ArticleCurrent research in food science2026
Compression bioreactor for cultured meat.
Article in Current research in food science, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
Cultured meat is emerging as a sustainable and ethical alternative source of dietary protein. However, the commercial viability of cultured meat is fundamentally constrained by prolonged tissue maturation timelines and the high energy demands of conventional, motor-driven electronic bioreactors. To address these bottlenecks, this study introduces a novel, scalable, magnetic-valve controlled pneumatic compression bioreactor, which utilizes a mechanically tunable magnetic circuit to deliver precise cyclic compression without internal electronic sensors or digital feedback loops. We evaluated the system's biological efficacy by applying cyclic compressive strain (10% strain, 0.27 Hz, 1 h/day) to murine C2C12 myoblasts cultivated on scaffolds. Optical motion tracking validated the device's kinematic stability and stroke-to-stroke repeatability during continuous operation. Biological assays confirmed that passive pneumatic actuation dampened the impact forces, maintaining high cell viability comparable to static controls. Mechanical stimulation profoundly accelerated early myogenesis, inducing a highly significant 2.93-fold upregulation of the master transcriptional regulator MyoD within just 3 days. These findings demonstrate that precise mechanotransduction can replace prolonged static culture and reduce the industry's reliance on exogenous biochemical growth factors. Ultimately, this novel bioprocessing paradigm offers a sustainable, highly scalable framework to accelerate tissue organization and reduce operational costs in industrial cultured meat manufacturing.
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