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Position of Equilibrium in Acid-Base Reactions02:05

Position of Equilibrium in Acid-Base Reactions

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In any solution, the value of pKa indicates whether an acid is completely dissociated or not. A negative pKa corresponds to a stronger acid, whereas a positive pKa corresponds to a weaker acid. Consider the reaction between ammonia and an ethoxide ion. In this reaction, ethanol with a pKa of 15.9 is a stronger acid than ammonia with a pKa of 38. Recall that the strong acid forms a weak conjugate base, and a weak acid forms a strong conjugate base. Hence, the ethoxide ion is a weak base.
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Amines can behave as Brønsted–Lowry bases by accepting a proton from the acid to form corresponding conjugate acids. Due to a lone pair of nonbonding electrons, aliphatic amines can also act as Lewis bases by forming a covalent bond with an electrophile.
To measure the basicity of amines, two conventions are generally used. The first defines Kb as the basicity constant for the deprotonation reaction of water by the amine, as presented in Figure 1. Conventionally, lower Kb indicates...
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Acid and Bases: Ka, pKa, and Relative Strengths02:35

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This lesson delves into a critical aspect of the relative strengths of acids and bases. The strength of an acid is evaluated by the acid dissociation into its conjugate base and a hydronium ion in water. The complete dissociation of a strong acid is confirmed with a very high concentration of hydronium ions. As a result, an incomplete dissociation process affirms a weak acid. Therefore, the equilibrium is in the forward direction for strong acids and backward for weak acids in these reactions.
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The equilibrium binding constant (Kb) quantifies the strength of a protein-ligand interaction. Kb can be calculated as follows when the reaction is at equilibrium:
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Weak Base Solutions03:21

Weak Base Solutions

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Some compounds produce hydroxide ions when dissolved by chemically reacting with water molecules. In all cases, these compounds react only partially and so are classified as weak bases. These types of compounds are also abundant in nature and important commodities in various technologies. For example, global production of the weak base ammonia is typically well over 100 metric tons annually, being widely used as an agricultural fertilizer, a raw material for chemical synthesis of other...
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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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Accurately Predicting Protein pKa Values Using Nonequilibrium Alchemy.

Carter J Wilson1,2, Mikko Karttunen2,3,4, Bert L de Groot5

  • 1Department of Mathematics, The University of Western Ontario, N6A 5B7 London, Canada.

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|October 11, 2023
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Summary

This study introduces a computational method for predicting protein residue pKa values, achieving accuracy comparable to experimental methods. The approach offers a viable alternative for understanding protein behavior and function.

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Area of Science:

  • Computational chemistry
  • Biophysics
  • Protein science

Background:

  • Protein stability, solubility, and function are influenced by residue net charge and protonation states.
  • pKa values quantify residue protonation tendency at specific pH, crucial for protein behavior.
  • Experimental pKa determination is possible, but theoretical and computational methods offer alternatives.

Purpose of the Study:

  • To evaluate a nonequilibrium (NEQ) alchemical free energy method for predicting protein residue pKa values.
  • To assess the accuracy and applicability of this computational approach across diverse protein systems.

Main Methods:

  • Utilized a nonequilibrium (NEQ) alchemical free energy method for pKa prediction.
  • Applied the method to a dataset of 144 residues across 13 different proteins.
  • Employed an open-source, pmx-based computational framework.

Main Results:

  • Achieved average unsigned errors of 0.77 ± 0.09, 0.69 ± 0.09, and 0.52 ± 0.04 pK for aspartate, glutamate, and lysine, respectively.
  • Demonstrated accuracy comparable to state-of-the-art predictors and free energy perturbation methods.
  • Successfully resolved pKa values for coupled residues and identified charge model performance issues.

Conclusions:

  • The NEQ alchemical free energy method provides an accurate and reliable computational approach for pKa prediction.
  • This open-source tool can aid in understanding protein properties and potentially guide protein design.
  • Identified specific areas for improvement in existing protein force fields, particularly for lysine residues.