Binding Calculator

Calculate binding energy, binding affinity, dissociation constant (Kd), and Gibbs free energy (ΔG) for molecular interactions.

Standard: 298 K (25°C)
Kd = Koff / Kon

Kd (Dissociation Constant)

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ΔG (Gibbs Free Energy)

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Interpretation

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Binding Parameters

Frequently Asked Questions

What is Kd (dissociation constant)?

Kd is the dissociation constant that quantifies the affinity between two molecules (e.g., ligand and receptor). A lower Kd indicates higher binding affinity. Kd = [L][R]/[LR], where [L] is free ligand concentration, [R] is free receptor concentration, and [LR] is the concentration of the complex.

How do you calculate binding affinity?

Binding affinity is inversely related to Kd: higher affinity = lower Kd. The standard free energy change ΔG = RT ln(Kd), where R = 1.987 cal/(mol·K) and T is temperature in Kelvin. More negative ΔG indicates stronger binding.

What is the relationship between Kd and binding strength?

Kd is inversely proportional to binding strength. A smaller Kd (nanomolar or picomolar range) indicates high affinity binding. Typical ranges:

  • μM (10⁻⁶): Weak binding
  • nM (10⁻⁹): Moderate to strong binding
  • pM (10⁻¹²): Very strong binding

How do I convert IC50 to Kd?

The conversion depends on assay type. For competitive inhibition: Kd = IC50 / (1 + [S]/Km). For non-competitive: Kd = IC50. The Cheng-Prusoff equation is commonly used: Ki = IC50 / (1 + [S]/Km).

What is Gibbs free energy (ΔG) in binding?

ΔG is the change in free energy upon binding. A negative ΔG indicates spontaneous binding. The relationship with Kd is: ΔG = -RT ln(1/Kd) = RT ln(Kd). At 298 K, ΔG = 1.987 × 298 × ln(Kd) cal/mol.