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.

Abstract

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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