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Physiological Pharmacokinetic Models: Assumption with Protein Binding01:13

Physiological Pharmacokinetic Models: Assumption with Protein Binding

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Physiological models with protein binding in pharmacokinetics offer a sophisticated approach to understanding drug disposition. These models consider drug-protein interactions, enabling them to effectively predict drug concentrations in different organs and tissues. This precision aids in accurate drug dosing, providing a significant advantage over conventional models. A key process within these models is equilibration, which ensures that drug concentrations achieve a steady state within the...
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Consider a neutral form of an amine, B, with a partition coefficient, K, in a liquid mixture containing organic and aqueous phases. The pH of the aqueous phase affects the charge on acidic and basic solutes, and the charged form is usually more soluble in the aqueous phase. Suppose the conjugate acid form of the amine is soluble only in the aqueous phase while the base form is soluble in both phases. Then the distribution coefficient, D, can be given as the ratio of amine concentration in the...
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Drug absorption within the gastrointestinal (GI) tract is a complex process influenced by several critical factors, including the site pH, the drug's dissociation constant (pKa), and the drug's lipophilicity. The GI tract exhibits a pH gradient, with an acidic environment in the stomach and a more alkaline environment in the small intestine. This pH variation directly affects the ionization state of drugs.
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For an ideal solution, the pH is defined as the negative logarithm of the hydrogen ion concentration. For a non-ideal solution, an accurate measurement of the pH must consider the negative logarithm of the hydrogen ion activity rather than concentration. In such a solution, the pH can be more accurately defined as the negative logarithm of a product of the hydrogen ion concentration and its activity coefficient.
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Hydronium and hydroxide ions are present both in pure water and in all aqueous solutions, and their concentrations are inversely proportional as determined by the ion product of water (Kw). The concentrations of these ions in a solution are often critical determinants of the solution’s properties and the chemical behaviors of its other solutes. Two different solutions can differ in their hydronium or hydroxide ion concentrations by a million, billion, or even trillion times. A common means of...
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Two physics-based models for pH-dependent calculations of protein solubility.

Velin Z Spassov1, Helen Kemmish1, Lisa Yan1

  • 1BIOVIA Dassault Systemes, 5005 Wateridge Vista Drive, San Diego, California, USA.

Protein Science : a Publication of the Protein Society
|April 28, 2022
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Summary

Two novel computational methods predict protein solubility and rank mutants. These tools aid in protein engineering and antibody formulation by guiding solubility predictions and optimizing protein design.

Keywords:
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Area of Science:

  • Computational biology
  • Protein engineering
  • Biophysics

Background:

  • Protein solubility is a critical physicochemical property optimized during protein engineering.
  • Accurate prediction of solubility is essential for successful protein design and formulation.

Purpose of the Study:

  • To develop and validate novel computational methods for calculating pH-dependent protein solubility.
  • To enable rapid ranking of protein mutant solubility and guide protein design strategies.

Main Methods:

  • An empirical method incorporating electrostatic solvation energy (Generalized Born approximation), hydrophobic patches, protein charge, and stability changes.
  • A force-field-based approach using CHARMm to calculate protein binding energy to crystal lattice components.

Main Results:

  • The empirical method achieved over 80% prediction rate for mutations in globular proteins and antibodies, with high correlation (R=.83-.91) to experimental data.
  • The force-field method accurately predicted pH-dependent solubility for Ribonuclease SA and its mutants without parameter adjustment.
  • Both methods demonstrated utility in screening design candidates and optimizing formulation conditions.

Conclusions:

  • The developed computational methods offer efficient and accurate tools for predicting protein solubility.
  • These methods can significantly accelerate protein engineering workflows and improve the development of protein-based therapeutics and biologics.