chemistry [Internet]. Oxford: Academic Press; 2019. p. 428-36. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780081005965217824Gallo M. Novel Foods: Insects - Safety Issues. En: Ferranti P, Berry EM, Anderson JR, editores. Encyclopedia of Food Security and Sustainability [Internet]. Oxford: Elsevier; 2019. p. 294-9. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780081005965221343Patel S, Suleria HAR, Rauf A. Edible insects as innovative foods: Nutritional and functional assessments. Trends Food Sci Technol. 1 de abril de 2019;86:352-9.Sidali KL, Pizzo S, Garrido-Pérez EI, Schamel G. Between food delicacies and food taboos: A structural equation model to assess Western students’ acceptance of Amazonian insect food. Food Res Int. 1 de enero de 2019;115:83-9.Dossey AT, Morales-Ramos JA, Rojas MG. Insects as Sustainable Food Ingredients: Production, Processing and Food Applications. Academic Press; 2016. 404 p.Wang Y-S, Shelomi M. Review of Black Soldier Fly (Hermetia illucens) as Animal Feed and Human Food. Foods Basel Switz. 18 de octubre de 2017;6(10).Kuhnlein HV, Food and Agriculture Organization of the United Nations, McGill University, editores. Indigenous peoples’ food systems & well-being: interventions & policies for healthy communities. Rome : Ste. Anne de Bellevue, Quebec: Food and Agriculture Organization of the United Nations ; Centre for Indigenous Peoples’ Nutrition and Environment; 2013. 398 p.Gere A, Radványi D, Héberger K. Which insect species can best be proposed for human consumption? Innov Food Sci Emerg Technol. 1 de marzo de 2019;52:358-67.Choi W-H, Yun J-H, Chu J-P, Chu K-B. Antibacterial effect of extracts of Hermetia illucens (Diptera: Stratiomyidae) larvae against Gram-negative bacteria. Entomol Res. 2012;42(5):219-26.Gere A, Zemel R, Radványi D, Moskowitz H. Consumer Response to Insect Foods. En: Reference Module in Food Science [Internet]. Elsevier; 2018. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780081005965218817Dossey AT, Tatum JT, McGill WL. Chapter 5 - Modern Insect-Based Food Industry: Current Status, Insect Processing Technology, and Recommendations Moving Forward. En: Dossey AT, Morales-Ramos JA, Rojas MG, editores. Insects as Sustainable Food Ingredients [Internet]. San Diego: Academic Press; 2016. p. 113-52. Disponible en: http://www.sciencedirect.com/science/article/pii/B9780128028568000053Rumpold BA, Schlüter OK. Nutritional composition and safety aspects of edible insects. Mol Nutr Food Res. mayo de 2013;57(5):802-23.Vantomme P, Mertens E, van Huis A, Klunder H. Assessing the Potential of Insects as Food and Feed in assuring Food Security-Summary report [Internet]. Rome: FAO; 2012 p. 38. Disponible en: http://www.fao.org/docrep/015/an233e/an233e00.pdfLalander CH, Fidjeland J, Diener S, Eriksson S, Vinnerås B. High waste-to-biomass conversion and efficient Salmonella spp. reduction using black soldier fly for waste recycling. Agron Sustain Dev. 1 de enero de 2015;35(1):261-71.Müller A, Wolf D, Gutzeit HO. The black soldier fly, Hermetia illucens – a promising source for sustainable production of proteins, lipids and bioactive substances. Z Für Naturforschung C. 26 de septiembre de 2017;72(9-10):351-63.YaşAr B, çIrik T. Life Tables of Hermetia illucens (Linnaeus, 1758) (Diptera: Stratiomyidae) on Different Foods. Süleyman Demirel Üniversitesi Fen Bilim Enstitüsü Derg. 10 de septiembre de 2018;22(Özel):392.Liu X, Chen X, Wang H, Yang Q, Ur Rehman K, Li W, et al. Dynamic changes of nutrient composition throughout the entire life cycle of black soldier fly. PLoS ONE [Internet]. 2017;12(8). Disponible en: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85027281644&doi=10.1371%2fjournal.pone.0182601&partnerID=40&md5=60541abd26d99c442535753d49d93c18Allegretti G, Schmidt V, Talamini E. Insects as feed: Species selection and their potential use in Brazilian poultry production. Worlds Poult Sci J. 2017;73(4):928-37.Zamprogna A, Baldrighi P. Introducing Black soldier fly (Hermetia illucens) as a cheap protein source for poultry nutrition - Course APS-31306 "Future Livestock Systems’. 2017.Oonincx DGAB, van Broekhoven S, van Huis A, van Loon JJA. Feed Conversion, Survival and Development, and Composition of Four Insect Species on Diets Composed of Food By-Products. Papadopoulos NT, editor. PLOS ONE. 23 de diciembre de 2015;10(12):e0144601.Barragan-Fonseca KB, Dicke M, van Loon JJA. Influence of larval density and dietary nutrient concentration on performance, body protein, and fat contents of black soldier fly larvae (Hermetia illucens). Entomol Exp Appl. 2018;166(9):761-70.Moula N, Scippo M-L, Douny C, Degand G, Dawans E, Cabaraux J-F, et al. Performances of local poultry breed fed black soldier fly larvae reared on horse manure. Anim Nutr. 1 de marzo de 2018;4(1):73-8.Xiao X, Mazza L, Yu Y, Cai M, Zheng L, Tomberlin JK, et al. Efficient co-conversion process of chicken manure into protein feed and organic fertilizer by Hermetia illucens L. (Diptera: Stratiomyidae) larvae and functional bacteria. J Environ Manage. 1 de julio de 2018;217:668-76.Eilenberg J, Vlak J m., Nielsen-LeRoux C, Cappellozza S, Jensen A b. Diseases in insects produced for food and feed. J Insects Food Feed. 1 de enero de 2015;1(2):87-102.Elhag O, Zhou D, Song Q, Soomro AA, Cai M, Zheng L, et al. Screening, Expression, Purification and Functional Characterization of Novel Antimicrobial Peptide Genes from Hermetia illucens (L.). PLOS ONE. ene de 2017;12(1):e0169582.Diener S, Lalander C, Zurbrügg C, Vinnerås B. Opportunities and constraints for medium-scale organic waste treatment with fly larvae composting. En 2015.Dortmans B., Diener S., Verstappen B., Zurbrügg C. Black Soldier Fly Biowaste Processing. A Step-by-Step Guide. Dübendorf, Switzerland: Swiss Federal Institute of Aquatic Science and Technology; 2017. 100 p.Home [Internet]. AgriProtein. [citado 29 de mayo de 2019]. Disponible en: https://agriprotein.com/Bühler Insect Technology Solutions [Internet]. [citado 29 de mayo de 2019]. Disponible en: https://www.buhlergroup.com/global/en/about-buehler/insects-sustainable-protein-source/buehler-insect-technology-solutions.htmFood For the Future F4F [Internet]. F4F. [citado 1 de julio de 2019]. Disponible en: http://f4f.cl/Salomone R, Saija G, Mondello G, Giannetto A, Fasulo S, Savastano D. Environmental impact of food waste bioconversion by insects: Application of Life Cycle Assessment to process using Hermetia illucens. J Clean Prod. 1 de enero de 2017;140:890-905.Gold M, Tomberlin JK, Diener S, Zurbrügg C, Mathys A. Decomposition of biowaste macronutrients, microbes, and chemicals in black soldier fly larval treatment: A review. Waste Manag. 1 de diciembre de 2018;82:302-18.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 (Text with EEA relevance. ) [Internet]. OJ L, 32017R0893 may 25, 2017. Disponible en: http://data.europa.eu/eli/reg/2017/893/oj/engAl-Qazzaz MFA, Ismail D, Akit H, Idris LH. Effect of using insect larvae meal as a complete protein source on quality and productivity characteristics of laying hens. Rev Bras Zootec. 2016;45:518-23.Bovera F, Loponte R, Pero ME, Cutrignelli MI, Calabrò S, Musco N, et al. Laying performance, blood profiles, nutrient digestibility and inner organs traits of hens fed an insect meal from Hermetia illucens larvae. Res Vet Sci. 2018;120:86-93.Mwaniki Z, Neijat M, Kiarie E. Egg production and quality responses of adding up to 7.5% defatted black soldier fly larvae meal in a corn-soybean meal diet fed to Shaver White Leghorns from wk 19 to 27 of age. Poult Sci. 2018;97(8):2829-35.Marono S, Loponte R, Lombardi P, Vassalotti G, Pero ME, Russo F, et al. Productive performance and blood profiles of laying hens fed Hermetia illucens larvae meal as total replacement of soybean meal from 24 to 45 weeks of age. Poult Sci. 2017;96(6):1783-90.Secci G, Bovera F, Nizza S, Baronti N, Gasco L, Conte G, et al. Quality of eggs from Lohmann Brown Classic laying hens fed black soldier fly meal as substitute for soya bean. Anim Int J Anim Biosci. octubre de 2018;12(10):2191-7.Schiavone A, Dabbou S, De Marco M, Cullere M, Biasato I, Biasibetti E, et al. Black soldier fly larva fat inclusion in finisher broiler chicken diet as an alternative fat source. Anim Int J Anim Biosci. octubre de 2018;12(10):2032-9.Leiber F, Gelencsér T, Stamer A, Amsler Z, Wohlfahrt J, Früh B, et al. Insect and legume-based protein sources to replace soybean cake in an organic broiler diet: Effects on growth performance and physical meat quality. Renew Agric Food Syst. febrero de 2017;32(1):21-7.De Marco M, Martínez S, Hernandez F, Madrid J, Gai F, Rotolo L, et al. Nutritional value of two insect larval meals (Tenebrio molitor and Hermetia illucens) for broiler chickens: Apparent nutrient digestibility, apparent ileal amino acid digestibility and apparent metabolizable energy. Anim Feed Sci Technol. 1 de noviembre de 2015;209:211-8.Dabbou S, Gai F, Biasato I, Capucchio MT, Biasibetti E, Dezzutto D, et al. Black soldier fly defatted meal as a dietary protein source for broiler chickens: Effects on growth performance, blood traits, gut morphology and histological features. J Anim Sci Biotechnol [Internet]. 2018;9. Disponible en: https://search.proquest.com/docview/2071466065?accountid=44394Brede A, Wecke C, Liebert F. Does the Optimal Dietary Methionine to Cysteine Ratio in Diets for Growing Chickens Respond to High Inclusion Rates of Insect Meal from Hermetia illucens? Anim Open Access J MDPI. 23 de octubre de 2018;8(11).Pieterse E, Erasmus SW, Uushona T, Hoffman LC. Black soldier fly (Hermetia illucens) pre-pupae meal as a dietary protein source for broiler production ensures a tasty chicken with standard meat quality for every pot. J Sci Food Agric. 16 de julio de 2018;Altmann BA, Neumann C, Velten S, Liebert F, Mörlein D. Meat Quality Derived from High Inclusion of a Micro-Alga or Insect Meal as an Alternative Protein Source in Poultry Diets: A Pilot Study. Foods. 2018;7(3):34.Lee J, Kim Y-M, Park Y-K, Yang Y-C, Jung B-G, Lee B-J. Black soldier fly (Hermetia illucens) larvae enhances immune activities and increases survivability of broiler chicks against experimental infection of Salmonella Gallinarum. J Vet Med Sci. 2018;80(5):736-40.Neumann C, Velten S, Liebert F. N Balance Studies Emphasize the Superior Protein Quality of Pig Diets at High Inclusion Level of Algae Meal (Spirulina platensis) or Insect Meal (Hermetia illucens) when Adequate Amino Acid Supplementation Is Ensured. Anim Open Access J MDPI. 3 de octubre de 2018;8(10).Nekrasov RV, Pravdin IV, Kravtsova LZ, Bastrakov AI, Pashkova LA, Ushakova NA. BIOCHEMICAL CHARACTERISTICS OF HERMETIA ILLUCENS: A BASE FOR PROSPECTIVE USE OF LARVAL BIOMASS IN YOUNG PIG FOOD. J Nat Sci Sustain Technol. 2015;9(2):407-16.PublicationORIGINAL2019_alternativas_alimentacion_monogastricos.pdf2019_alternativas_alimentacion_monogastricos.pdf2019_Alternativas_de_alimentación_de monogástricos_a_base_de_larvas_de_soldado_negro_(Hermetia_illucens)_Revisión_de_literaturaapplication/pdf1077780https://repository.ucc.edu.co/bitstreams/caba696c-4647-4d09-9bdc-86c707745751/download62b314373cd38d4777a1ce9e54f7cf75MD512019_alternativas_alimentacion_monogastricos-FormatoLicencenciaUso.pdf2019_alternativas_alimentacion_monogastricos-FormatoLicencenciaUso.pdf2019_Alternativas_de_alimentación_de monogástricos_a_base_de_larvas_de_soldado_negro_(Hermetia_illucens)_Revisión_de_literatura_Licenciadeusoapplication/pdf76770https://repository.ucc.edu.co/bitstreams/068da927-e143-465f-9529-46d15e9c6002/download2a6c8bc233ddf5d349e3c1015ce05bedMD52LICENSElicense.txtlicense.txttext/plain; charset=utf-84334https://repository.ucc.edu.co/bitstreams/f347bd06-0389-4443-ace8-4073e4c26713/download3bce4f7ab09dfc588f126e1e36e98a45MD53THUMBNAIL2019_alternativas_alimentacion_monogastricos.pdf.jpg2019_alternativas_alimentacion_monogastricos.pdf.jpgGenerated Thumbnailimage/jpeg3307https://repository.ucc.edu.co/bitstreams/0d51b3b8-e146-4344-a600-3e7116ee2a68/downloadaeea1c9580684dd2916e7190f9591ec6MD542019_alternativas_alimentacion_monogastricos-FormatoLicencenciaUso.pdf.jpg2019_alternativas_alimentacion_monogastricos-FormatoLicencenciaUso.pdf.jpgGenerated Thumbnailimage/jpeg5301https://repository.ucc.edu.co/bitstreams/ac3727c4-ccce-4850-b3c1-4e27a3cb22a4/downloadf11baaf015e3c6b78be37a037534d447MD55TEXT2019_alternativas_alimentacion_monogastricos.pdf.txt2019_alternativas_alimentacion_monogastricos.pdf.txtExtracted texttext/plain101693https://repository.ucc.edu.co/bitstreams/f64293b0-70c4-4f66-ae14-573fcceabec2/download24ae57189c1460014d058ef270440942MD562019_alternativas_alimentacion_monogastricos-FormatoLicencenciaUso.pdf.txt2019_alternativas_alimentacion_monogastricos-FormatoLicencenciaUso.pdf.txtExtracted texttext/plain6https://repository.ucc.edu.co/bitstreams/6b161997-873d-4ec6-8d3a-54a87aa88c71/download6d93d3216dc4a7f5df47d4876fbec4d3MD5720.500.12494/13213oai:repository.ucc.edu.co:20.500.12494/132132024-08-09 12:30:35.327restrictedhttps://repository.ucc.edu.coRepositorio Institucional Universidad Cooperativa de Colombiabdigital@metabiblioteca.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