Nanopartículas magnéticas e lipídicas para liberação direcionada de quercetina no câncer de cólon
Loading...
Date
Authors
Journal Title
Journal ISSN
Volume Title
Publisher
Universidade Estadual de Ponta Grossa
Abstract
Drug delivery systems based on nanoparticles can improve pharmacokinetic aspects
such as controlled release and release from passive and active drug targeting,
increasing therapeutic efficacy and reducing toxicity in conventional colon cancer
treatment. The superparamagnetism of magnetic nanoparticles (MNP) appears to be
a potential alternative for magnetothermal therapy, inducing tumor cell death by
hyperthermia with the ability to control and target by an external magnetic field. Solid
lipid nanoparticles (SLN) are effective carriers of lipophilic anticancer agents such as
quercetin (QC). The polymer functionalization technique improves the stability and
targeting of nanoparticles; thus, this study aimed to develop MNP and SLN coated with
chitosan and chitosan conjugated to folic acid (FA-CS) for QC release. After
synthesizing FA-CS and selecting the optimum functionalization methods, a 3^2
factorial design was conducted to identify and optimize the parameters influencing the
development of MNP and SLN. The systems were characterized using scanning
microscopy, dynamic light scattering, Zeta potential, as well as validated UV-vis
spectrophotometry and high-performance liquid chromatography methods to quantify
encapsulation efficiency and drug loading. FA-CS was characterized, confirming the
interaction between the functional groups (R-NH2 and R-COOH) with a 72.92%
efficiency. The functionalization method by shaker and magnetic separation of MNP-
CS (FM3) and in situ functionalization of SLN-CS by sonicator (FL3) produced particles
with sizes of 483.57 nm (PDI 0.49) and 508.45 nm (PDI 0.53), respectively, with a zeta
of 29.97 mV and 9.51 mV. Following the factorial design, it was discovered that the
MNPs' Zeta potential is positively influenced by the CS concentration, followed by the
CS-temperature interaction, which has statistical relevance. To optimize the highest
Zeta potential response and minimal mean diameter (d = 1), a formulation with 2
mg.mL-1 of CS produced at 30oC was used. The SLN, on the other hand, was chosen
as the formulation with the highest optimum response of Zeta potential, EE, and
content and the lowest mean diameter and PDI, using 1 mg.mL-1 of CS and 10 minutes
of sonication. The optimized formulations had diameters of 122.32 nm (SD ± 8.56) and
352.83 nm (SD ± 62.8), PDI of 0.46 (SD ± 0.05) and 0.23 (SD ± 0.17), and Zeta
potentials of +30.78 mV (SD ± 0.8) and +14.2 mV (SD ± 5.9) for MNP and SLN,
respectively. The EE values obtained were 80.45% (MNP-CS-QC), 54.4% (MNP-
FACS-QC), 69.73% (SLN-QC-CS), and 83.82% (SLN-QC-FACS). The dissolution
assay demonstrated release control for MNP-CS-QC (up to 6.4% in 24 hours) and
burst release for SLN-QC-CS (up to 77.2% in 1 hour), with minimal difference between
non-conjugated and conjugated polymers. According to the findings of this study, the
experimental design allowed for the discussion of critical variables in the manufacture
of these nanoparticles, as well as the determination of the optimal parameters for the
formulations of MNPs and SLNs functionalized with chitosan and chitosan-folate.
Further research is needed, but this study aims to contribute to developments in
biomedical nanotechnology and the debate of magnetic and lipid systems by
highlighting the potential of quercetin nanoparticles.
Description
Citation
MACEDO, Júlia Borges de. Nanopartículas magnéticas e lipídicas para liberação direcionada de quercetina no câncer de cólon. 2024. Dissertação (Mestrado em Ciências Farmacêuticas) - Universidade Estadual de Ponta Grossa, Ponta Grossa, 2024.
Endorsement
Review
Supplemented By
Referenced By
Creative Commons license
Except where otherwised noted, this item's license is described as Acesso Aberto
