Crayfish aquaponics systems: Current status, design considerations and future development opportunities

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Review Paper 04/07/2026
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Crayfish aquaponics systems: Current status, design considerations and future development opportunities

Rodolfo G. Nillo*, Abigail P. Cid-Andres
J. Biodiv. & Environ. Sci. 29(1), 1-16, July 2026.
Copyright Statement: Copyright 2026; The Author(s).
License: CC BY-NC 4.0

Abstract

The increasing demand for sustainable food production, coupled with challenges such as freshwater scarcity, environmental degradation, and climate change, has intensified interest in integrated farming systems that maximize resource efficiency while minimizing environmental impacts. Among these, aquaponics has emerged as a promising approach by integrating aquaculture and hydroponic crop production within a recirculating system. Although finfish dominate existing aquaponics research and commercial production, freshwater crayfish have gained increasing attention because of their high market value, environmental adaptability, and potential for diversified production. This review synthesizes current knowledge on the design and development of crayfish aquaponics systems based on peer-reviewed literature and authoritative publications published between 2000 and 2026. The review examines the biological characteristics of commercially important crayfish species, engineering and operational considerations, plant production and nutrient dynamics, economic feasibility, environmental sustainability, and emerging technological innovations relevant to crayfish aquaponics. The literature indicates that successful system performance depends on species-specific management strategies, appropriate stocking densities, effective shelter provision, balanced nutrient cycling, and optimized integration between crayfish biomass and plant production. Despite encouraging advances, significant knowledge gaps remain regarding commercial-scale production, nutrient balancing, system optimization, digital technologies, climate resilience, and comprehensive economic evaluation. Addressing these challenges will require interdisciplinary research integrating aquaculture, plant science, engineering, environmental management, economics, and precision agriculture. By consolidating current evidence and identifying priority research areas, this review provides a comprehensive reference for researchers, producers, and policymakers and offers a framework for advancing the development of efficient, resilient, and commercially viable crayfish aquaponics systems that contribute to sustainable food production and circular bioeconomy objectives.

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