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Updated: Oct 16, 2025

An Enzymatic Method to Rescue Mesenchymal Stem Cells from Clotted Bone Marrow Samples
Published on: April 12, 2015
Red blood cells and their releasates compromise bone marrow-derived human mesenchymal stem/stromal cell survival in
Ryan Christopher Dregalla1,2, Jessica Ann Herrera3,4, Edward Jeffery Donner3,4,5
14795 Larimer Parkway, Elite Regenerative Stem Cell Specialists, LLC, Johnstown, CO, 80534, USA. rdregalla@DreMedTech.com.
Purpose:
The use of bone marrow aspirate (BMA) and bone marrow aspirate concentrate (BMC) in the treatment of inflammatory orthopedic conditions has become a common practice. The therapeutic effect of BMA/BMC is thought to revolve primarily around the mesenchymal stem/stromal cell (MSC) population residing within the nucleated cell fraction. MSCs have the unique ability to respond to site of injury via the secretion of immunomodulating factors, resolving inflammation in diseased joints. Recently, the importance of hematocrit (HCT) in BMC has been debated, as the potential impact on MSC function is unknown. In the present study, we investigate MSC health over a short time-course following exposure to a range of HCT and red blood cell releasate (RBCrel) conditions.
Methods:
Bone marrow-derived human MSCs in early passage were grown under conditions of 0%, 2.5%, 5%, 10%, 20% and 40% HCT and RBCrel conditions for 3 days. At each day, the percentage of viable, apoptotic and necrotic MSCs was determined via flow cytometry. Relative viable MSC counts in each condition was determined to account for dynamic changes in overall MSC densities over the time-course. Statistical analysis was performed using a one-way ANOVA comparing test conditions to the control followed by a Dunnett's multiple comparison test.
Results:
Significant reductions in viable MSCs concurrent with an increase in necrotic MSCs in high HCT and RBCrel conditions was observed within 24 h. At each successive timepoint, the percent and relative number of viable MSCs were reduced, becoming significant in multiple HCT and RBCrel conditions by Day 3. Necrosis appears to be the initial mode of MSC death following exposure to HCT and RBCrel, followed by apoptosis in surviving MSC fractions.
Conclusion:
Various levels of HCT and RBCrel severely compromise MSC health within 3 days and HCT should be controlled in the preparation of BMC products. Further, HCT of BMCs should be routinely recorded and tracked with patient outcomes along with routine metrics (e.g. nucleated cell counts, fibroblast-colony forming units). Differences in HCT may account for the inconsistencies in the efficacy of BMC reported when treating orthopedic conditions.
Insights
High hematocrit (HCT) and red blood cell releasate (RBCrel) significantly reduce mesenchymal stem/stromal cell (MSC) viability in bone marrow concentrate (BMC) preparations. Controlling HCT is crucial for optimizing BMC efficacy in orthopedic treatments.
Area of Science:
- Orthopedics
- Regenerative Medicine
- Stem Cell Biology
Background:
- Bone marrow aspirate concentrate (BMC) is used for inflammatory orthopedic conditions, primarily for its mesenchymal stem/stromal cell (MSC) content.
- The role of hematocrit (HCT), the proportion of red blood cells in BMC, on MSC function remains unclear.
- Investigating HCT's impact is essential for understanding BMC therapeutic variability.
Purpose of the Study:
- To determine the effect of varying hematocrit (HCT) and red blood cell releasate (RBCrel) concentrations on mesenchymal stem/stromal cell (MSC) health.
- To assess MSC viability, necrosis, and apoptosis over a 3-day period under different HCT/RBCrel conditions.
Main Methods:
- Human bone marrow-derived MSCs were cultured with HCT/RBCrel levels ranging from 0% to 40% for 3 days.
- Flow cytometry was used daily to quantify viable, apoptotic, and necrotic MSCs.
- Relative viable MSC counts and statistical analyses (ANOVA, Dunnett's test) were employed to evaluate changes.
Main Results:
- High HCT and RBCrel levels caused significant MSC death, initially through necrosis, within 24 hours.
- Viable MSC percentages and counts progressively decreased over 3 days, with significant reductions observed in multiple conditions.
- Apoptosis was noted in the surviving MSC populations after initial necrosis.
Conclusions:
- Elevated HCT and RBCrel levels severely impair MSC health within 3 days.
- HCT levels in BMC products must be controlled and routinely monitored alongside other metrics.
- Variations in HCT may explain inconsistencies in BMC efficacy for orthopedic conditions.
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