Tailoring of Selenium-Plated Novasomes for Fine-Tuning Pharmacokinetic and Tumor Uptake of Quercetin: In Vitro Optimization and In Vivo Radiobiodistribution Assessment in Ehrlich Tumor-Bearing Mice.
Heba M AboudAmal K HusseinAbdallah Z ZayanTarek Saad MakramMona O SarhanDina M El-SharawyPublished in: Pharmaceutics (2022)
Quercetin (QRC) is a bioflavonoid with anti-inflammatory, antioxidant, and anticancer activities, yet QRC poor bioavailability has hampered its clinical implementation. The aim of the current work was to harness novasomes (NOVs), free fatty acid enriched vesicles, as a novel nano-cargo for felicitous QRC delivery with subsequent functionalization with selenium (SeNOVs), to extend the systemic bio-fate of NOVs and potentiate QRC anticancer efficacy through the synergy with selenium. QRC-NOVs were primed embedding oleic acid, Brij 35, and cholesterol adopting thin-film hydration technique according to Box-Behnken design. Employing Design-Expert ® software, the impact of formulation variables on NOVs physicochemical characteristics besides the optimum formulation election were explored. Based on the optimal NOVs formulation, QRC-SeNOVs were assembled via electrostatic complexation/in situ reduction method. The MTT cytotoxicity assay of the uncoated, and coated nanovectors versus crude QRC was investigated in human rhabdomyosarcoma (RD) cells. The in vivo pharmacokinetic and biodistribution studies after intravenous administrations of technetium-99m ( 99m Tc)-labeled QRC-NOVs, QRC-SeNOVs, and QRC-solution were scrutinized in Ehrlich tumor-bearing mice. QRC-NOVs and QRC-SeNOVs disclosed entrapment efficiency of 67.21 and 70.85%, vesicle size of 107.29 and 129.16 nm, ζ potential of -34.71 and -43.25 mV, and accumulatively released 43.26 and 31.30% QRC within 24 h, respectively. Additionally, QRC-SeNOVs manifested a far lower IC 50 of 5.56 μg/mL on RD cells than that of QRC-NOVs (17.63 μg/mL) and crude QRC (38.71 μg/mL). Moreover, the biodistribution study elicited higher preferential uptake of 99m Tc-QRC-SeNOVs within the tumorous tissues by 1.73- and 5.67-fold as compared to 99m Tc-QRC-NOVs and 99m Tc-QRC-solution, respectively. Furthermore, the relative uptake efficiency of 99m Tc-QRC-SeNOVs was 5.78, the concentration efficiency was 4.74 and the drug-targeting efficiency was 3.21. Hence, the engineered QRC-SeNOVs could confer an auspicious hybrid nanoparadigm for QRC delivery with fine-tuned pharmacokinetics, and synergized antitumor traits.
Keyphrases
- induced apoptosis
- anti inflammatory
- drug delivery
- cell cycle arrest
- fatty acid
- air pollution
- primary care
- pet imaging
- oxidative stress
- gene expression
- endothelial cells
- high fat diet induced
- healthcare
- transcription factor
- emergency department
- endoplasmic reticulum stress
- signaling pathway
- high dose
- high resolution
- cancer therapy
- insulin resistance
- quality improvement
- skeletal muscle
- metabolic syndrome
- mass spectrometry
- molecular dynamics simulations
- cell proliferation
- low dose
- induced pluripotent stem cells
- computed tomography
- positron emission tomography
- single cell
- genome wide
- human health
- case control