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Updated: Aug 2, 2026

Determination of High-affinity Antibody-antigen Binding Kinetics Using Four Biosensor Platforms
Published on: April 17, 2017
Kinetic analysis of a protein antigen-antibody interaction limited by mass transport on an optical biosensor
D G Myszka1, T A Morton, M L Doyle
1Department of Molecular Immunology, SmithKline Beecham Pharmaceuticals, King of Prussia, PA 19406, USA. dmyszka@genetics.utah.edu
Insights
Accurate protein binding kinetics were determined using BIAcore technology, even with mass transport limitations. Optimizing experimental design allowed precise measurement of antigen-antibody interaction rate constants.
Area of Science:
- Biophysics
- Immunology
- Biochemistry
Background:
- Protein-protein interactions are crucial in biological systems.
- Accurate kinetic analysis of antigen-antibody interactions is vital for diagnostics and therapeutics.
- Mass transport limitations can affect biosensor measurements.
Purpose of the Study:
- To determine the rate constants for a specific protein antigen-antibody interaction using BIAcore technology.
- To investigate and overcome mass transport limitations in biosensor assays.
- To validate kinetic data against solution-based measurements.
Main Methods:
- Utilized BIAcore technology for real-time monitoring of antigen-antibody binding.
- Employed numerical integration and global fitting with a mass transport-limited reaction model.
- Optimized antibody immobilization and used control experiments to correct for instrument artifacts.
- Applied statistical profiling to analyze model parameter correlations.
Main Results:
- A mass transport-limited reaction model accurately described binding across varied antibody surface densities.
- Kinetic rate constants (kon = 1.2 x 10^-6 M^-1 s^-1, koff = 2.9 x 10^-4 s^-1) were determined.
- The calculated equilibrium dissociation constant (KD = 0.24 nM) closely matched titration calorimetry results (KD = 0.2 nM).
Conclusions:
- Accurate kinetic and equilibrium constants can be obtained despite mass transport limitations.
- Optimized experimental design and multi-density data analysis are key for reliable biosensor measurements.
- This study provides a robust method for characterizing antigen-antibody interactions.
Abstract:
Using BIAcore technology, we determined the rate constants for a protein antigen-antibody interaction that was mass transport limited on the optical biosensor. The antigen consisted of a soluble form of the human T-cell receptor CD4 (two amino terminal domains, D1D2) and the antibody was an anti-CD4 monoclonal from monkey engineered with the constant domains from human IgG1. High quality response data were obtained for this interaction by orienting the attachment of the antibody on the sensor surface and correcting for instrument artifacts with control experiments. Using numerical integration and global fitting, we demonstrate that a mass transport limited reaction was the only model of those tested that described well D1D2 binding to three different surface densities of the antibody. Statistical profiling techniques showed that the error space and correlation for the parameters in the non-linear model were essentially linear, but only when the model was simultaneously fitted to data from multiple surface densities. The "on" and "off" rate constants (1.2 x 10(-6) M-1 s-1 and 2.9 x 10(-4) s-1) determined from the kinetic analysis predict an equilibrium dissociation constant (KD = 0.24 +/- 0.01 nM) that agrees with the value measured in solution by titration calorimetry (KD = 0.2 +/- 0.1 nM). The results indicate that, although the D1D2-antibody reaction is partially controlled by mass transport on the optical biosensor, by optimizing the experimental design and analyzing data from multiple surface densities it is possible to determine accurate estimates of the intrinsic equilibrium and kinetic rate constants.
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