Integrated production of Nile tilapia juveniles and lettuce using biofloc technology

Springer Science and Business Media LLC - Tập 29 Số 1 - Trang 37-56 - 2021
Sara Mello Pinho1, Luiz H. David1, Simon Goddek2, Maurício Gustavo Coelho Emerenciano3, Maria Célia Portella4
1Aquaculture Center of Unesp (CAUNESP), São Paulo State University (Unesp), Jaboticabal, Brazil
2Mathematical and Statistical Methods (Biometris), Wageningen University, P.O. Box 16, 6700, AA, Wageningen, the Netherlands
3Aquaculture laboratory (LAQ), Santa Catarina State University (UDESC), Laguna, SC, Brazil
4Aquaculture Center of Unesp (CAUNESP), São Paulo State University (Unesp), Jaboticabal, SP, Brazil

Tóm tắt

Từ khóa


Tài liệu tham khảo

Avnimelech Y (2007) Feeding with microbial flocs by tilapia in minimal discharge bio-flocs technology ponds. Aquaculture 264:140–147. https://doi.org/10.1016/j.aquaculture.2006.11.025

Avnimelech Y (2015) Biofloc technology – a practical guide book, 3rd edn. The World Aquaculture Society, Baton Rouge, LO

Azim ME, Little DC (2008) The biofloc technology (BFT) in indoor tanks: water quality, biofloc composition, and growth and welfare of Nile tilapia (Oreochromis niloticus). Aquaculture 283:29–35. https://doi.org/10.1016/j.aquaculture.2008.06.036

Bakhsh HK, Chopin T (2012) A variation on the IMTA theme: a land-based, closed-containment freshwater IMTA system for tilapia and lettuce. Aquaculture Canada Spec Publ No 22(22):57–60

Barbosa M (2017) Biofloc technology: do filtering elements might affects lettuce aquaponics production integrated with tilapia? A thesis presented at animal science postgraduate program, Santa Catarina State University (degree of master of science), Chapecó, Santa Catarina, Brazil, December 2017

Brol J, Pinho SM, Sgnaulin T, Pereira KR, Thomas MC, Mello GL, Miranda-Baeza A, Emerenciano MGC (2017) Tecnologia de bioflocos (BFT) no desempenho zootécnico de tilápias: efeito da linhagem e densidades de estocagem. Archivos de Zootecnia 66:229–235

Brunson MW, Lutz CG, Durborow RM (1994) Algae blooms in commercial fish production ponds. Southern regional aquaculture center may:4

Buhmann AK, Waller U, Wecker B, Papenbrock J (2015) Optimization of culturing conditions and selection of species for the use of halophytes as biofilter for nutrient-rich saline water. Agric Water Manag 149:102–114. https://doi.org/10.1016/j.agwat.2014.11.001

Correa ADS, Pinho SM, Molinari D, Pereira KR, Guitiérrez SM, Monroy-Dosta MC, Emerenciano MGC (2019) Rearing of Nile tilapia (Oreochromis niloticus) juveniles in a biofloc system employing periods of feed deprivation. Journal of applied aquaculture:1–18. https://doi.org/10.1080/10454438.2019.1679319

Crab R, Defoirdt T, Bossier P, Verstraete W (2012) Biofloc technology in aquaculture: beneficial effects and future challenges. Aquaculture 356–357:351–356. https://doi.org/10.1016/j.aquaculture.2012.04.046

Danaher JJ, Shultz RC, Rakocy JE, Bailey DS (2013) Alternative solids removal for warm water recirculating raft aquaponic systems. J World Aquacult Soc 44(3):374–383. https://doi.org/10.1111/jwas.12040

de Alves GF, O, AFA F, Alvarenga ÉR, Turra EM, Sousa AB, Teixeira EA (2017) Effect of the transfer at different moments of juvenile Nile tilapia (Oreochromis niloticus) to the biofloc system in formation. Aquaculture 479:564–570. https://doi.org/10.1016/j.aquaculture.2017.06.029

Dediu L, Cristea V, Xiaoshuan Z (2012) Waste production and valorization in an integrated aquaponic system with bester and lettuce. Afr J Biotechnol 11:2349–2358. https://doi.org/10.5897/AJB11.2829

del Monroy-Dosta M, C, de Lara RA, Castro-Mejía J, Castro-Mejía G, MGC E (2013) Composición y abundancia de comunidades microbianas asociados al biofloc en un cultivo de tilapia. Revista de Biologia Marina y Oceanografia 48:511–520. https://doi.org/10.4067/S0718-19572013000300009

Delaide B, Goddek S, Gott J, Soyeurt H, Jijakli MH (2016) Lettuce (Lactuca sativa L. var. Sucrine) growth performance in complemented aquaponic solution outperforms hydroponics. Water (Switzerland) 8:1–11. https://doi.org/10.3390/w8100467

Delaide B, Delhaye G, Dermience M, Gott J, Soyeurt H, Jijakli MH (2017) Plant and fish production performance, nutrient mass balances, energy and water use of the PAFF box, a small-scale aquaponic system. Aquac Eng 78:130–139. https://doi.org/10.1016/j.aquaeng.2017.06.002

Durigon EG, Almeida APG, Jerônimo GT, Baldisseroto B, Emerenciano MGC (2019) Digestive enzymes and parasitology of Nile tilapia juveniles raised in brackish biofloc water and fed with different digestible protein and digestible energy levels. Aquaculture 506:35–41. https://doi.org/10.1016/j.aquaculture.2019.03.022

El-Sayed AFM (2006) Tilapia culture, 1st edn. CABI Publishing, Cambridge, MA. https://doi.org/10.1079/9780851990149.0000

Emerenciano M, Gaxiola G, Cuzon G (2013) Biofloc technology (BFT): a review for aquaculture application and animal food industry. In: Matovic MD (ed) Biomass now – cultivation and utilization. INTECH, pp 301–328. https://doi.org/10.5772/53902

Emerenciano M, Cuzon G, Arévalo M, Gaxiola G (2014) Biofloc technology in intensive broodstock farming of the pink shrimp Farfantepenaeus duorarum: spawning performance, biochemical composition and fatty acid profile of eggs. Aquac Res 45:1713–1726. https://doi.org/10.1111/are.12117

Emerenciano MGC, Martínez-Córdova LR, Martínez-Porchas M, Miranda-Baeza A (2017) Biofloc technology (BFT): a tool for water quality management in aquaculture. In: Tutu H (ed) water quality. INTECH, pp 91–109. https://doi.org/10.5772/66416

Fimbres-Acedo YE, Servín-Villegas R, Garza-Torres R, Endo M, Fitzsimmons KM, Emerenciano MGC, Magallón-Servín P, López-Vela M, Magallón-Barajas FJ (2020) Hydroponic horticulture using residual waters from Oreochromis niloticus aquaculture with biofloc technology in photoautotrophic conditions with Chlorella microalgae. Aquac Res:1–21. https://doi.org/10.1111/are.14779

Ghanekar A (2009) Biofloc reduces feed, filtration costs in recirculating shrimp nursery system. Global Aquaculture Alliance

Goddek S, Delaide B, Mankasingh U, Ragnarsdottir KV, Jijakli H, Thorarinsdottir R (2015) Challenges of sustainable and commercial aquaponics. Sustainability (Switzerland) 7:4199–4224. https://doi.org/10.3390/su7044199

Goddek S, Joyce A, Wuertz S, Körner O, Bläser I, Reuter M, Keesman KJ (2019) Decoupled aquaponics systems. In: Goddek S, Joyce A, Kotzen B, Burnell GM (eds) Aquaponics Food Production Systems. Springer, pp 201–229. https://doi.org/10.1007/978-3-030-15943-6_8

Godoy LC, Odebrecht C, Ballester E, Martins TG, Wasielesky W (2012) Effect of diatom supplementation during the nursery rearing of Litopenaeus vannamei (Boone, 1931) in a heterotrophic culture system. Aquac Int 20:559–569. https://doi.org/10.1007/s10499-011-9485-1

Green BW (2006) Tilapia fingerling production systems. In: Lim C, Webster C (eds) Tilapias: biology, culture, and nutrition. Food Products Press, Binghamton, NY

Guemez-Sorhouet E, Villarreal H, Racotta IS, Naranjo J, Mercier L (2019) Zootechnical and physiological responses of whiteleg shrimp (Litopenaeus vannamei) postlarvae reared in bioflocs and subjected to stress conditions during nursery phase. Aquac Res 50(4):1198–1211. https://doi.org/10.1111/are.13994

Ip YK, Chew SF (2010) Ammonia production, excretion, toxicity, and defense in fish: a review. Front Physiol 1:1–20. https://doi.org/10.3389/fphys.2010.00134

Kloas W, Groß R, Baganz D, Graupner J, Monsees H, Schmidt U, Staaks G, Suhl J, Tschirner M, Wittstock B, Wuertz S, Zikova A, Rennert B (2015) A new concept for aquaponic systems to improve sustainability, increase productivity, and reduce environmental impacts. Aquaculture Environment Interactions 7:179–192. https://doi.org/10.3354/aei00146

Kotzen B, Emerenciano MGC, Moheimani N, Burnell GM (2019) Aquaponics: alternative types and approaches. In: Goddek S, Joyce A, Kotzen B, Burnell GM (eds) Aquaponics food production systems. Springer, pp. 301–330. https://doi.org/10.1007/978-3-030-15943-6_12

Lennard W, Goddek S (2019) Aquaponics: The Basics. In: Goddek S, Joyce A, Kotzen B, Burnell GM (eds) Aquaponics Food Production Systems. Springer International Publishing, pp 113–143. https://doi.org/10.1007/978-3-030-15943-6_5

Lenz GL, Durigon EG, Lapa KR, Emerenciano MGC (2017) Produção de alface (Lactuca sativa) em efluentes de um cultivo de tilápias mantidas em sistema BFT em baixa salinidade. Bol Inst Pesca 43:614–630. https://doi.org/10.20950/1678-2305.2017v43n4p614

Luo G, Gao Q, Wang C, Liu W, Sun D, Li L, Tan H (2014) Growth, digestive activity, welfare, and partial cost-effectiveness of genetically improved farmed tilapia (Oreochromis niloticus) cultured in a recirculating aquaculture system and an indoor biofloc system. Aquaculture 422–423:1–7. https://doi.org/10.1016/j.aquaculture.2013.11.023

Luo I, Xu J, Meng H (2020) Nitrate accumulation in biofloc aquaculture systems. Aquaculture 520:734675. https://doi.org/10.1016/j.aquaculture.2019.734675

Martínez-Córdova LR, Emerenciano M, Miranda-Baeza A, Martínez-Porchas M (2014) Microbial-based systems for aquaculture of fish and shrimp: an updated review. Rev Aquac 7:131–148. https://doi.org/10.1111/raq.12058

Martínez-Córdova LR, Martínez-Porchas M, Emerenciano MGC, Miranda-Baeza A, Gollas-Galván T (2016) From microbes to fish the next revolution in food production. Crit Rev Biotechnol 37:287–295. https://doi.org/10.3109/07388551.2016.1144043

Martins GB, Tarouco F, Eduardo C, Berteaux R (2017) The utilization of sodium bicarbonate, calcium carbonate or hydroxide in biofloc system: water quality, growth performance and oxidative stress of Nile tilapia (Oreochromis niloticus). Aquaculture 468:10–17. https://doi.org/10.1016/j.aquaculture.2016.09.046

Ngo TDT, Konnerup D, Brix H (2017) Effects of recirculation rates on water quality and Oreochromis niloticus growth in aquaponic systems. Aquac Eng 78:95–104. https://doi.org/10.1016/j.aquaeng.2017.05.002

Palm HW, Bissa K, Knaus U (2014) Significant factors affecting the economic sustainability of closed aquaponic systems – part II: fish and plant growth. AACL Bioflux 7:162–175

Palm HW, Knaus U, Appelbaum S, Goddek S, Strauch SM, Vermeulen T, Haїssam Jijakli M, Kotzen B (2018) Towards commercial aquaponics: a review of systems, designs, scales and nomenclature. Aquac Int 26:813–842. https://doi.org/10.1007/s10499-018-0249-z

Palm HW, Knaus U, Appelbaum S, Strauch SM, Kotzen B (2019) Coupled aquaponics systems. In: Goddek S, Joyce A, Kotzen B, Burnell GM (eds) Aquaponics food production systems. Springer, pp 201–230. https://doi.org/10.1007/978-3-030-15943-6_7

Pantanella E, Cardarelli M, Colla G, Rea E, Marcucci A (2012) Aquaponics vs hydroponics: production and quality of lettuce crop. Acta Hortic 927:887–894. https://doi.org/10.17660/ActaHortic.2012.927.109

Pinheiro I, Carneiro RFS, Vieira FN, Gonzaga LV, Fett R, Costa ACO, Magallón-Barajas FJ, Seiffert WQ (2020) Aquaponic production of Sarcocornia ambigua and Pacific white shrimp in biofloc system at different salinities. Aquaculture 519:734918. https://doi.org/10.1016/j.aquaculture.2019.734918

Pinho SM, Molinari D, Mello GL, Fitzsimmons K, Emerenciano MGC (2017) Effluent from a biofloc technology (BFT) tilapia culture on the aquaponics production of different lettuce varieties. Ecol Eng 103:146–153. https://doi.org/10.1016/j.ecoleng.2017.03.009

Quintã R, Santos R, Thomas DN, Le Vay L (2015) Growth and nitrogen uptake by Salicornia europaea and Aster tripolium in nutrient conditions typical of aquaculture wastewater. Chemosphere 120:414–421. https://doi.org/10.1016/j.chemosphere.2014.08.017

Rahman SSA (2010) Effluent waste characterization of intensive tilapia culture units and its application in an integrated lettuce aquaponic production facility. A thesis presented at graduate Faculty of Auburn University (degree of master of science) Auburn, Alabama, USA, December 2010

Rakocy JE (2012) Aquaponics—integrating fish and plant culture. In: Tidwell JH (ed) Aquaculture production systems, 1st edn. Wiley-Blackwell, Oxford, pp 343–386

Ramos-Rodríguez E, Conde-Porcuna JM (2003) Nutrient limitation on a planktonic rotifer: life history consequences and starvation resistance. Limnol Oceanogr 48:933–938. https://doi.org/10.4319/lo.2003.48.2.0933

Ray AJ, Seaborn G, Leffler JW, Wilde SB, Lawson A, Browdy CL (2010) Characterization of microbial communities in minimal-exchange, intensive aquaculture systems and the effects of suspended solids management. Aquaculture 310:130–138. https://doi.org/10.1016/j.aquaculture.2010.10.019

Rocha AF, Biazzetti ML, Stech MR, Silva RP (2017) Lettuce production in aquaponic and biofloc systems with silver catfish Rhamdia quelen. Boletim do Instituo de Pesca 44:64–73. https://doi.org/10.20950/1678-2305.2017.64.73

Santos MHV, Araújo AC, Santos DMR, Lima NS, Lima CLC, Santiago AD (2010) Uso da manipueira como fonte de potássio na cultura da alface (Lactuca sativa L.) cultivada em casa-de-vegetação. Acta Scientiarum Agronomy 32(4):729–733. https://doi.org/10.4025/actasciagron.v32i4.4819

Samocha TM (2019) Sustainable biofloc systems for marine shrimp. Academic Press

Sgnaulin T, Durigon EG, Pinho SM, Jerônimo GT, Lopes DLA, Emerenciano MGC (2020) Nutrition of genetically improved farmed tilapia (GIFT) in biofloc technology system: optimization of digestible protein and digestible energy levels during nursery phase. Aquaculture 521:734998. https://doi.org/10.1016/j.aquaculture.2020.734998

Sokal R, Rohlf J (1995) Biometry, the principles and practice of statistics in biological research. W H Freeman, New York

Sousa AA, Pinho SM, Rombenso AN, Mello GL, Emerenciano MGC (2018) Pizzeria by-product: a complementary feed source for Nile tilapia (Oreochromis niloticus) raised in biofloc technology? Aquaculture 501:359–367. https://doi.org/10.1016/J.AQUACULTURE.2018.11.055

Tyson RV, Simonne EH, White JM, Lamb EM (2004) Reconciling water quality parameters impacting nitrification in aquaponics: the pH levels. Proceedings of the Florida State Horticultural Society 117:79–83

Wongkiew S, Hu Z, Chandran K, Lee KW, Khanal SK (2017) Nitrogen transformations in aquaponic systems: a review. Aquaculture Engineering 76:9–19. https://doi.org/10.1016/j.aquaeng.2017.01.004

Zou Y, Hu Z, Zhang J, Guimbaud C, Wang Q, Fang Y (2016a) Effect of seasonal variation on nitrogen transformations in aquaponics of northern China. Ecol Eng 94:30–36. https://doi.org/10.1016/j.ecoleng.2016.05.063

Zou Y, Hu Z, Zhang J, Xie H, Guimbaud C, Fang Y (2016b) Effects of pH on nitrogen transformations in media-based aquaponics. Bioresour Technol 210:81–87. https://doi.org/10.1016/j.biortech.2015.12.079