bioRxiv · 10.64898/2026.09.27.754820
Metabolic profiling of licensed mesenchymal stromal cells reveals a disconnect between glycolytic fitness and immunomodulatory responsiveness
Abstract
Mesenchymal stromal cells (MSCs) are promising cell therapeutics, but their development as off-the-shelf products requires cryopreservation, which impairs cell function after thaw. Inflammatory licensing enhances MSC therapeutic attributes, yet protocols vary considerably and little is known about how these variables affect MSC metabolism or post-thaw recovery. We characterized mitochondrial and glycolytic flux in umbilical cord (UC) and bone marrow (BM) MSCs licensed with interferon-{gamma} (IFN-{gamma}), tumor necrosis factor- (TNF-), or both. Brief exposure to either cytokine shifted MSC metabolism toward glycolysis and reduced mitochondrial respiration, whereas prolonged exposure led to heterogeneous responses. Conversely, combined IFN-{gamma} and TNF- increased glycolytic flux and respiratory capacity in most donors, with responses detectable after 2 hours and at concentrations below those conventionally used. Cryopreservation impaired aerobic metabolism, followed by donor-dependent recovery. Preconditioning with combined IFN-{gamma} and TNF- partially improved post-thaw metabolism, particularly in BM MSCs, and enhanced early responsiveness to inflammatory challenge, particularly in UC MSCs, as detected by IDO and candidate biomarkers CTSS and C1S. However, donors with improved post-thaw metabolism did not consistently show increased biomarker responses. These findings demonstrate that metabolic fitness and inducible biomarkers capture complementary aspects of post-thaw MSC quality and may inform preconditioning strategies for cryopreserved MSC products.
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Bilal, H., DeGroot, B. T., Braid, L.. 2026-09-28. Metabolic profiling of licensed mesenchymal stromal cells reveals a disconnect between glycolytic fitness and immunomodulatory responsiveness. https://doi.org/10.64898/2026.09.27.754820
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