The distribution and accumulation of nanoparticle dosage in a tumor are important in evaluating the effectiveness of cancer treatment. The cell survival rate can quantify the therapeutic effect, and the survival rates after multiple treatments are helpful to evaluate the efficacy of a chemotherapy plan. We developed a mathematical tumor model based on the governing equations describing the fluid flow and particle transport to investigate the drug transportation in a tumor and computed the resulting cumulative concentrations. The cell survival rate was calculated based on the cumulative concentration. The model was applied to a subcutaneous tumor with heterogeneous vascular distributions. Various sized dextrans and doxorubicin were respectiv...
Starting from the fundamental laws of filtration and transport in biological tissues, we develop a c...
Starting from the fundamental laws of filtration and transport in biological tissues, we develop a c...
Starting from the fundamental laws of filtration and transport in biological tissues, we develop a c...
[[abstract]]The distribution and accumulation of nanoparticle dosage in a tumor are important in eva...
[[abstract]]The distribution and accumulation of nanoparticle dosage in a tumor are important in eva...
[[abstract]]The distribution and accumulation of nanoparticle dosage in a tumor are important in eva...
[[abstract]]The transport and accumulation of anticancer nanodrugs in tumor tissues are affected by ...
[[abstract]]The transport and accumulation of anticancer nanodrugs in tumor tissues are affected by ...
The transport and accumulation of anticancer nanodrugs in tumor tissues are affected by many factors...
Vascular targeting of malignant tissues with systemically injected nanoparticles (NPs) holds promise...
The delivery of adequate concentration of anticancer drugs to tumor site is critical to achieve effe...
Inefficient vascularization hinders the optimal transport of cell nutrients, oxygen, and drugs to ca...
Inefficient vascularization hinders the optimal transport of cell nutrients, oxygen, and drugs to ca...
Inefficient vascularization hinders the optimal transport of cell nutrients, oxygen, and drugs to ca...
Breast cancer treatment response varies by subtype, treatment regiment, and additionally by vasculat...
Starting from the fundamental laws of filtration and transport in biological tissues, we develop a c...
Starting from the fundamental laws of filtration and transport in biological tissues, we develop a c...
Starting from the fundamental laws of filtration and transport in biological tissues, we develop a c...
[[abstract]]The distribution and accumulation of nanoparticle dosage in a tumor are important in eva...
[[abstract]]The distribution and accumulation of nanoparticle dosage in a tumor are important in eva...
[[abstract]]The distribution and accumulation of nanoparticle dosage in a tumor are important in eva...
[[abstract]]The transport and accumulation of anticancer nanodrugs in tumor tissues are affected by ...
[[abstract]]The transport and accumulation of anticancer nanodrugs in tumor tissues are affected by ...
The transport and accumulation of anticancer nanodrugs in tumor tissues are affected by many factors...
Vascular targeting of malignant tissues with systemically injected nanoparticles (NPs) holds promise...
The delivery of adequate concentration of anticancer drugs to tumor site is critical to achieve effe...
Inefficient vascularization hinders the optimal transport of cell nutrients, oxygen, and drugs to ca...
Inefficient vascularization hinders the optimal transport of cell nutrients, oxygen, and drugs to ca...
Inefficient vascularization hinders the optimal transport of cell nutrients, oxygen, and drugs to ca...
Breast cancer treatment response varies by subtype, treatment regiment, and additionally by vasculat...
Starting from the fundamental laws of filtration and transport in biological tissues, we develop a c...
Starting from the fundamental laws of filtration and transport in biological tissues, we develop a c...
Starting from the fundamental laws of filtration and transport in biological tissues, we develop a c...