Electrospun microstructured PLA-based scaffolds featuring relevant anisotropic, mechanical and degradation characteristics for soft tissue engineering

Mater Sci Eng C Mater Biol Appl. 2021 Oct:129:112339. doi: 10.1016/j.msec.2021.112339. Epub 2021 Jul 30.

Abstract

Electrospun scaffolds combine suitable structural characteristics that make them strong candidates for their use in tissue engineering. These features can be tailored to optimize other physiologically relevant attributes (e.g. mechanical anisotropy and cellular affinity) while ensuring adequate degradation rates of the biomaterial. Here, we present the fabrication of microstructured scaffolds by using a combination of micropatterned electrospinning collectors (honeycomb- or square-patterned) and poly(lactic acid) (PLA)-based copolymers (linear or star-shaped). The resulting materials showed appropriate macropore size and fiber alignment that were key parameters to enhance their anisotropic properties in protraction. Moreover, their elastic modulus, which was initially similar to that of soft tissues, gradually changed in hydrolytic conditions, matching the degradation profile in a 2- to 3-month period. Finally, honeycomb-structured scaffolds exhibited enhanced cellular proliferation compared to standard electrospun mats, while cell colonization was shown to be guided by the macropore contour. Taking together, these results provide new insight into the rational design of microstructured materials that can mimic the progressive evolution of properties in soft tissue regeneration.

Keywords: Cell proliferation; Degradable polyester block copolymer; Electrospinning; Mechanical properties; Microstructured scaffold.

MeSH terms

  • Anisotropy
  • Biocompatible Materials
  • Polyesters
  • Tissue Engineering*
  • Tissue Scaffolds*

Substances

  • Biocompatible Materials
  • Polyesters