Decreasing matrix modulus of PEG hydrogels induces a vascular phenotype in human cord blood stem cells

Shruthi Mahadevaiah1, Karyn G Robinson2, Prathamesh M Kharkar3

  • 1Nemours - Alfred I. duPont Hospital for Children, Department of Biomedical Research, 1600 Rockland Road, Wilmington, DE 19803, United States; Nemours - Alfred I. duPont Hospital for Children, Critical Care Department, 1600 Rockland Road, Wilmington, DE 19803, United States.

Biomaterials
|May 29, 2015
PubMed

Insights

Substrate stiffness impacts human stem cell behavior. Lower stiffness hydrogels promote stem cell proliferation and vascular differentiation, crucial for improving bypass graft success.

Area of Science:

  • Biomaterials Science
  • Stem Cell Biology
  • Cardiovascular Engineering

Background:

  • Cardiovascular diseases necessitate surgical interventions like bypass grafting.
  • Graft failure is common due to hyperplasia, fibrosis, and atherosclerosis.
  • Biocompatible materials are needed to improve graft outcomes and vascularization.

Purpose of the Study:

  • To investigate the effect of substrate modulus on human CD34+ stem cells.
  • To determine how hydrogel stiffness influences stem cell proliferation and differentiation.
  • To assess the potential of stem cell-loaded biomaterials for vascular graft applications.

Main Methods:

  • Human CD34+ stem cells were isolated and encapsulated in polyethylene glycol (PEG) hydrogels.
  • Hydrogels with varying moduli (0.34, 4.5, and 9.1 kPa) were created using different PEG concentrations.
  • Cell viability, morphology, proliferation, and gene expression were analyzed.

Main Results:

  • Cell viability remained high across all tested moduli.
  • Stem cell proliferation was significantly reduced in stiffer (6 wt%) hydrogels.
  • Lower modulus hydrogels (0.34 and 4.5 kPa) enhanced stem cell self-renewal and vascular endothelial differentiation.

Conclusions:

  • Substrate modulus is a critical factor influencing human stem cell behavior.
  • Hydrogels in the low kilopascal range may promote stem cell engraftment.
  • These findings suggest potential for biomaterials to improve microvascularization of bypass grafts.