ArticleAnnals of biomedical engineering2026
A Spatiotemporal Image-Guided Model of Radiopharmaceutical Transport in Heterogeneous Vasculature Prostate Tumor: A Computational Analysis of Key Parameters in Lutetium-177 PSMA Therapy.
Article in Annals of biomedical engineering, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
purposeRecent clinical advances highlight
methodsA spatiotemporal computational model was constructed using image-based tumor vasculature. The model employed the convection-diffusion-reaction framework to describe transport phenomena in both vascular and interstitial domains. Physiological parameters including vascular permeability, lymphatic drainage, receptor density, ligand-receptor binding affinity, and internalization kinetics were incorporated. Parametric studies were performed to investigate the effects of injected dose, labeling efficiency, ligand affinity, receptor density, blood flow, and tumor size on radioligand uptake and time-integrated activity (TIA).
resultsSimulations revealed pronounced spatial heterogeneity in intravascular and interstitial pressure and velocity fields. Tumor uptake and TIA exhibited nonlinear dependence on injected dose, peaking at 500 nmol, beyond which receptor saturation limited binding. Increasing the proportion of labeled ligand (2-8%) linearly enhanced TIA. Lower dissociation constants and higher internalization rates improved retention, while elevated receptor density increased uptake up to saturation. Blood flow reduction prolonged intratumoral retention, and tumor volume showed a linear relationship with accumulated activity for 10-50 mm
conclusionThe results highlight the critical role of vascular architecture and tumor-specific parameters in governing radiopharmaceutical distribution. The developed model provides mechanistic insights for optimizing
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