Related Experiment Video
Updated: Mar 2, 2026

Spatial Measurements of Perfusion, Interstitial Fluid Pressure and Liposomes Accumulation in Solid Tumors
Published on: August 18, 2016
Liposomal particokinetics and intratumoral microdistribution: A quantitative reassessment of the enhanced
Yifan Cai1, Zichen Zhang1, Yi Lu2
1School of Pharmaceutical Sciences, Fudan University, Key Laboratory of Smart Drug Delivery of MOE and National Key Laboratory of Advanced Drug Formulations for Overcoming Delivery Barriers, Shanghai 201203, China.
Abstract:
The enhanced permeability and retention (EPR) effect, a cornerstone of cancer nanomedicine, has been predominantly interpreted at the macroscopic level, offering limited insight into the microscopic dynamics governing nanocarrier delivery. To address this gap, we directly compared the intratumoral particokinetics of liposomal carriers with that of their drug payload (doxorubicin) through precise tracing and quantitative analysis. Using a second near-infrared (NIR-II) aggregation-caused quenching (ACQ) probe, ACQ5, we achieved accurate in vivo tracking of doxorubicin-loaded liposomes. This approach minimizes artifacts from free labels and ensures superior fluorescence linearity. Our results show substantial sequestration of liposomes by the mononuclear phagocyte system (liver: 16.3% ID/g at 8 h; spleen: 70.5% ID/g at 36 h), with only modest tumor accumulation (∼4% ID/g after 24 h). Importantly, by noninvasively differentiating intravascular from extravascular signals, we established that microdistribution serves as a more meaningful indicator of permeation efficiency than total tumor accumulation. Moreover, we revealed a critical spatial dissociation: although liposomes progressively penetrated the tumor interstitium, doxorubicin readily dissociated and was largely retained in perivascular regions. This study challenges the classical macro-level EPR concept and underscores the necessity of a microscopic reassessment of intratumoral particokinetics to guide the development of next-generation nanocarriers with improved therapeutic efficacy.
More Related Videos
Related Concept Videos
Bioavailability Enhancement: Drug Permeability Enhancement
Modified-Release Drug Delivery Systems: Site-Targeted
Modified-Release Drug Delivery Systems: Bioavailability
Pharmacokinetic–Pharmacodynamic Relationship: Duration of Dose-Effect Relationship
Factors Affecting Drug Distribution: Organ Perfusion Rate
Perfusion rate-limited distribution relies on the...
Factors Affecting Drug Distribution: Tissue Permeability
Small molecules with a molecular weight below 500 to 600 Daltons can easily pass through the capillary membrane, gaining access to different tissues. Larger...

