Cesara Marincola Flaminia, Palmas Chiara, Lastres Couto Miguel A, Paz Isabel, Cremades Javier, Pintado José, Bruni Leonardo, Picone Gianfranco
Department of Chemical and Geological Sciences, University of Cagliari, Monserrato, 09042 Cagliari, Italy.
Instituto Galego de Formación en Acuicultura (IGAFA), Xunta de Galicia, 36626 Illa de Arousa, Spain.
Molecules. 2025 Jun 9;30(12):2518. doi: 10.3390/molecules30122518.
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 () together with sea lettuce () on fish metabolism using high-resolution H-NMR-based metabolomics. Three farming systems were compared. These were E, a recirculating aquaculture system (RAS); E, an IMTA-RAS integrating for biofiltration; and E, an IMTA-RAS with and sp. strain 4UAC3, a probiotic bacterium isolated from wild known to counteract fish pathogens. A metabolomic analysis revealed that energy metabolism was enhanced in IMTA-RAS and even more in IMTA-RAS--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.
水产养殖部门对于满足海鲜需求并确保可持续性至关重要。它涉及在可控环境中养殖鱼类、贝类、甲壳类动物、其他无脊椎动物和藻类,有助于保护海洋资源并减轻生态压力。可持续的养殖方式,例如鱼与海藻结合的综合多营养循环水养殖系统(IMTA-RAS),可以将鱼类养殖对环境的影响降至最低。然而,大型藻类的引入对鱼类肌肉代谢的影响尚未得到研究。本研究使用基于高分辨率氢核磁共振(H-NMR)的代谢组学方法,考察了塞内加尔鳎()与海莴苣()共同养殖对鱼类代谢的影响。比较了三种养殖系统。分别是E,循环水养殖系统(RAS);E,整合用于生物过滤的IMTA-RAS;以及E,含有 和 菌株4UAC3(一种从野生 中分离出的已知可对抗鱼类病原体的益生菌)的IMTA-RAS。代谢组学分析表明,IMTA-RAS中鱼类的能量代谢增强,在含有益生菌的IMTA-RAS中养殖的鱼类能量代谢增强更为明显,整体代谢活性增加。这些结果表明,藻类与益生菌的存在对鱼类的生理状态有明显影响,这值得进一步研究。本研究有助于理解鱼类对创新水产养殖方式的生理反应,支持开发更具可持续性和高效性的管理方式,以减少环境影响并提高鱼类健康和福利。