Authors
Mirinal K Rayappa
Published in
ACS omega. Volume 11. Issue 30. Pages 44544-44560. Aug 04, 2026. Epub Jul 18, 2026.
Abstract
Osmolality is a critical yet frequently underrecognized physicochemical parameter in mammalian cell culture systems and remains insufficiently treated as a formal process control variable in bioprocess engineering. To establish its importance comprehensively, this article opens with the physicochemical basis of osmolality and the nonidealities of its calculation and measurement in complex media (including method-dependent differences between freezing point depression and vapor pressure depression), arguing that measurement fidelity is central to its interpretation. It then synthesizes evidence supporting the importance of culture medium osmolality, specifically in mammalian muscle cells and tissues. It emphasizes their narrow operating window and the effects of osmotic excursions within that window on their proliferation, differentiation, and fusion. Building on this biology, the article introduces media composition and "chemical space" as an engineering framework for osmolality control, showing how salts, buffers, amino acids, and macromolecular additives consume a "finite osmotic budget" within this chemical space, thereby constraining serum-free, cost-optimized myogenic formulations. The narrative then moves to the physical, chemical, and material drivers of common osmolality drift, such as CO2/bicarbonate-pH coupling, temperature-linked component instability, evaporation in small-volume platforms, and scaffold/bioink interactions that can create bulk or local osmotic microenvironmental niches ranging from plates to bioreactors. Finally, this article argues for the use of time-resolved osmolality measurement as a bioprocess state indicator during scale-up, to support more robust process control. Throughout this work, examples from muscle lineage studies and broader mammalian bioprocessing studies are used to derive transferable principles applicable to the growing field of cultured meat and the general cell/tissue culture practices.
PMID:
42569070
Bibliographic data and abstract were imported from PubMed on 08 Aug 2026.
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