Degradation of distinct forms of multimeric vitronectin by human fibroblasts

C E Wilkins-Port1, P J McKeown-Longo

  • 1Cell and Molecular Biology Program and the Department of Physiology and Cell Biology (Mail Code 134), Neil Hellman Medical Research Building, Albany Medical College of Union University, 47 New Scotland Avenue, Albany, NY 12208, USA.

Insights

Vitronectin multimerization, not disulfide bonds, drives endocytosis. This study shows non-disulfide-stabilized vitronectin multimers are also endocytosed and degraded by cells, revealing multimerization is key for cellular uptake.

Area of Science:

  • Cell biology
  • Biochemistry
  • Extracellular matrix dynamics

Background:

  • Vitronectin is a plasma protein crucial for regulating extravascular plasminogen activation.
  • Previous research demonstrated that disulfide-stabilized multimeric vitronectin undergoes endocytosis and degradation by fibroblasts.

Purpose of the Study:

  • To investigate whether disulfide stabilization is essential for vitronectin endocytosis.
  • To determine if non-disulfide-stabilized multimeric vitronectin is also internalized and degraded by cells.

Main Methods:

  • Preparation of non-disulfide-stabilized multimeric vitronectin via reduction and alkylation.
  • Analysis of protein aggregation using SDS-PAGE and native gel electrophoresis.
  • Assessment of cellular uptake and degradation using specific inhibitors (arginine-glycine-aspartic acid peptides, anti-alphavbeta5 antibody, heparin, chloroquine, wortmannin).

Main Results:

  • Reduced and alkylated vitronectin formed SDS-stable multimers, indicating aggregation independent of disulfide bonds.
  • These non-disulfide-stabilized multimers bound to proteoglycans, were endocytosed, and degraded similarly to disulfide-stabilized forms.
  • Inhibitor studies confirmed both vitronectin forms utilized the same endocytic and degradative pathway.

Conclusions:

  • Vitronectin organization into a multimeric form, not disulfide bond stabilization, is necessary for recognition and endocytosis.
  • Cellular uptake of vitronectin depends on its transition from a monomeric to a multivalent state.

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