Aquaculture. Elsevier, 278(1–4), pp. 188–191. https://doi.org/10.
1016/J.AQUACULTURE.2008.03.014
Banerjee, G. and Ray, A. K. (2017) The advancement of probiotics research and its application in fish farming industries. Res Vet Sci.
W.B. Saunders, 115: 66–77. https://doi.org/10.1016/J.RVSC.2017.
01.016
Bao J-W, Qiang J, Tao YF, Li HX, He J, Xu P, Chen DJ (2018) Responses
of blood biochemistry, fatty acid composition and expression of
microRNAs to heat stress in genetically improved farmed tilapia
(Oreochromis niloticus). J Therm Biol Pergamon 73:91–97.
https://doi.org/10.1016/J.JTHERBIO.2018.02.007
Barillé L et al (2020) Biological, socio-economic, and administrative
opportunities and challenges to moving aquaculture offshore for
small French oyster-farming companies. Aquaculture. Elsevier
B.V., 521, p. 735045. https://doi.org/10.1016/j.aquaculture.2020.
735045
Bayle-sempere, J. T. et al. (2013) Trophic structure and energy fluxes around
a Mediterranean fish farm. Ecological Modelling. Elsevier B.V., 248,
pp. 135–147. https://doi.org/10.1016/j.ecolmodel.2012.08.028
Bendjama H, Merouani S, Hamdaoui O, Bouhelassa M (2018) Efficient
degradation method of emerging organic pollutants in marine environment using UV/periodate process: case of chlorazol black. Mar
Pollut Bull Pergamon 126:557–564. https://doi.org/10.1016/J.
MARPOLBUL.2017.09.059
Biermann G, Geist J (2019) Life cycle assessment of common carp
(Cyprinus carpio L.) – a comparison of the environmental impacts
of conventional and organic carp aquaculture in Germany.
Aquaculture Elsevier 501:404–415. https://doi.org/10.1016/J.
AQUACULTURE.2018.10.019
Biswas G, Kumar P, Ghoshal TK, Kailasam M, de D, Bera A, Mandal B,
Sukumaran K, Vijayan KK (2020) Integrated multi-trophic aquaculture (IMTA) outperforms conventional polyculture with respect to
environmental remediation, productivity and economic return in
brackishwater ponds. Aquaculture Elsevier 516:734626. https://
doi.org/10.1016/J.AQUACULTURE.2019.734626
Bolton, J. et al. (2016) Why grow Ulva? Its potential role in the future of
aquaculture. Perspectives in phycology . Available at: https://
w w w. s c h w e i z e r b a r t . d e / p a p e r s / p i p / d e t a i l / 3 / 8 6 8 7 8 /
Why_grow_Ulva_Its_potential_role_in_the_future_of_ (Accessed:
20 March 2020)
Boopathy R, Kern C, Corbin A (2015) International Biodeterioration &
Biodegradation use of Bacillus consortium in waste digestion and
pathogen control in shrimp aquaculture. Int Biodeterior
Biodegradation Elsevier Ltd 102:159–164. https://doi.org/10.1016/
j.ibiod.2015.02.001
Bougherira N et al (2014) Impact of the urban and industrial waste water
on surface and groundwater, in the region of Annaba, (Algeria).
Energy Procedia. Elsevier B.V., 50, pp. 692–701. https://doi.org/
10.1016/j.egypro.2014.06.085
Boxman SE, Nystrom M, Ergas SJ, Main KL, Trotz MA (2018)
Evaluation of water treatment capacity, nutrient cycling, and biomass production in a marine aquaponic system. Ecol Eng Elsevier
120:299–310. https://doi.org/10.1016/J.ECOLENG.2018.06.003
Buck BH et al (2017) Offshore and multi-use aquaculture with extractive
species: seaweeds and bivalves, in Aquaculture Perspective of
Multi-Use Sites in the Open Ocean: The Untapped Potential for
Marine Resources in the Anthropocene. Springer international publishing, pp. 23–69. https://doi.org/10.1007/978-3-319-51159-7_2
Buhmann, A. and Papenbrock, J. (2013) Biofiltering of aquaculture effluents by halophytic plants : Basic principles , current uses and
future perspectives. Environmental and Experimental Botany 92:
122–33. https://doi.org/10.1016/j.envexpbot.2012.07.005
Burns TE et al (2014) Original contribution a scoping analysis of peerreviewed literature about linkages between aquaculture and determinants of human health, pp. 227–240. https://doi.org/10.1007/
s10393-013-0875-x
Carballeira C et al (2012) Identi fi cation of speci fi c malformations of sea
urchin larvae for toxicity assessment : application to marine pisciculture ef fl uents, 77, pp. 12–22. https://doi.org/10.1016/j.
marenvres.2012.01.001
Carnevali O, Maradonna F, Gioacchini G (2017) Integrated control of fish
metabolism, wellbeing and reproduction: the role of probiotic.
Aquaculture Elsevier 472:144–155. https://doi.org/10.1016/J.
AQUACULTURE.2016.03.037
Carroll, M. L. et al. (2003) Organic enrichment of sediments from salmon
farming in Norway : environmental factors , management practices ,
and monitoring techniques, 226, pp. 165–180. https://doi.org/10.
1016/S0044-8486(03)00475-7
Castine SA, Paul NA, Magnusson M, Bird MI, de Nys R (2013) Algal
bioproducts derived from suspended solids in intensive land-based
aquaculture. Bioresour Technol Elsevier 131:113–120. https://doi.
org/10.1016/J.BIORTECH.2012.12.094
Chary K, Aubin J, Sadoul B, Fiandrino A, Covès D, Callier MD (2020)
Integrated multi-trophic aquaculture of red drum (Sciaenops
ocellatus) and sea cucumber (Holothuria scabra): assessing bioremediation and life-cycle impacts. Aquaculture Elsevier 516:734621.
https://doi.org/10.1016/J.AQUACULTURE.2019.734621
Chu, Y. I. et al. (2020) Review of cage and containment tank designs for
offshore fish farming. Aquaculture. Elsevier B.V., p. 734928. https://
doi.org/10.1016/j.aquaculture.2020.734928
Czyrnek-Delêtre MM, Rocca S, Agostini A, Giuntoli J, Murphy JD
(2017) Life cycle assessment of seaweed biomethane, generated
from seaweed sourced from integrated multi-trophic aquaculture in
temperate oceanic climates. Appl Energy Elsevier 196:34–50.
https://doi.org/10.1016/J.APENERGY.2017.03.129
Dapueto G, Massa F, Costa S, Cimoli L, Olivari E, Chiantore M, Federici
B, Povero P (2015) Ocean & Coastal Management A spatial multicriteria evaluation for site selection of offshore marine fi sh farm in
the Ligurian Sea , Italy. Ocean Coast Manag. Elsevier Ltd 116:64–
77. https://doi.org/10.1016/j.ocecoaman.2015.06.030
Davidson, J., Helwig, N. and Summerfelt, S. T. (2008) Aquacultural
Engineering Fluidized sand biofilters used to remove ammonia ,
biochemical oxygen demand , total coliform bacteria , and
suspended solids from an intensive aquaculture effluent. Aquac
Eng. Elsevier B.V., 39(1), pp. 6–15. https://doi.org/10.1016/j.
aquaeng.2008.04.002
Dawood MAO, Koshio S (2016) Recent advances in the role of probiotics
and prebiotics in carp aquaculture: a review. Aquaculture Elsevier 454:
243–251. https://doi.org/10.1016/J.AQUACULTURE.2015.12.033
De Ionno PN et al (2006) A bioeconomic evaluation of a commercial
scale recirculating finfish growout system — an Australian perspective. Aquaculture, Elsevier 259(1–4):315–327. https://doi.org/10.
1016/J.AQUACULTURE.2006.05.047
Dekamin M, Veisi H, Safari E, Liaghati H, Khoshbakht K, Dekamin MG
(2015) Life cycle assessment for rainbow trout ( Oncorhynchus mykiss )
production systems : a case study for Iran. J Clean Prod Elsevier Ltd 91:
43–55. https://doi.org/10.1016/j.jclepro.2014.12.006
Delgado N, Capparelli A, Navarro A, Marino D (2019) Pharmaceutical
emerging pollutants removal from water using powdered activated
carbon: study of kinetics and adsorption equilibrium. J Environ
Manag Academic Press 236:301–308. https://doi.org/10.1016/J.
JENVMAN.2019.01.116
Demim, S. et al. (2013) Cadmium and nickel : Assessment of the physiological effects and heavy metal removal using a response surface
approach by L . gibba. Ecol Eng. Elsevier B.V., 61, pp. 426–435.
https://doi.org/10.1016/j.ecoleng.2013.10.016
Demirak, A. (2006) Food Chemistry Determination of heavy metals ( Cd ,
Pb ) and trace elements ( Cu , Zn ) in sediments and fish of the
Southeastern Aegean Sea ( Turkey ) by atomic absorption spectrometry, 95, pp. 157–162. https://doi.org/10.1016/j.foodchem.2005.02.
009
Thalassas
1016/J.AQUACULTURE.2008.03.014
Banerjee, G. and Ray, A. K. (2017) The advancement of probiotics research and its application in fish farming industries. Res Vet Sci.
W.B. Saunders, 115: 66–77. https://doi.org/10.1016/J.RVSC.2017.
01.016
Bao J-W, Qiang J, Tao YF, Li HX, He J, Xu P, Chen DJ (2018) Responses
of blood biochemistry, fatty acid composition and expression of
microRNAs to heat stress in genetically improved farmed tilapia
(Oreochromis niloticus). J Therm Biol Pergamon 73:91–97.
https://doi.org/10.1016/J.JTHERBIO.2018.02.007
Barillé L et al (2020) Biological, socio-economic, and administrative
opportunities and challenges to moving aquaculture offshore for
small French oyster-farming companies. Aquaculture. Elsevier
B.V., 521, p. 735045. https://doi.org/10.1016/j.aquaculture.2020.
735045
Bayle-sempere, J. T. et al. (2013) Trophic structure and energy fluxes around
a Mediterranean fish farm. Ecological Modelling. Elsevier B.V., 248,
pp. 135–147. https://doi.org/10.1016/j.ecolmodel.2012.08.028
Bendjama H, Merouani S, Hamdaoui O, Bouhelassa M (2018) Efficient
degradation method of emerging organic pollutants in marine environment using UV/periodate process: case of chlorazol black. Mar
Pollut Bull Pergamon 126:557–564. https://doi.org/10.1016/J.
MARPOLBUL.2017.09.059
Biermann G, Geist J (2019) Life cycle assessment of common carp
(Cyprinus carpio L.) – a comparison of the environmental impacts
of conventional and organic carp aquaculture in Germany.
Aquaculture Elsevier 501:404–415. https://doi.org/10.1016/J.
AQUACULTURE.2018.10.019
Biswas G, Kumar P, Ghoshal TK, Kailasam M, de D, Bera A, Mandal B,
Sukumaran K, Vijayan KK (2020) Integrated multi-trophic aquaculture (IMTA) outperforms conventional polyculture with respect to
environmental remediation, productivity and economic return in
brackishwater ponds. Aquaculture Elsevier 516:734626. https://
doi.org/10.1016/J.AQUACULTURE.2019.734626
Bolton, J. et al. (2016) Why grow Ulva? Its potential role in the future of
aquaculture. Perspectives in phycology . Available at: https://
w w w. s c h w e i z e r b a r t . d e / p a p e r s / p i p / d e t a i l / 3 / 8 6 8 7 8 /
Why_grow_Ulva_Its_potential_role_in_the_future_of_ (Accessed:
20 March 2020)
Boopathy R, Kern C, Corbin A (2015) International Biodeterioration &
Biodegradation use of Bacillus consortium in waste digestion and
pathogen control in shrimp aquaculture. Int Biodeterior
Biodegradation Elsevier Ltd 102:159–164. https://doi.org/10.1016/
j.ibiod.2015.02.001
Bougherira N et al (2014) Impact of the urban and industrial waste water
on surface and groundwater, in the region of Annaba, (Algeria).
Energy Procedia. Elsevier B.V., 50, pp. 692–701. https://doi.org/
10.1016/j.egypro.2014.06.085
Boxman SE, Nystrom M, Ergas SJ, Main KL, Trotz MA (2018)
Evaluation of water treatment capacity, nutrient cycling, and biomass production in a marine aquaponic system. Ecol Eng Elsevier
120:299–310. https://doi.org/10.1016/J.ECOLENG.2018.06.003
Buck BH et al (2017) Offshore and multi-use aquaculture with extractive
species: seaweeds and bivalves, in Aquaculture Perspective of
Multi-Use Sites in the Open Ocean: The Untapped Potential for
Marine Resources in the Anthropocene. Springer international publishing, pp. 23–69. https://doi.org/10.1007/978-3-319-51159-7_2
Buhmann, A. and Papenbrock, J. (2013) Biofiltering of aquaculture effluents by halophytic plants : Basic principles , current uses and
future perspectives. Environmental and Experimental Botany 92:
122–33. https://doi.org/10.1016/j.envexpbot.2012.07.005
Burns TE et al (2014) Original contribution a scoping analysis of peerreviewed literature about linkages between aquaculture and determinants of human health, pp. 227–240. https://doi.org/10.1007/
s10393-013-0875-x
Carballeira C et al (2012) Identi fi cation of speci fi c malformations of sea
urchin larvae for toxicity assessment : application to marine pisciculture ef fl uents, 77, pp. 12–22. https://doi.org/10.1016/j.
marenvres.2012.01.001
Carnevali O, Maradonna F, Gioacchini G (2017) Integrated control of fish
metabolism, wellbeing and reproduction: the role of probiotic.
Aquaculture Elsevier 472:144–155. https://doi.org/10.1016/J.
AQUACULTURE.2016.03.037
Carroll, M. L. et al. (2003) Organic enrichment of sediments from salmon
farming in Norway : environmental factors , management practices ,
and monitoring techniques, 226, pp. 165–180. https://doi.org/10.
1016/S0044-8486(03)00475-7
Castine SA, Paul NA, Magnusson M, Bird MI, de Nys R (2013) Algal
bioproducts derived from suspended solids in intensive land-based
aquaculture. Bioresour Technol Elsevier 131:113–120. https://doi.
org/10.1016/J.BIORTECH.2012.12.094
Chary K, Aubin J, Sadoul B, Fiandrino A, Covès D, Callier MD (2020)
Integrated multi-trophic aquaculture of red drum (Sciaenops
ocellatus) and sea cucumber (Holothuria scabra): assessing bioremediation and life-cycle impacts. Aquaculture Elsevier 516:734621.
https://doi.org/10.1016/J.AQUACULTURE.2019.734621
Chu, Y. I. et al. (2020) Review of cage and containment tank designs for
offshore fish farming. Aquaculture. Elsevier B.V., p. 734928. https://
doi.org/10.1016/j.aquaculture.2020.734928
Czyrnek-Delêtre MM, Rocca S, Agostini A, Giuntoli J, Murphy JD
(2017) Life cycle assessment of seaweed biomethane, generated
from seaweed sourced from integrated multi-trophic aquaculture in
temperate oceanic climates. Appl Energy Elsevier 196:34–50.
https://doi.org/10.1016/J.APENERGY.2017.03.129
Dapueto G, Massa F, Costa S, Cimoli L, Olivari E, Chiantore M, Federici
B, Povero P (2015) Ocean & Coastal Management A spatial multicriteria evaluation for site selection of offshore marine fi sh farm in
the Ligurian Sea , Italy. Ocean Coast Manag. Elsevier Ltd 116:64–
77. https://doi.org/10.1016/j.ocecoaman.2015.06.030
Davidson, J., Helwig, N. and Summerfelt, S. T. (2008) Aquacultural
Engineering Fluidized sand biofilters used to remove ammonia ,
biochemical oxygen demand , total coliform bacteria , and
suspended solids from an intensive aquaculture effluent. Aquac
Eng. Elsevier B.V., 39(1), pp. 6–15. https://doi.org/10.1016/j.
aquaeng.2008.04.002
Dawood MAO, Koshio S (2016) Recent advances in the role of probiotics
and prebiotics in carp aquaculture: a review. Aquaculture Elsevier 454:
243–251. https://doi.org/10.1016/J.AQUACULTURE.2015.12.033
De Ionno PN et al (2006) A bioeconomic evaluation of a commercial
scale recirculating finfish growout system — an Australian perspective. Aquaculture, Elsevier 259(1–4):315–327. https://doi.org/10.
1016/J.AQUACULTURE.2006.05.047
Dekamin M, Veisi H, Safari E, Liaghati H, Khoshbakht K, Dekamin MG
(2015) Life cycle assessment for rainbow trout ( Oncorhynchus mykiss )
production systems : a case study for Iran. J Clean Prod Elsevier Ltd 91:
43–55. https://doi.org/10.1016/j.jclepro.2014.12.006
Delgado N, Capparelli A, Navarro A, Marino D (2019) Pharmaceutical
emerging pollutants removal from water using powdered activated
carbon: study of kinetics and adsorption equilibrium. J Environ
Manag Academic Press 236:301–308. https://doi.org/10.1016/J.
JENVMAN.2019.01.116
Demim, S. et al. (2013) Cadmium and nickel : Assessment of the physiological effects and heavy metal removal using a response surface
approach by L . gibba. Ecol Eng. Elsevier B.V., 61, pp. 426–435.
https://doi.org/10.1016/j.ecoleng.2013.10.016
Demirak, A. (2006) Food Chemistry Determination of heavy metals ( Cd ,
Pb ) and trace elements ( Cu , Zn ) in sediments and fish of the
Southeastern Aegean Sea ( Turkey ) by atomic absorption spectrometry, 95, pp. 157–162. https://doi.org/10.1016/j.foodchem.2005.02.
009
Thalassas
