Systematic cryopreservation study of cardiac myoblasts in suspension

PLoS One. 2024 Mar 6;19(3):e0295131. doi: 10.1371/journal.pone.0295131. eCollection 2024.

Abstract

H9c2 myoblasts are a cell line derived from embryonic rat heart tissue and demonstrate the ability to differentiate to cardiac myotubes upon reduction of the serum concentration (from 10% to 1%) and addition of all-trans retinoic acid in the growth medium. H9c2 cells are increasingly being used as an easy-to-culture proxy for some functions of cardiomyocytes. The cryobiology of cardiac cells including H9c2 myoblasts has not been studied as extensively as that of some cell types. Consequently, it is important to characterize the cryobiological response and systematically develop well-optimized cryopreservation protocols for H9c2 cells to have optimal and consistent viability and functionality after thaw for high quality studies with this cell type. In this work, an interrupted slow cooling protocol (graded freezing) was applied to characterize H9c2 response throughout the cooling profile. Important factors that affect the cell response were examined, and final protocols that provided the highest post-thaw viability are reported. One protocol uses the common cryoprotectant dimethyl sulfoxide combined with hydroxyethyl starch, which will be suitable for applications in which the presence of dimethyl sulfoxide is not an issue; and the other protocol uses glycerol as a substitute when there is a desire to avoid dimethyl sulfoxide. Both protocols achieved comparable post-thaw viabilities (higher than 80%) based on SYTO 13/GelRed flow cytometry results. H9c2 cells cryopreserved by either protocol showed ability to differentiate to cardiac myotubes comparable to fresh (unfrozen) H9c2 cells, and their differentiation to cardiac myotubes was confirmed with i) change in cell morphology, ii) expression of cardiac marker troponin I, and iii) increase in mitochondrial mass.

MeSH terms

  • Animals
  • Cryopreservation
  • Dimethyl Sulfoxide / pharmacology
  • Myoblasts
  • Myoblasts, Cardiac*
  • Myocytes, Cardiac
  • Rats
  • Suspensions

Substances

  • Dimethyl Sulfoxide
  • Suspensions

Grants and funding

This research was funded by a Canadian Institutes of Health Research grant (CIHR PS 159672, https://cihr-irsc.gc.ca/) to J.A.W. Elliott and M. Radisic. J. A. W. Elliott holds a Canada Research Chair in Thermodynamics. M. Radisic holds a Canada Research Chair in Organ-on-a-Chip Engineering. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.