The subtle relationship between vascular network structure and mass transport is vital to predict and improve the efficacy of anticancer treatments. Here, mathematical homogenisation is used to derive a new multiscale continuum model of blood and chemotherapy transport in the vasculature and interstitium of a vascular tumour. This framework enables information at a range of vascular hierarchies to be fed into an effective description on the length scale of the tumour. The model behaviour is explored through a demonstrative case study of a simplified representation of a dorsal skinfold chamber, to examine the role of vascular network architecture in influencing fluid and drug perfusion on the length scale of the chamber. A single parameter, ...
The role of the microvascular network geometry in transport phenomena in solid tumors and its interp...
To investigate the dynamic changes of solid tumor and neo-vasculature in response to chemotherapeuti...
Cancers exhibit spatially heterogeneous, unique vascular architectures across individual samples, ce...
The subtle relationship between vascular network structure and mass transport is vital to predict an...
Understanding the perfusion of blood and drugs in tumours is fundamental to foreseeing the efficacy ...
Understanding the perfusion of blood and drugs in tumours is fundamental to foreseeing the efficacy of...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The role of the microvascular network geometry in transport phenomena in solid tumors and its interp...
To investigate the dynamic changes of solid tumor and neo-vasculature in response to chemotherapeuti...
Cancers exhibit spatially heterogeneous, unique vascular architectures across individual samples, ce...
The subtle relationship between vascular network structure and mass transport is vital to predict an...
Understanding the perfusion of blood and drugs in tumours is fundamental to foreseeing the efficacy ...
Understanding the perfusion of blood and drugs in tumours is fundamental to foreseeing the efficacy of...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The aim of this paper is to investigate the conditions required to optimize the amount of chemothera...
The role of the microvascular network geometry in transport phenomena in solid tumors and its interp...
To investigate the dynamic changes of solid tumor and neo-vasculature in response to chemotherapeuti...
Cancers exhibit spatially heterogeneous, unique vascular architectures across individual samples, ce...