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Keywords = integrated multitrophic aquaculture (IMTA)

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16 pages, 1163 KB  
Article
Nitrogen Budget Illustrates the Efficiency of Co-Farming Sea Lettuce (Ulva fenestrata) with Cold-Water Fish in a Marine Recirculating Aquaculture System
by Marica Andersson, Ingela Dahllöf, Kristoffer Stedt, Sophie Steinhagen, Jonathan A. C. Roques, Henrik Pavia and Kristina Snuttan Sundell
Water 2026, 18(15), 1850; https://doi.org/10.3390/w18151850 - 30 Jul 2026
Viewed by 301
Abstract
Integrated multitrophic level aquaculture (IMTA) in land-based recirculating aquaculture systems (RAS) has been proposed as an effective nitrogen bioremediation strategy. It can improve the utilization of added nitrogen through further biomass production, which increases the sustainability and efficiency of the farming system. Few [...] Read more.
Integrated multitrophic level aquaculture (IMTA) in land-based recirculating aquaculture systems (RAS) has been proposed as an effective nitrogen bioremediation strategy. It can improve the utilization of added nitrogen through further biomass production, which increases the sustainability and efficiency of the farming system. Few studies have evaluated how co-farming in cold-water land-based marine recirculating aquaculture systems affects the nitrogen utilization; here, we quantify the effects of co-farming sea lettuce (Ulva fenestrata) with Atlantic wolffish (Anarhichas lupus) and rainbow trout (Oncorhynchus mykiss) in such a system. Nitrogen budgets were used to evaluate the efficiency of the system by summarizing all processes, both inputs and outputs. In alternating four-week periods for four months, the recirculating system held either only fish or fish together with sea lettuce. Fish biomass held 90–91% of the system nitrogen, while 9–10% was available as dissolved inorganic nitrogen. The nitrogen uptake by the sea lettuce biomass was quantified to 1.0–1.5% of the total nitrogen input. Extrapolations based on these results show that a wet weight ratio of sea lettuce:fish of 0.7 would be optimal for remediation of all added nitrogen. Full article
(This article belongs to the Section Water, Agriculture and Aquaculture)
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17 pages, 1090 KB  
Article
Feeding Physiology of Crassostrea gasar (Dillwyn, 1817) on Isochrysis galbana and Biofloc Diets
by Thaís Brito Freire, Flávia Lucena Zacchi, João Paulo Ramos Ferreira, Carlos Henrique Araujo de Miranda Gomes and Claudio Manoel Rodrigues de Melo
Fishes 2026, 11(4), 227; https://doi.org/10.3390/fishes11040227 - 14 Apr 2026
Viewed by 1430
Abstract
Understanding the feeding physiological mechanisms of determined oyster species is fundamental for adaptation and growth stabilization, aiming for gains in aquaculture production. To assess its potential for Integrated Multi-Trophic Aquaculture (IMTA) with shrimp, we analyzed the feeding physiology of the mangrove oyster Crassostrea [...] Read more.
Understanding the feeding physiological mechanisms of determined oyster species is fundamental for adaptation and growth stabilization, aiming for gains in aquaculture production. To assess its potential for Integrated Multi-Trophic Aquaculture (IMTA) with shrimp, we analyzed the feeding physiology of the mangrove oyster Crassostrea gasar. In this study, we determined the feeding physiology of the mangrove oyster Crassostrea gasar, a commercially important species in tropical Brazil, under two diets, live microalgae (ISO—Isochrysis galbana) and biofloc (BFT), which were tested at four concentrations (10, 20, 30, and 40 mg L−1), to establish whether this species can effectively utilize BFT as a food source. Results indicated that ISO diet promoted superior filtration, characterized by a higher proportion of feces (F), suggesting a reduced need for intensive particle selection. Both clearance (CR) and filtration (FR) rates peaked at 30 mg L−1 before declining, suggesting a physiological threshold for this diet. In contrast, the BFT diet elicited higher CR and FR values but triggered excessive pseudofeces (PF) production and low net organic selection efficiency (NOSE). This suggests high particle rejection and limited nutritional assimilation. In conclusion, while C. gasar can process BFT, it is metabolically disadvantageous as a sole food source. For an optimal performance, I. galbana concentrations should be maintained at or below 30 mg L−1. Full article
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19 pages, 2922 KB  
Article
IMTA Production of Pacific White Shrimp Integrated with Mullet, Sea Cucumber, Oyster, and Salicornia in a Biofloc System
by Enrique A. Estévez Hernández, Ivanilson Santos, Laura Moraes, Morena Salala Kashane, Marcelo H. Okamoto, Luís André Sampaio, Dariano Krummenauer, César S. B. Costa, Ricardo V. Rodrigues, Silvia Martínez-Llorens and Luís H. Poersch
Fishes 2026, 11(2), 98; https://doi.org/10.3390/fishes11020098 - 5 Feb 2026
Viewed by 1673
Abstract
Integrated multitrophic aquaculture (IMTA) emerges as a sustainable strategy to control the excess of solids and inorganic nutrients that tend to increase in the biofloc system (BFT) cycle, since the model integrates organisms from different trophic levels sharing the same system and nutrients. [...] Read more.
Integrated multitrophic aquaculture (IMTA) emerges as a sustainable strategy to control the excess of solids and inorganic nutrients that tend to increase in the biofloc system (BFT) cycle, since the model integrates organisms from different trophic levels sharing the same system and nutrients. Thus, this study compared a Penaeus vannamei monoculture system with an integrated biofloc system including Mugil liza, Holothuria grisea, Crassostrea tulipa, and Salicornia neei, focusing on water quality and the performance of organisms and systems. This study consisted of three monoculture systems (16 m3; 375 shrimp m−3) and three IMTA systems, composed of a shrimp tank (16 m3), a mullet tank (4 m3; 30 ind m−3), a combined tank (3 m3) for oysters (45 ind m−3) and sea cucumbers (3 ind m−2), and a Salicornia neei bed (2.78 m2; 37 ind m−2). All IMTA systems operated in recirculation without water exchange, using 10% of the established biofloc inoculum. The IMTA system had half the hydrated lime use (2.13 vs. 4.29 kg), lower solids (299.56 vs. 373.33 mg L−1), and reduced sludge production (9.37 vs. 15.87 kg). Shrimp growth was similar in both systems. Mullet grew adequately with a survival rate of 95.8%, but oysters showed a survival rate of 45.7%. Sea cucumber had a survival rate of 100% until day 28, when a marked decline appeared, strongly correlated with rising temperature (>28 °C; r = −0.71). This resulted in a significant increase in solids in the last weeks, suggesting that the population decline reduces solids control capacity. Furthermore, the biofloc in IMTA was dominated by coccoid forms, with lower proportions of filamentous and cyanobacterial forms. Full article
(This article belongs to the Special Issue Integrated Multi-Trophic Aquaculture (IMTA))
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21 pages, 3194 KB  
Review
Operational Research Underpinning the Development of a Novel Integrated Multi-Trophic Aquaculture (IMTA) Peatlands-Based System for Demonstrating the Bioeconomy
by Neil J. Rowan
Appl. Sci. 2026, 16(3), 1583; https://doi.org/10.3390/app16031583 - 4 Feb 2026
Cited by 1 | Viewed by 765
Abstract
Developing the bioeconomy offers a critical sustainable path away from fossil fuels by using renewable biological resources to create feed, food, materials, and energy; fostering decarbonization; and supporting circular economic growth. However, the pivotal role of different demonstration facilities in unlocking viable bio-based [...] Read more.
Developing the bioeconomy offers a critical sustainable path away from fossil fuels by using renewable biological resources to create feed, food, materials, and energy; fostering decarbonization; and supporting circular economic growth. However, the pivotal role of different demonstration facilities in unlocking viable bio-based products remains to be fully defined and appreciated. This review addresses the importance and added value of developing a novel integrated multi-trophic aquaculture (IMTA) demonstration site in the peatlands as a scalable facility to support companies and end-users who are co-creating and testing appropriate bio-based products for new markets along with de-risking for investments. The operational activities necessary to develop and launch a fully functional IMTA-based bioeconomy demonstration site to meet a diversity of end-user expectations are considerable, including many unforeseen challenges that are addressed in this review. The IMTA site offers considerable potential for building a networked ecosystem of end-users (farmers, start-ups, entrepreneurs, companies, policy-makers), enabling alternative uses of land along with tailoring strategic policies for enhancing regional resilience and competitiveness with a global orientation. Full article
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13 pages, 59409 KB  
Article
Water Quality and Sediment Microbial Community Differences Between Sea Urchin Monoculture and Sea Urchin–Shrimp IMTA Systems
by Cuicui Wang, Yongyao Guo, Xinli Gu, Nshimiyimana Elisee, Bingbing Jiang and Bo Zhao
Water 2026, 18(2), 268; https://doi.org/10.3390/w18020268 - 21 Jan 2026
Cited by 1 | Viewed by 1208
Abstract
Integrated multi-trophic aquaculture (IMTA) has emerged as an ecological intensification strategy capable of enhancing nutrient utilization and improving environmental stability in mariculture systems, yet the microbial mechanisms driving nutrient transformations remain insufficiently understood. This study investigated how culture mode (IMTA vs. monoculture) shape [...] Read more.
Integrated multi-trophic aquaculture (IMTA) has emerged as an ecological intensification strategy capable of enhancing nutrient utilization and improving environmental stability in mariculture systems, yet the microbial mechanisms driving nutrient transformations remain insufficiently understood. This study investigated how culture mode (IMTA vs. monoculture) shape water quality, sediment microbial communities, and nutrient cycling processes in a shrimp–sea urchin system by combining water-quality monitoring, nutrient analysis, 16S rRNA high-throughput sequencing, and redundancy analysis. IMTA significantly increased turbidity, chlorophyll-a, phosphate, ammonium, and nitrite compared with monoculture, while physico-chemical parameters remained stable. Sediment microbiota in IMTA exhibited substantially higher alpha diversity and showed a clear compositional separation from monoculture communities. At the genus level, IMTA sediments were enriched in Vibrio, Motilimonas, and Ruegeria, distinguishing them from monoculture systems. At the phylum level, IMTA was characterized by increased abundances of Proteobacteria and Bacteroidota, accompanied by a marked decline in Spirochaetota. Functional predictions indicated that microbial communities were predominantly characterized by pathways related to amino acid and carbohydrate metabolism, as well as nutrient remineralization. RDA and correlation analyses further identified turbidity, chlorophyll-a, phosphate, ammonium, and nitrite as the principal drivers of microbial divergence. Overall, the findings demonstrate that IMTA reshapes sediment microbial communities toward more efficient nutrient-processing assemblages, thereby promoting active nitrogen and phosphorus transformations and improving biogeochemical functioning relative to monoculture. These results provide mechanistic insight into how IMTA supports nutrient recycling and environmental sustainability in modern mariculture systems. Full article
(This article belongs to the Section Water, Agriculture and Aquaculture)
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12 pages, 831 KB  
Perspective
Juvenile Sardine Production in Ecological Culture System: Opportunities for Restocking and Coastal Sustainability
by Ángel Urzúa, Fabián Guzmán-Rivas and Ana Aguilera-Macías
Hydrobiology 2026, 5(1), 3; https://doi.org/10.3390/hydrobiology5010003 - 9 Jan 2026
Cited by 1 | Viewed by 1823 | Correction
Abstract
Small pelagic fish, including sardines, are essential to global fisheries and aquaculture feed production. However, these species are increasingly exposed to intense exploitation. In Chile, the common sardine (Strangomera bentincki), endemic to the Humboldt Current System, supports major industrial and artisanal [...] Read more.
Small pelagic fish, including sardines, are essential to global fisheries and aquaculture feed production. However, these species are increasingly exposed to intense exploitation. In Chile, the common sardine (Strangomera bentincki), endemic to the Humboldt Current System, supports major industrial and artisanal fisheries. Landings are expected to reach 300,000 tons by 2025, mostly for fishmeal production. As a keystone species, S. bentincki is highly sensitive to environmental variability during early development, which can reduce recruitment and threaten long-term population sustainability. This interdisciplinary approach integrates ecological and biotechnological perspectives to assess the feasibility of controlled juvenile sardine production in land-based Ecological Aquaculture (EA) systems, including Recirculating Aquaculture Systems (RAS) and Integrated Multi-Trophic Aquaculture (IMTA), which are designed to reduce environmental impacts. These systems enable precise control of temperature, feeding regimes, and water quality, facilitating investigations into larval and juvenile survival, growth performance, and physiological responses under variable thermal and nutritional conditions. Emphasis is placed on fatty acid metabolism during ontogeny, particularly docosahexaenoic acid (DHA) and eicosapentaenoic acid (EPA), which are essential for somatic growth, reproductive development, and thermal tolerance. Developing standardized protocols for juvenile S. bentincki culture addresses key gaps in husbandry and physiology (temperature threshold, nutrient density, larval growth rate, etc.) while introducing a novel ecological–aquaculture integration framework. This approach links early-life ecology with applied rearing techniques to support stock enhancement, strengthen artisanal fisheries, and promote sustainable aquaculture diversification under increasing environmental variability. Full article
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21 pages, 2385 KB  
Article
Exploring the Microbial Reservoir of Geodia cydonium (Linnaeus, 1767): Insights into Site-Specific Diversity and Biotechnological Potential
by Roberta Esposito, Roberta Trani, Marco Bertolino, Michele Sonnessa, Gaia Laurenzi, Valerio Zupo, Caterina Longo and Maria Costantini
Mar. Drugs 2026, 24(1), 2; https://doi.org/10.3390/md24010002 - 19 Dec 2025
Viewed by 1561
Abstract
Marine sponges are recognized as reservoirs of diverse microorganisms that produce bioactive natural compounds. In this study, we conducted a metataxonomic analysis of Geodia cydonium specimens collected from four sites in Italy: Secca delle Fumose (Gulf of Naples, Tyrrhenian Sea), Mar Piccolo of [...] Read more.
Marine sponges are recognized as reservoirs of diverse microorganisms that produce bioactive natural compounds. In this study, we conducted a metataxonomic analysis of Geodia cydonium specimens collected from four sites in Italy: Secca delle Fumose (Gulf of Naples, Tyrrhenian Sea), Mar Piccolo of Taranto and an Integrated Multi-Trophic Aquaculture (IMTA) system in Mar Grande of Taranto (both located in the Ionian Sea), and Polignano a Mare (Adriatic Sea). Our results revealed a highly diverse microbial community within the sponges, encompassing 24 bacterial phyla. Among these, Chloroflexota was the most abundant phylum, accounting for an average of 30.2% of the total community across all samples. In addition, the majority of the microbiota was composed of Actinomycetota, Proteobacteria, Acidobacteriota, Poribacteriota, Gemmatimonadota, and Dadabacteria. The sponge sample from Polignano a Mare exhibited the richest and most diverse bacterial community. This observation was supported by phylogenetic analysis, which identified seven bacterial genera, Albidovulum, Filomicrobium, Microtrix, Gaiellales, D90 (Gammaproteobacteria class), and Blastopirellula, exclusive to this site. Several of these taxa are known for their potential biotechnological applications, underlining the significance of site-specific microbial diversity in G. cydonium. Full article
(This article belongs to the Special Issue Marine Omics for Drug Discovery and Development, 2nd Edition)
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19 pages, 2329 KB  
Article
Effects of Nitrate Source (Artificial and Fishpond) and UV Radiation on Physiological, Photosynthetic, and Biochemical Parameters of Porphyra dioica for Sustainable Integrated Multitrophic Aquaculture (IMTA)
by Débora Tomazi Pereira, Ignacio Moreu Badia, Julia Vega, Fabian López Palica, David López Paniagua, Nathalie Korbee and Félix L. Figueroa
Nitrogen 2025, 6(4), 108; https://doi.org/10.3390/nitrogen6040108 - 24 Nov 2025
Cited by 3 | Viewed by 1184
Abstract
The red macroalga Porphyra plays a key role in Integrated Multi-Trophic Aquaculture (IMTA) systems, acting both as a biofilter and as a source of bioactive compounds (BACs) with nutritional and photoprotective value. This study evaluated how nitrogen source and concentration influence its physiological, [...] Read more.
The red macroalga Porphyra plays a key role in Integrated Multi-Trophic Aquaculture (IMTA) systems, acting both as a biofilter and as a source of bioactive compounds (BACs) with nutritional and photoprotective value. This study evaluated how nitrogen source and concentration influence its physiological, photosynthetic, and biochemical responses under ultraviolet radiation (UVR). Gametophytes were cultured for four days under two nitrate sources (artificial and fishpond effluents) at 3 and 5 mM concentrations and exposed to PAR (120 µmol·photons·m−2·s−1) and UVR (9 W·m−2 for 6 h·day−1). Morphological responses, photosynthetic performance, and BACs were quantified. Nitrate uptake increased with nitrate concentration, while growth rate remained unaffected. Samples grown with fishpond effluents, particularly at 3 mM, showed darker pigmentation and higher phycoerythrin and mycosporine-like amino acid (MAA) contents, indicating enhanced nitrogen assimilation and photoprotective capacity. Conversely, 3 mM artificial nitrate in the water promoted the highest electron transport rate and lowest non-photochemical quenching, suggesting greater photosynthetic capacity. Polyphenols and antioxidant activity showed no significant differences among treatments, indicating similar stress status. Overall, it is suggested that fishpond effluents acted as a natural biostimulant, enhancing biliprotein and MAA synthesis without compromising physiological stability, reinforcing its potential for sustainable IMTA-based production of high-value photoprotective compounds. Full article
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17 pages, 997 KB  
Article
Gonadal Production and Quality in the Red Sea Urchin Mesocentrotus franciscanus Fed with Seaweed Devaleraea mollis and Ulva australis from a Land-Based Integrated Multi-Trophic Aquaculture (IMTA) System
by Matthew S. Elliott, Yuanzi Huo and Mark Drawbridge
Biology 2025, 14(9), 1294; https://doi.org/10.3390/biology14091294 - 19 Sep 2025
Viewed by 1480
Abstract
Harvesting sea urchins from barrens and enhancing their gonads through aquaculture offers a promising way to convert low-value individuals into high-quality seafood. This study evaluated whether red sea urchins (Mesocentrotus franciscanus, RSUs) fed nutrient-enriched seaweeds produced in a land-based integrated multi-trophic [...] Read more.
Harvesting sea urchins from barrens and enhancing their gonads through aquaculture offers a promising way to convert low-value individuals into high-quality seafood. This study evaluated whether red sea urchins (Mesocentrotus franciscanus, RSUs) fed nutrient-enriched seaweeds produced in a land-based integrated multi-trophic aquaculture (IMTA) system could significantly improve gonad size and quality. Two seaweed species, Ulva australis and Devaleraea mollis, were grown in effluent from white seabass (Atractoscion nobilis) tanks and used to feed RSUs over an 8-week period. RSUs readily consumed both seaweeds, with measurable ingestion, fecal output, and absorption efficiency. We hypothesized that RSUs fed IMTA seaweed would exhibit increased gonadosomatic index and improved gonad quality. GSI significantly increased in both groups, from an initial 3.00 ± 0.50% (9.02 ± 1.80 g) to 4.64 ± 0.66% (23.04 ± 10.20 g) in the U. australis group and to 6.35 ± 1.30% (31.20 ± 7.20 g) in the D. mollis group. Gonad quality improved from “D” (unmarketable) to average “B” (high-quality) grade, based on color, firmness, and texture. These results demonstrate that RSUs collected from barrens can be enhanced into premium seafood using nutrient-enriched seaweeds. Integrating RSUs into land-based IMTA systems may increase aquaculture efficiency, reduce waste, and diversify seafood production in a sustainable and economically viable way. Full article
(This article belongs to the Section Marine and Freshwater Biology)
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17 pages, 2864 KB  
Article
Estimation of Growth and Carrying Capacity of Porphyra spp. Under Aquaculture Conditions on the Southern Coast of Korea Using Dynamic Energy Budget (DEB)
by Dae Ho Tac, Sung Eun Park and Ji Young Lee
J. Mar. Sci. Eng. 2025, 13(8), 1586; https://doi.org/10.3390/jmse13081586 - 19 Aug 2025
Cited by 1 | Viewed by 1813
Abstract
Understanding the growth dynamics and ecological constraints of Porphyra spp. is essential for optimizing sustainable seaweed aquaculture. However, most existing models lack physiological detail and exhibit limited performance under variable environmental conditions. This study developed a mechanistic Dynamic Energy Budget (DEB) model to [...] Read more.
Understanding the growth dynamics and ecological constraints of Porphyra spp. is essential for optimizing sustainable seaweed aquaculture. However, most existing models lack physiological detail and exhibit limited performance under variable environmental conditions. This study developed a mechanistic Dynamic Energy Budget (DEB) model to simulate structural biomass accumulation, carbon and nitrogen reserve dynamics, and blade area expansion of Porphyra under natural environmental conditions in Korean coastal waters. The model incorporates temperature, irradiance, and nutrient availability (NO3 and CO2) as environmental drivers and was implemented using a forward difference numerical scheme. Field data from Beein Bay were used for model calibration and validation. Simulations showed good agreement with the observed biomass, reserve content, and blade area, with root-mean-square error (RMSE) typically within ±10%. Sensitivity analysis identified temperature-adjusted carbon assimilation and nitrogen uptake as the primary drivers of growth. The model was further used to estimate dynamic carrying capacity, revealing seasonal thresholds for sustainable biomass under current farming practices. Although limitations remain—such as the exclusion of reproductive allocation and tissue loss—the results demonstrate that DEB theory provides a robust framework for modeling Porphyra aquaculture. This approach supports scenario testing, spatial planning, and production forecasting, and it is adaptable for ecosystem-based management including integrated multi-trophic aquaculture (IMTA) and climate adaptation strategies. Full article
(This article belongs to the Section Marine Environmental Science)
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8 pages, 222 KB  
Perspective
Exploring the Potential of European Brown Shrimp (Crangon crangon) in Integrated Multi-Trophic Aquaculture: Towards Achieving Sustainable and Diversified Coastal Systems
by Ángel Urzúa and Marina Gebert
Oceans 2025, 6(3), 47; https://doi.org/10.3390/oceans6030047 - 31 Jul 2025
Cited by 2 | Viewed by 2515
Abstract
Global marine coastal aquaculture increased by 6.7 million tons in 2024, with whiteleg shrimp (Penaeus vannamei) dominating crustacean production. However, reliance on a single species raises sustainability concerns, particularly in the face of climate change. Diversifying shrimp farming by cultivating native [...] Read more.
Global marine coastal aquaculture increased by 6.7 million tons in 2024, with whiteleg shrimp (Penaeus vannamei) dominating crustacean production. However, reliance on a single species raises sustainability concerns, particularly in the face of climate change. Diversifying shrimp farming by cultivating native species, such as the European brown shrimp (Crangon crangon), presents an opportunity to develop a sustainable blue bioeconomy in Europe. C. crangon holds significant commercial value, yet overexploitation has led to population declines. Integrated Multi-Trophic Aquaculture (IMTA) offers a viable solution by utilizing fish farm wastewater as a nutrient source, reducing both costs and environmental impact. Research efforts in Germany and other European nations are exploring IMTA’s potential by co-culturing shrimp with species like sea bream, sea bass, and salmon. The physiological adaptability and omnivorous diet of C. crangon further support its viability in aquaculture. However, critical knowledge gaps remain regarding its lipid metabolism, early ontogeny, and reproductive biology—factors essential for optimizing captive breeding. Future interdisciplinary research should refine larval culture techniques and develop sustainable co-culture models. Expanding C. crangon aquaculture aligns with the UN’s Sustainable Development Goals by enhancing food security, ecosystem resilience, and economic stability while reducing Europe’s reliance on seafood imports. Full article
21 pages, 557 KB  
Review
Integrated Application of Biofloc Technology in Aquaculture: A Review
by Changwei Li, Zhenbo Ge, Limin Dai and Yuan Chen
Water 2025, 17(14), 2107; https://doi.org/10.3390/w17142107 - 15 Jul 2025
Cited by 20 | Viewed by 9555
Abstract
Although biofloc technology (BFT) currently offers advantages such as improving aquaculture water quality, providing natural bait for cultured animals, and reducing pests and diseases, single BFT systems face technical bottlenecks, including the complex regulation of the carbon–nitrogen ratio, accumulation of suspended substances, and [...] Read more.
Although biofloc technology (BFT) currently offers advantages such as improving aquaculture water quality, providing natural bait for cultured animals, and reducing pests and diseases, single BFT systems face technical bottlenecks, including the complex regulation of the carbon–nitrogen ratio, accumulation of suspended substances, and acidification of the bottom sludge. Therefore, constructing a composite system with complementary functions through technology integration, such as with aquaponics, biofilm technology, integrated multi-trophic aquaculture systems (IMTAs), and recirculating aquaculture systems (RASs), has become the key path to breaking through industrialization barriers. This paper systematically reviews the action mechanisms, synergistic effects, and challenges of the four mainstream integration models incorporating BFT, providing theoretical support for the environmental–economic balance of intensive aquaculture. Full article
(This article belongs to the Special Issue Aquaculture Productivity and Environmental Sustainability)
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17 pages, 1153 KB  
Article
Metabolic Profile of Senegalese Sole (Solea senegalensis) Muscle: Effect of Fish–Macroalgae IMTA-RAS Aquaculture
by Flaminia Cesare Marincola, Chiara Palmas, Miguel A. Lastres Couto, Isabel Paz, Javier Cremades, José Pintado, Leonardo Bruni and Gianfranco Picone
Molecules 2025, 30(12), 2518; https://doi.org/10.3390/molecules30122518 - 9 Jun 2025
Cited by 4 | Viewed by 2725
Abstract
The aquaculture sector is essential for meeting seafood demand while ensuring sustainability. It involves farming fish, mollusks, crustaceans, other invertebrates, and algae in controlled environments, helping to conserve marine resources and reduce ecological pressures. Sustainable practices, such as an integrated multitrophic recirculating aquaculture [...] Read more.
The aquaculture sector is essential for meeting seafood demand while ensuring sustainability. It involves farming fish, mollusks, crustaceans, other invertebrates, and algae in controlled environments, helping to conserve marine resources and reduce ecological pressures. Sustainable practices, such as an integrated multitrophic recirculating aquaculture system (IMTA-RAS) with fish and seaweed, can minimize the environmental impact of fish aquaculture. However, the impact of the introduction of macroalgae on the fish muscle metabolism has not been studied. This research examines the impact of growing Senegalese sole (Solea senegalensis) together with sea lettuce (Ulva ohnoi) on fish metabolism using high-resolution 1H-NMR-based metabolomics. Three farming systems were compared. These were E1, a recirculating aquaculture system (RAS); E2, an IMTA-RAS integrating U. ohnoi for biofiltration; and E3, an IMTA-RAS with U. ohnoi and Phaeobacter sp. strain 4UAC3, a probiotic bacterium isolated from wild U. australis known to counteract fish pathogens. A metabolomic analysis revealed that energy metabolism was enhanced in IMTA-RAS and even more in IMTA-RAS-Phaeobacter–grown fish, increasing overall metabolic activity. These results indicate that the presence of the algae with the probiotic had a clear impact on the physiological state of the fish, and this deserves further investigation. This study contributes to the understanding of the physiological responses of fish to innovative aquaculture practices, supporting the development of more sustainable and efficient management that reduces the environmental impact and increases fish health and welfare. Full article
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17 pages, 2047 KB  
Article
You Are What You Eat: California Sea Cucumbers Become “Fishier” After Integrated Multi-Trophic Aquaculture with Chinook Salmon
by Emaline M. Montgomery, Barb L. Cannon, Miki Nomura, Rodrigo B. Leme, Ian P. Forster and Christopher M. Pearce
Fishes 2025, 10(4), 154; https://doi.org/10.3390/fishes10040154 - 1 Apr 2025
Viewed by 2316
Abstract
Recent interest in integrated multi-trophic aquaculture (IMTA) as an ecologically-sustainable and climate-conscious aquaculture system has resulted in testing different species partnerships and configurations in anticipation of industrialization. Deposit feeders like the California sea cucumber (Apostichopus californicus) have been suggested as ideal [...] Read more.
Recent interest in integrated multi-trophic aquaculture (IMTA) as an ecologically-sustainable and climate-conscious aquaculture system has resulted in testing different species partnerships and configurations in anticipation of industrialization. Deposit feeders like the California sea cucumber (Apostichopus californicus) have been suggested as ideal partners for IMTA with finfish, due to their ability to consume fish waste as well as their passive nature. However, the nutritional impacts of feeding on fish waste in IMTA have not yet been established for this species. The present study tested the effect of 3 months of inclusion in IMTA with Chinook salmon (Oncorhynchus tshawytscha) on the fatty-acid and nitrogenous-metabolite profiles of California sea cucumbers. The fatty-acid profiles of IMTA sea cucumbers showed significant changes from wild reference individuals, while few differences were detected in amino acids and other nitrogenous metabolites. Sea cucumbers housed directly in cages with salmon showed distinct shifts in their fatty-acid profiles toward higher levels of MUFAs and lower levels of SFAs, while PUFA concentrations remained the same. Sea cucumbers included in IMTA with finfish may be even more healthful for humans due to the accumulation of certain unsaturated fatty acids in their tissues not seen in wild reference individuals. Full article
(This article belongs to the Special Issue Advances in Integrated Multi-Trophic Aquaculture)
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14 pages, 10427 KB  
Article
Research on the Construction of an Integrated Multi-Trophic Aquaculture (IMTA) Model in Seawater Ponds and Its Impact on the Aquatic Environment
by Han Yang, Baogui Tang, Hui Zhou, Peigui Zhong and Liqiang Zhao
Water 2025, 17(6), 887; https://doi.org/10.3390/w17060887 - 19 Mar 2025
Cited by 8 | Viewed by 5283
Abstract
The Integrated Multi-Trophic Aquaculture (IMTA) model is an eco-friendly aquaculture system that enhances water purification through ecological niche utilization. A study employing 16S rRNA sequencing analyzed microbial communities in aquaculture water at initial, middle, and final stages. Results indicated that physicochemical parameters were [...] Read more.
The Integrated Multi-Trophic Aquaculture (IMTA) model is an eco-friendly aquaculture system that enhances water purification through ecological niche utilization. A study employing 16S rRNA sequencing analyzed microbial communities in aquaculture water at initial, middle, and final stages. Results indicated that physicochemical parameters were lower at the final stage. The removal efficiencies of Total Nitrogen (TN) and Total Phosphorus (TP) reached 79.10% and 63.64%, respectively. The Simpson and Shannon indices revealed that microbial diversity was significantly higher in the final stage compared to the initial and middle stages (p < 0.05). Dominant bacterial phyla included Actinobacteria, Proteobacteria, and Bacteroidetes, while dominant genera included Candidatus_Aquiluna, NS3a_marine_group, and NS5_marine_group. Functional prediction results demonstrated that metabolic pathways such as amino acid metabolism, biosynthesis of other amino acids, and energy metabolism were upregulated in the final stage compared to the initial stage. Correlation analysis of environmental factors suggested that TN and TP significantly influenced the microbial community structure. Key microorganisms such as Candidatus_Aquiluna, Marinomonas, and Cobetia played crucial roles in carbon fixation, nitrogen reduction, and phosphorus removal. In summary, the IMTA model effectively purifies water, with microbial communities contributing to the stability of the aquatic environment. Full article
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