In vitro and in vivo evaluation of polylactic acid-based composite with tricalcium phosphate microsphere for enhanced biodegradability and osseointegration

J Biomater Appl. 2018 May;32(10):1360-1370. doi: 10.1177/0885328218763660. Epub 2018 Mar 15.

Abstract

A biodegradable polylactic acid composite containing tricalcium phosphate microsphere was fabricated. The composite exhibited enhanced biocompatibility and a well-interconnected porous structure that enabled tissue ingrowth after degradation. The tricalcium phosphate microspheres had an average size of 106 ± 43 μm and were incorporated into the polylactic acid matrix using a high-shear mixer. The resulting bioactivity and hydrophilicity were enhanced to levels comparable to those of a polylactic acid composite containing tricalcium phosphate powder, which is a well-known material used in the medical field. An accelerated 30-day degradation test in HCl revealed successful generation of an open porous structure with ∼98% interconnectivity in the polylactic acid-tricalcium phosphate microsphere composite, demonstrating the potential of this material to induce enhanced osseointegration in the later stage of bone regeneration. The early stage osseointegration was also evaluated by implanting the composite in vivo using a rabbit femoral defect model. After 16 weeks of implantation, the bone-to-implant contact ratio of the polylactic acid-tricalcium phosphate microsphere composite was enhanced owing to tissue ingrowth through the generated pores near the surface.

Keywords: Polylactic acid; composite materials; microspheres; osseointegration; tricalcium phosphate.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Bone Regeneration
  • Bone Substitutes / chemistry*
  • Bone Substitutes / metabolism
  • Bone Substitutes / therapeutic use
  • Calcium Phosphates / chemistry*
  • Calcium Phosphates / metabolism
  • Calcium Phosphates / therapeutic use
  • Cell Line
  • Femur / injuries
  • Femur / physiology
  • Mice
  • Osseointegration*
  • Osteoblasts / cytology
  • Polyesters / chemistry*
  • Polyesters / metabolism
  • Polyesters / therapeutic use
  • Porosity
  • Rabbits
  • Tissue Scaffolds / chemistry

Substances

  • Bone Substitutes
  • Calcium Phosphates
  • Polyesters
  • poly(lactide)
  • tricalcium phosphate