Cell density modulates growth, extracellular matrix, and protein synthesis of cultured rat mesangial cells

A Wolthuis1, A Boes, J Grond

  • 1Department of Pathology, University of Groningen, The Netherlands.

Insights

Cell density impacts mesangial cell (MC) behavior. High cell density reduces DNA synthesis but increases extracellular matrix proteins like fibronectin and collagen, mimicking glomerular disease. Stress protein expression also increases in dense cultures.

Area of Science:

  • Nephrology
  • Cell Biology
  • Biochemistry

Background:

  • Mesangial cell (MC) hyperplasia and extracellular matrix accumulation characterize chronic glomerular diseases.
  • Understanding factors influencing MC behavior is crucial for disease research.

Purpose of the Study:

  • To investigate the in vitro effects of cell density on cultured rat MC growth, extracellular matrix formation, and protein synthesis.
  • To correlate MC density-dependent changes with hallmarks of chronic glomerular disease.

Main Methods:

  • Cultured rat MCs were plated at varying densities.
  • DNA synthesis was measured via [3H]thymidine incorporation.
  • Fibronectin and collagen synthesis were assessed using ELISA, collagenase digestion, and [3H]proline labeling.
  • Protein expression was analyzed by 2D-PAGE and immunoblotting after [35S]methionine labeling.

Main Results:

  • A negative linear relationship was observed between initial plating density and DNA synthesis per cell.
  • Cell-associated fibronectin and collagen (especially type I) increased with cell density, peaking at confluency.
  • Supraconfluent MCs showed altered intracellular protein expression, including overexpression of heat-shock protein 90 and glucose-related protein 78.

Conclusions:

  • Progressive increases in cell-associated fibronectin and collagen at higher densities mimic extracellular matrix accumulation in glomerular disease.
  • Increased stress protein expression in supraconfluent MCs suggests a potential link to glomerulosclerosis pathogenesis, analogous to atherosclerosis.