Characterization of Photoluminescent Polylactone-Based Nanoparticles for Their Applications in Cardiovascular

Aneetta E Kuriakose1, Nikhil Pandey1, Dingying Shan2

  • 1Bioengineering Department, The University of Texas at Arlington, Arlington, TX, United States.

Insights

Biodegradable photoluminescent polylactones (BPLPLs) were developed into nanoparticles for cardiovascular disease (CVD) theranostics. BPLPL-PLGA nanoparticles showed superior stability and biocompatibility, indicating potential for advanced CVD diagnosis and therapy.

Area of Science:

  • Biomaterials Science
  • Nanotechnology
  • Cardiovascular Medicine

Background:

  • Cardiovascular diseases (CVD) are a leading global cause of mortality.
  • Current nanotechnology-based drug delivery for CVD requires integrated diagnostic and therapeutic capabilities.
  • Biodegradable photoluminescent polylactones (BPLPLs) offer intrinsic fluorescence, cytocompatibility, and biodegradability for theranostic applications.

Purpose of the Study:

  • To formulate and evaluate BPLPL-based nanoparticles (NPs) as theranostic nanocarriers for CVD.
  • To compare the properties of BPLPL-PLLA, BPLPL-PLGA75:25, and BPLPL-PLGA50:50 NPs.

Main Methods:

  • Formulation of three types of BPLPL-based NPs: BPLPL-PLLA, BPLPL-PLGA75:25, and BPLPL-PLGA50:50.
  • Characterization of NP size, photoluminescence, and release kinetics.
  • Assessment of NP stability in various media and *in vitro* evaluation using human umbilical vein endothelial cells and whole blood assays.

Main Results:

  • All NPs were <160 nm with photoluminescence and tunable release kinetics.
  • BPLPL-PLGA NPs exhibited superior stability in aqueous and biological formulations compared to BPLPL-PLLA NPs.
  • *In vitro* studies showed dose-dependent NP uptake, superior endothelial cell viability with BPLPL-PLGA NPs, and hemocompatibility comparable to PLGA.

Conclusions:

  • BPLPL-PLGA based NPs demonstrate enhanced physical and biological properties over BPLPL-PLLA NPs.
  • These BPLPL-PLGA NPs show significant potential as functional nanocarriers for simultaneous diagnosis and therapy of cardiovascular diseases.