Submitted:
21 December 2025
Posted:
22 December 2025
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Abstract
Background: Efficient transport of mesenchymal stem cell (MSC) products represents a major practical barrier to the clinical implementation of regenerative medicine. Many intravenous preservation fluids that are approved for clinical use are not optimised for MSC preservation, and many commonly used hypothermic preservation solutions are not approved for direct injection. Such solutions therefore require an additional washing step prior to administration, which is impractical at the bedside. Methods: Human adipose-derived MSCs were suspended in normal saline, dextran L (a Japanese-approved injectable formulation) at 5%, and Lactated Ringer’s solution. Samples were stored at refrigerated (4°C), room temperature (25°C) and body temperature (37°C) conditions. Viability was determined by trypan blue exclusion using an automated cell counter. Results: Viability was measured hourly from 1 to 4 hours after suspension. When cells were stored after suspension, viability was not markedly affected across solutions and temperatures up to 2 hours; however, viability declined from 3 hours onwards. In particular, storage at 37°C had a pronounced detrimental effect on viability. Conclusions: Although clinically approved solutions for intravenous administration were used to suspend the cells, cell death begins within 2 hours following suspension, indicating that transport conditions are critically important to maintain cell viability until patient administration. Dextran L, which obviates the need for a post-storage washing step, may be a practical transport medium for MSCs under clinical ambient conditions. These findings support the potential to simplify clinical workflows and reduce operational risk associated with inter-facility MSC handling. Furthermore, as viability declines markedly by 4 hours regardless of temperature and solution composition, short transport times are paramount for safety management.
Keywords:
Introduction
Methods
Cell Line, Reagents and Equipment
- Cells: Human Mesenchymal Stem Cells from Adipose Tissue (hMSC-AT), PromoCell, Germany. The vendor verified that supplied cells conform to the ISCT minimal criteria (CD73⁺/CD90⁺/CD105⁺, CD14⁻/CD19⁻/CD34⁻/CD45⁻/HLA-DR⁻).
- Media and reagents: OHC301T (custom MSC medium), penicillin–streptomycin (Gibco), TrypLE Express (Gibco), PBS(–) (Wako), Trypan Blue 0.4% (Thermo Fisher, etc.).
- Carrier media (test vehicles): Normal saline (0.9% NaCl, Otsuka), Lactated Ringer’s solution, and low-molecular-weight dextran L (clinical injectable formulation; Otsuka). Dextran was evaluated primarily at 5% (with 10% assessed where appropriate). All fluids were used sterile and handled aseptically.
- Equipment: CO₂ incubator (37°C, 5% CO₂), laminar flow hood, centrifuge (300 × g variable), Countess II FL automated cell counter (Thermo Fisher), electronic temperature logger (per temperature condition), 50 mL sterile conical tubes (Falcon).
MSC Culture and Preparation
Final Preparation (Re-Suspension) Procedure
Temperature Conditions and Storage Settings
Sampling Times and Handling
Viability Measurement (Trypan Blue / Countess II FL)
Bias Mitigation and Quality Assurance
- Blinding: Analysts performed measurements using sample codes only; carrier identities remained concealed until analysis completion.
- Standardised equipment: Identical pipettes, tube types and the same Countess device were used for all measurements; operators followed a standard operating procedure (SOP).
- Temperature verification: Temperature loggers were calibrated prior to experiments. Any run with temperature deviations was excluded and repeated.
- Pre-processing QC: Batch acceptance criteria required ≥95% viability at baseline (0 hour).
Statistical Analysis
Results





Discussion
- Carrier selection and temperature management interact: Mild cooling to 4°C combined with a polymeric membrane-protective carrier (dextran L) provided the greatest preservation of viability. However, this protective effect is time-limited; approximately 20% cell death after 4 hours indicates that even an optimal carrier cannot fully mitigate the risk of prolonged transport. Thus, long transport durations remain hazardous even with the best available solution.
- Clinical implication — proposal of a 2-hour rule: From a practical standpoint, our data support a working clinical guideline that MSCs finalised in the laboratory should be administered within 2 hours. This is especially important when using outsourced manufacturing, since transport, customs and in-hospital processing can introduce delays; managing these is therefore a primary safety concern.
- Outsourcing versus in-house manufacturing: Outsourced manufacturing offers scale and standardisation advantages but introduces the new quality risk of transport time. Ideally, the final re-suspension and administration would be completed in-house immediately prior to injection. If transport is unavoidable, a combined approach—short transit (<2 h), cooling (4°C) and the use of a polymeric protective solution—should be implemented. These measures require investment and trade-offs regarding regulation, operations and cost, but are necessary to secure patient safety.
Limitations
Ethics and Safety
Conclusions
Data Availability Statement
References
- Galipeau, J; Sensebé, L. Mesenchymal stromal cells: Compliance and standardisation of clinical trial reporting. Cytotherapy. 2018, 20(2), 151–154. [Google Scholar]
- Moll, G; Drzeniek, N; Kamhieh-Milz, J; et al. Mesenchymal stromal cells in regenerative medicine: immunomodulation and therapeutic mechanisms. Nat Rev Immunol. 2022, 22, 706–724. [Google Scholar]
- Loebel, C; Mauck, RL. Mechanobiology of mesenchymal stromal cells: implications for cell preservation. Nat Rev Rheumatol. 2020, 16, 303–318. [Google Scholar]
- Bianco, P. Mesenchymal stromal cells: revisiting conventional concepts. Cell Stem Cell. 2014, 14(3), 253–264. [Google Scholar]
- Kilpinen, L; et al. Cryopreservation of human mesenchymal stromal cells: viability, recovery and functional characteristics. Stem Cell Res Ther. 2013, 4(12), 148. [Google Scholar]
- De la Torre, P; et al. Effect of diluent composition on MSC viability and morphological stability. Tissue Eng Part C Methods. 2021, 27(3), 133–142. [Google Scholar]
- Galipeau, J. The Mesenchymal Stromal Cell dilemma: Is there a cutting-edge standardisation framework? Stem Cell Transl Med. 2021, 10(6), 861–867. [Google Scholar]
- Bahsoun, S; et al. Effects of cryopreservation and post-thaw culture conditions on MSC phenotype. Front Cell Dev Biol. 2020, 8, 148. [Google Scholar]
- Chinnadurai, R; et al. Potency assays after cryopreservation and thawing of MSCs. Mol Ther. 2016, 24(6), 1167–1177. [Google Scholar]
- Shou, Y; et al. Influence of storage temperature and conditions on MSC viability and mitochondrial function. Cryobiology. 2022, 106, 59–66. [Google Scholar]
- Niu, J; et al. Optimisation strategies for short-term storage of MSCs intended for clinical injection. J Transl Med. 2023, 21, 412. [Google Scholar]
- Panés, J; et al. Mesenchymal stromal cell therapy — challenges and future directions in clinical application. J Clin Med. 2022, 11(21), 6638. [Google Scholar]
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