ArticleJournal of advanced research2025
Versatile platforms of mussel-inspired agarose scaffold for cell cultured meat.
Article in Journal of advanced research, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers, 1 of them a synthesis that pooled it.
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Who cites it
6 citing papers in PubMed, 1 synthesis or guideline pooled it.
- Effects of mussel-inspired compounds on dentin bonding: a systematic review and meta-analysis.BMC oral health · 2026Pooled it
- Cultured Meat: A Multidimensional Review of Technological, Nutritional, Ethical, and Regulatory Advances (2020-2025).Journal of food science · 2026Review
- Survey on the Global Technological Status for Forecasting the Industrialization Timeline of Cultured Meat.Foods (Basel, Switzerland) · 2025Review
- Curcumin-incorporated edible hydrogel films based on potato starch/κ-carrageenan/poly(vinyl alcohol) for cultured meat scaffolding.Biomedical engineering online · 2025Article
- Starch-Based Scaffolds for Cultivated Meat Production: Challenges and Perspectives.Comprehensive reviews in food science and food safety · 2025Review
- Beyond Imitation: How Food Colloids Are Shaping the Next Generation of Biomimetic Foods.Gels (Basel, Switzerland) · 2025Review
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Authors and funding
6 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
introductionBiomaterial scaffolds are critical for cell cultured meat production. polysaccharide scaffolds lack essential animal cell adhesion receptors, leading to significant challenges in cell proliferation and myogenic differentiation. Thus, enhancing cell adhesion and growth on polysaccharide scaffolds is strongly required to supply the gaps in cell-cultured meat production.
objectivesThis study aims to develop a multifunctional cell-responsive hydrogel scaffold for the in vitro production of myofibers and structured cell cultured meat through a "cell adhesion-proliferation-differentiation" strategy.
methodsA polydopamine coating was applied to agarose hydrogel scaffolds using a dipping technique. The capability of scaffolds for myofiber preparation was assessed by evaluating cell adhesion, proliferation, and myogenic differentiation. Utilizing isolated porcine skeletal muscle satellite cells (PSMSCs), the feasibility of structured cell cultured pork tissue supported by agarose hydrogel film scaffolds was further investigated through three-dimensional imaging and scanning electron microscopy analysis. The physicochemical properties of the structured cell cultured pork tissue were evaluated through staining and texture analysis.
resultsThe incorporation of a polydopamine coating facilitated a remarkable 100 % cell adhesion rate on agarose hydrogel scaffolds, which also demonstrated reusability. The agarose hydrogel scaffolds retained adequate mechanical properties, enabling the adhered cells to proliferate effectively and differentiate into myofiber. Moreover, isolated PSMSCs maintained growth potential on the agarose hydrogel scaffolds, thereby imparting the scaffolds with the ability to generate substantial quantities of multinucleated myofibers. Furthermore, we established a structured cell culture pork meat model, characterized by high-density myofibers and agarose hydrogel film scaffolds, which exhibited the texture and color typical of real pork.
conclusionThe innovative agarose/polydopamine scaffold functions as a multifunctional platform for cell culture, offering novel avenues for the diversification and scalable production of cultured meat, and promising significant reductions in production costs for cell cultured meat.
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