Related Experiment Video
Updated: Sep 17, 2025

Spatial Measurements of Perfusion, Interstitial Fluid Pressure and Liposomes Accumulation in Solid Tumors
Published on: August 18, 2016
Methods of Estimating Plasma Pharmacokinetics From Minimally Invasive, High Temporal Resolution Measurements of
Murat K Erdal1, Tod E Kippin2,3, João P Hespanha1
1Department of Electrical and Computer Engineering, University of California, Santa Barbara, USA.
None:
In therapeutic drug monitoring, plasma drug concentrations are used to guide dosing decisions, significantly improving outcomes for many therapeutic interventions. Due to the cumbersome, laboratory-based approaches used to measure such drug concentrations, however, such monitoring is slow to return actionable information to the clinician and is performed far less frequently than would be optimal. In response, approaches are being developed by which in vivo drug concentrations can be monitored in real time and at high frequency in the subcutaneous or intradermal interstitial fluid-measurements that are safe, convenient, and minimally invasive. In the furtherance of this approach, here, we explore theoretically the ability to use such high-frequency sub- or intradermal measurements to estimate the corresponding plasma concentration-time courses, as the latter remain the basis of effectively all clinical decision making. Doing so, we find that, given various physiologically and technologically plausible assumptions, it is possible to accurately estimate plasma concentration-time courses from measurements of interstitial fluid taken at two nonredundant sites in the interstitial fluid. This ability to derive clinically important plasma pharmacokinetics using minimally invasive subcutaneous or intradermal sensor placements has the potential to significantly improve the precision and reach of therapeutic drug monitoring and, with that, the safety and efficacy of drug delivery.
Related Concept Videos
Noncompartmental Analysis: Miscellaneous Pharmacokinetic Parameters
One key aspect of the noncompartmental approach is determining a drug's total clearance. This can be done by dividing the drug dose by the area under the concentration-time curve from zero to infinity. The area under the concentration-time curve represents the drug's...
Drug Concentrations: Measurements
Plasma...
Drug Concentration Versus Time Correlation
Two pivotal parameters are the minimum effective concentration (MEC) and the minimum toxic concentration (MTC). The MEC is the...
One-Compartment Model: IV Infusion
The one-compartment model for IV infusion uses mathematical equations to describe the rate of change in drug quantity in the body. At steady-state or infusion equilibrium, the drug input...
Two-Compartment Open Model: IV Infusion
The model illustrates the decrease in plasma drug concentration from the central compartment with a specific equation. It shows that under steady-state conditions, the drug's input rate...
Model-Independent Approaches for Pharmacokinetic Data: Noncompartmental Analysis
One important characteristic of noncompartmental analyses is that drug exposure increases proportionally with increasing doses. This...

