| # Binding Affinity and Thermodynamics |
|
|
| ## Summary |
|
|
| For a simple reversible protein–DNA interaction, equilibrium affinity can be |
| described by an association or dissociation constant. Lower \(K_d\) means that |
| less free DNA is required to occupy a given fraction of protein binding sites |
| under the ideal one-to-one model. Standard binding Gibbs energy is |
| logarithmically related to the dimensionless equilibrium constant. These |
| thermodynamic quantities are distinct from kinetic rate constants, |
| fluorescence intensities, enrichment statistics, and cellular regulatory |
| activity. |
| |
| ## Scope |
| |
| ### Covered |
| |
| - One-to-one equilibrium binding, \(K_a\), \(K_d\), occupancy, and standard Gibbs energy. |
| - Relative binding free energy and kinetic association/dissociation rates. |
| - Conditions required for interpreting and comparing affinity measurements. |
| |
| ### Not covered |
| |
| - Detailed cooperative, allosteric, or multisite binding models. |
| - A calibration of any particular experimental score to affinity. |
| - Cellular transcriptional effects. |
| |
| ## Key concepts and notation |
| |
| | Term or symbol | Definition | Unit or notes | |
| | --- | --- | --- | |
| | \(P\) | Free protein | Concentration or activity | |
| | \(D\) | Free DNA ligand | Concentration or activity | |
| | \(PD\) | Protein–DNA complex | Concentration or activity | |
| | \(K_a\) | Equilibrium association constant | Often reported in inverse concentration | |
| | \(K_d\) | Equilibrium dissociation constant | Often reported as concentration | |
| | \(k_{\mathrm{on}}\) | Association rate constant | For a bimolecular step, concentration\(^{-1}\) time\(^{-1}\) | |
| | \(k_{\mathrm{off}}\) | Dissociation rate constant | Time\(^{-1}\) | |
| | \(\Delta G^\circ_{\mathrm{bind}}\) | Standard Gibbs-energy change for association | Energy per mole | |
| | \(R\) | Molar gas constant | 8.314462618 J mol\(^{-1}\) K\(^{-1}\) | |
| | \(T\) | Thermodynamic temperature | kelvin | |
|
|
| ## Core knowledge |
|
|
| ### Equilibrium constants |
|
|
| For |
|
|
| \[ |
| P + D \rightleftharpoons PD, |
| \] |
|
|
| the concentration-form dissociation constant is |
|
|
| \[ |
| K_d=\frac{[P][D]}{[PD]}, |
| \] |
| |
| when activity coefficients and the standard-concentration factor are treated |
| according to the chosen convention. The corresponding association constant is |
| \(K_a=1/K_d\) when reciprocal units and the same convention are used [1]. |
| Smaller \(K_d\), or larger \(K_a\), denotes tighter equilibrium binding. |
| |
| For a single independent site, if free ligand concentration is effectively |
| known and ligand depletion is negligible, the bound fraction is |
| |
| \[ |
| \theta=\frac{[D]}{K_d+[D]}. |
| \] |
|
|
| Under these assumptions, \(\theta=1/2\) when \([D]=K_d\). This statement does |
| not generally hold unchanged for cooperative systems, multiple site classes, |
| or when total concentration is substituted for free concentration. |
| |
| ### Standard binding Gibbs energy |
| |
| Thermodynamics defines a dimensionless standard equilibrium constant |
| \(K^\circ\) and relates it to standard reaction Gibbs energy by [2] |
| |
| \[ |
| \Delta G^\circ=-RT\ln K^\circ. |
| \] |
| |
| For association, this can be written |
| |
| \[ |
| \Delta G^\circ_{\mathrm{bind}}=-RT\ln K_a^\circ |
| =RT\ln K_d^\circ, |
| \] |
|
|
| where \(K_a^\circ\) and \(K_d^\circ\) are dimensionless forms referenced to a |
| stated standard state. More negative \(\Delta G^\circ_{\mathrm{bind}}\) |
| indicates more favorable association. |
| |
| For two DNA ligands measured under the same conditions and standard-state |
| convention, |
| |
| \[ |
| \Delta\Delta G^\circ |
| =\Delta G^\circ_2-\Delta G^\circ_1 |
| =RT\ln\left(\frac{K_{d,2}}{K_{d,1}}\right). |
| \] |
| |
| Thus free-energy differences correspond to ratios of equilibrium constants, |
| not linear differences in \(K_d\). |
|
|
| ### Kinetics and equilibrium |
|
|
| For an elementary two-state interaction, |
|
|
| \[ |
| K_d=\frac{k_{\mathrm{off}}}{k_{\mathrm{on}}}. |
| \] |
| |
| Two complexes can have similar \(K_d\) values but different association and |
| dissociation rates. Residence time is related to \(k_{\mathrm{off}}\), whereas |
| equilibrium occupancy depends on the ratio of rates and the free |
| concentrations. More complicated mechanisms can contain intermediate states |
| and need not be described by one pair of rate constants [1,3]. |
| |
| ### Relative assay scores |
| |
| Fluorescence intensity, enrichment, rank statistics, and motif scores may |
| correlate with affinity within a calibrated regime, but they are not |
| thermodynamic quantities by definition. Converting such a score to \(K_d\) or |
| \(\Delta G^\circ\) requires an explicit calibration and assumptions about the |
| assay response. |
|
|
| ## Conditions, limitations, and uncertainty |
|
|
| - Equilibrium comparisons require sufficient equilibration and clearly |
| defined free molecular species. |
| - Temperature, ionic strength, pH, buffer composition, cofactors, competitors, |
| DNA length, labels, and protein construct can change measured affinity. |
| - Reported concentration-form constants can depend on conventions and |
| nonideal-solution effects; thermodynamic equilibrium constants use |
| dimensionless activities. |
| - Apparent \(K_d\) values from complex or nonequilibrium assays may combine |
| multiple physical processes. |
| - Binding affinity alone does not determine cellular occupancy or regulatory |
| consequence. |
| |
| ## Related knowledge resources |
| |
| - `transcription_factor_dna_binding`: specificity, occupancy, and molecular recognition. |
| - `protein_binding_microarrays`: rank and fluorescence measurements distinct from \(K_d\). |
| |
| ## References |
| |
| 1. International Union of Pure and Applied Chemistry. Equilibrium dissociation constant. *Compendium of Chemical Terminology*, 5th ed., online version 5.0.0. 2025. https://doi.org/10.1351/goldbook.14132. Accessed 2026-07-23. [Official definition] |
| 2. International Union of Pure and Applied Chemistry. Standard equilibrium constant. *Compendium of Chemical Terminology*, 5th ed., online version 5.0.0. 2025. https://doi.org/10.1351/goldbook.S05915. Accessed 2026-07-23. [Official definition] |
| 3. Hulme EC, Trevethick MA. Ligand binding assays at equilibrium: validation and interpretation. *British Journal of Pharmacology*. 2010;161:1219–1237. https://doi.org/10.1111/j.1476-5381.2009.00604.x. [Review] |
| |