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Updated: Aug 30, 2026

Predicting In Vivo Payloads Delivery using a Blood-brain Tumor-barrier in a Dish
Published on: April 16, 2019
Unlocking the brain: Biodistribution insights into tween 80 nanoliposomes in healthy brains
Masoud Khatibi1,2, Seyedeh Maryam Hosseinikhah1,3, Seyedeh Hoda Alavizdaeh1,4
1Nanotechnology Research Center, Pharmaceutical Technology Institute, Mashhad University of Medical Sciences, Mashhad, Iran.
Abstract:
Limited drug penetration across the blood-brain barrier hinders brain tumor therapy. This study evaluated doxorubicin-loaded nanoliposomes with varying Tween 80 contents, investigating formulation characteristics, release profiles, cytotoxicity on cancer and healthy cells, and tissue distribution in healthy models. Nanoliposomes were prepared via thin-film hydration. Physicochemical properties, in vitro drug release at physiological and acidic pH, and cytotoxicity (MTT assay and IC50) on C6 cells and normal NIH 3 T3 cells (including empty-carrier biosafety) were assessed. In vivo tissue distribution and histopathological safety were also examined in mice. Formulations showed composition-dependent size and 3-month stability. Formulation F2 emerged as the lead candidate, exhibiting optimal size (142.4 nm), PDI (0.139), encapsulation efficiency (82.4%), and pH-responsive release (80-90% at pH 5.5 vs. <10% at pH 7.4). F2 maintained potent cytotoxicity on C6 cells (IC50: 0.44 μg/mL) while demonstrating high biosafety on normal NIH 3 T3 cells, showing >90% viability with empty blanks and a markedly higher IC50 (20.67 μg/mL) than free DOX. In vivo, F2 achieved superior brain accumulation at 24 and 48 h (2.61 and 2.78 μg/g; p < 0.05 vs. DOX) while reducing cardiac uptake (2.29 vs. 14.49 μg/g at 24 h). Formulation F2 balances colloidal stability, reduced cardiotoxicity, and superior brain accumulation, supporting its potential for neuro-oncology applications.
