FBN2 Silencing Recapitulates Hypoxic Conditions and Induces Elastic Fiber Impairment in Human Dermal Fibroblasts

Int J Mol Sci. 2022 Feb 5;23(3):1824. doi: 10.3390/ijms23031824.

Abstract

Most chronic wounds are characterized by varying degrees of hypoxia and low partial pressures of O2 that may favor the development of the wound and/or delay healing. However, most studies regarding extracellular matrix remodeling in wound healing are conducted under normoxic conditions. Here, we investigated the consequences of hypoxia on elastic network formation, both in a mouse model of pressure-induced hypoxic ulcer and in human primary fibroblasts cultured under hypoxic conditions. In vitro, hypoxia inhibited elastic fiber synthesis with a reduction in fibrillin-2 expression at the mRNA and protein levels. Lysyl oxidase maturation was reduced, concomitant with lower enzymatic activity. Fibrillin-2 and lysyl oxidase could interact directly, whereas the downregulation of fibrillin-2 was associated with deficient lysyl oxidase maturation. Elastic fibers were not synthesized in the hypoxic inflammatory tissues resulting from in vivo pressure-induced ulcer. Tropoelastin and fibrillin-2 were expressed sparsely in hypoxic tissues stained with carbonic anhydrase IX. Different hypoxic conditions in culture resulted in the arrest of elastic fiber synthesis. The present study demonstrated the involvement of FBN2 in regulating elastin deposition in adult skin models and described the specific impact of hypoxia on the elastin network without consequences on collagen and fibronectin networks.

Keywords: elastic fiber; elastin; fibrillin-2; hypoxia; skin wound.

MeSH terms

  • Animals
  • Elastic Tissue* / metabolism
  • Elastin* / metabolism
  • Fibrillin-2 / genetics
  • Fibroblasts / metabolism
  • Gene Silencing
  • Humans
  • Hypoxia / genetics
  • Hypoxia / metabolism
  • Mice
  • Protein-Lysine 6-Oxidase / metabolism
  • Ulcer / metabolism

Substances

  • FBN2 protein, human
  • Fibrillin-2
  • Elastin
  • Protein-Lysine 6-Oxidase