Hongwei Zheng, Xuan Zhou, Ruiyi Zhai, Yingxin Wei, Xiaomeng Yan, Huarong Guo, Haijin Mou, Yuming Wang, Ningyang Li, Zhaojie Li, Changhu Xue
Global marine fisheries face increasing pressures from overexploitation and environmental degradation, thereby necessitating sustainable alternatives to conventional seafood production. Cellular aquaculture emerges as a promising approach to separate fish protein supply from ecological constraints. This review aims to synthesize current knowledge on the efficient production of cell-cultured fish meat, consolidating fragmented advances across disciplines. This review systematically examines three core concepts: marine fish stem cell biology, serum-free production technologies, and sensory quality reconstruction. The key findings indicate that marine fish cells exhibit distinct evolutionary traits compared to mammalian cells, including unique telomerase-mediated immortalization potential and cold-tolerance mechanisms. Furthermore, recent breakthroughs in serum-free media using plant hydrolysates and recombinant proteins have substantially reduced costs, while edible microcarriers and suspension cultures provide viable pathways for scale-up. However, challenges remain in replicating the lipid profiles, specifically n-3 polyunsaturated fatty acids, and the textural hierarchy of native fish fillets. This review concludes that future industrial success depends on the development of species-specific bioprocesses and strictly food-grade culture systems. This work provides a foundational framework for the transition of cultivated fish from laboratory prototypes to commercial production.