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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.
Abstract:
Cardiovascular diseases (CVD) affect a large number of the population across the globe and are the leading cause of death worldwide. Nanotechnology-based drug delivery has currently offered novel therapeutic options to treat these diseases, yet combination of both diagnostic and therapeutic abilities is further needed to understand factors and/or mechanisms that affect the treatment in order to design better therapies to challenge CVD. Biodegradable photoluminescent polylactones (BPLPLs) enable to bridge this gap as these materials exhibit a stable, long-term intrinsic fluorescence as well as offers excellent cytocompatibility and biodegradability properties. Herein, we formulated three different BPLPL based nanoparticles (NPs), including BPLP-co-poly (L-lactic acid) (BPLPL-PLLA), BPLP-co-poly (lactic-co-glycolic acid) copolymers with lactic acid and glycolic acid ratios of 75:25 (BPLPL-PLGA75:25) and 50:50 (BPLPL-PLGA50:50), and extensively evaluated their suitability as theranostic nanocarriers for CVD applications. All BPLPL based NPs were <160 nm in size and had photoluminescence characteristics and tunable release kinetics of encapsulated protein model depending on polylactones copolymerized with BPLP materials. Compared to BPLPL-PLLA NPs, BPLPL-PLGA NPs demonstrated excellent stability in various formulations including deionized water, serum, saline, and simulated body fluid over 2 days. In vitro cell studies with human umbilical vein derived endothelial cells showed dose-dependent accumulation of BPLPL-based NPs, and BPLPL-PLGA NPs presented superior compatibility with endothelial cells in terms of viability with minimal effects on cellular functions such as nitric oxide production. Furthermore, all BPLPL NPs displayed hemocompatibility with no effect on whole blood kinetic profiles, were non-hemolytic, and consisted of comparable platelet responses such as platelet adhesion and activation to those of PLGA, an FDA approved material. Overall, our results demonstrated that BPLPL-PLGA based NPs have better physical and biological properties than BPLPL-PLLA; hence they have potential to be utilized as functional nanocarriers for therapy and diagnosis of CVD.
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.

