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Cooperative Allosteric Transitions01:58

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Cooperative allosteric transitions can occur in multimeric proteins, where each subunit of the protein has its own ligand-binding site. When a ligand binds to any of these subunits, it triggers a conformational change that affects the binding sites in the other subunits; this can change the affinity of the other sites for their respective ligands. The ability of the protein to change the shape of its binding site is attributed to the presence of a mix of flexible and stable segments in the...
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Transcriptional regulators bind to specific cis-regulatory sequences in the DNA to regulate gene transcription. These cis-regulatory sequences are very short, usually less than ten nucleotide pairs in length. The short length means that there is a high probability of the exact same sequence randomly occurring throughout the genome.  Since regulators can also bind to groups of similar sequences, this further increases the chances of random binding. Transcriptional regulators form...
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The Two-State Receptor Model01:29

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The two-state receptor model explains a drug's interaction with receptors, such as G protein-coupled receptors and ligand-gated ion channels, to induce or inhibit a biological response. When no natural ligands are present, a receptor exists in an equilibrium of inactive (Ri) and active (Ra) conformations. The inactive form does not produce a response, while the active form generates a basal effect known as constitutive activity.
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Related Experiment Video

Updated: Mar 28, 2026

Author Spotlight: Evaluation of Protein-Condensate Dynamics in Live Human Cells
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Cooperativity in Binding Processes: New Insights from Phenomenological Modeling.

Diego I Cattoni1,2, Osvaldo Chara3,4, Sergio B Kaufman1

  • 1Laboratorio de Biofísica Molecular, Instituto de Química y Fisicoquímica Biológicas, Universidad de Buenos Aires - CONICET, Buenos Aires, Argentina.

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Summary

This study models cooperative ligand binding to macromolecules. Researchers found Hill coefficients measure interaction energy, and kinetic studies can differentiate binding site types, unlike equilibrium experiments.

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Area of Science:

  • Biochemistry
  • Chemical Kinetics
  • Molecular Biophysics

Background:

  • Cooperative binding is crucial for biological regulation but not fully understood.
  • Ligand binding to macromolecules with multiple sites is a key model for cooperativity.

Purpose of the Study:

  • Analyze a simple phenomenological model for cooperativity in ligand binding.
  • Investigate the relationship between binding parameters and experimental observables.
  • Explore kinetic versus equilibrium methods for studying binding phenomena.

Main Methods:

  • Deterministic simulation of binding time courses.
  • Generation of equilibrium binding isotherms.
  • Analysis of Hill coefficients and Gibbs free energy of interaction.

Main Results:

  • Hill coefficients accurately reflect the Gibbs free energy of interaction between binding sites.
  • The free energy of association for empty sites does not influence Hill coefficients.
  • Negative cooperativity and distinct binding site classes are kinetically distinguishable but not at equilibrium.

Conclusions:

  • Kinetic, time-resolved experiments offer insights beyond equilibrium binding studies.
  • High ligand concentration experiments can reveal hidden binding sites, especially under negative cooperativity.
  • Understanding cooperative binding mechanisms is vital for biological process control.