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April 10, 2026Computational and Theoretical Chemistry2 citationsOpen Access

The mechanism and kinetics of 2,2-diphenyl-1-picrylhydrazyl (DPPH) reactions in damaging protein and lipid models, and its suitability as a model for oxidative stress damage.

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JAJuan Raúl Alvarez-Idaboy

Key Points

  • The research aims to evaluate the suitability of DPPH as a model for assessing oxidative stress and its reaction kinetics compared to biologically relevant oxidants.
  • Evaluated DPPH reactivity using quantum-mechanical kinetics (QM-ORSA) with diffusion and tunneling corrections.
  • Used bis-allylic lipid models and amino acids like Alanine, Cysteine, and Glutathione as representative substrates.
  • Compared DPPH reactions to peroxyl radicals in different media to assess hydrogen-transfer mechanisms.
  • DPPH shows significantly higher barriers and lower rate constants for hydrogen-transfer than peroxyl radicals.
  • Under SPLET conditions, DPPH can mimic antioxidant reactivity but only in specific polar environments.
  • The study explains inconsistencies in antioxidant rankings from different radical assays.

Abstract

Antioxidant assays based on 2,2-diphenyl-1-picrylhydrazyl (DPPH•) are widely used, yet their relevance to biologically relevant oxidants is often assumed rather than tested. Here, we evaluate DPPH• as a model for peroxyl-type reactivity using quantum-mechanical kinetics (QM-ORSA, M05-2×/6–31 + G(d,p)/SMD) including diffusion and tunneling corrections, together with explicit speciation. Representative substrates include a bis-allylic lipid model, Alanine, Cysteine, Glutathione, Tryptophan, and Guanosine. Compared to HO₂• (water), DPPH• (ethanol) shows significantly higher barriers and rate constants up to several orders of magnitude lower for hydrogen-transfer processes, indicating poor performance as a model for peroxyl-driven oxidation. While DPPH• can exhibit high apparent reactivity under SPLET conditions, these rates depend strongly on medium and speciation. Overall, DPPH• is informative for SPLET-dominated systems but unsuitable as a general model for biologically relevant oxidation. • DPPH fails to reproduce the reactivity and selectivity of biologically relevant oxidants when hydrogen-transfer mechanisms dominate. • QM-ORSA calculations show than f-HAT rate constants for DPPH reactions are several orders of magnitude lower than for peroxyl radicals. • Under SPLET-controlled conditions, DPPH provides a reasonable approximation of antioxidant reactivity systems in polar media. • The study helps to clarify why different radical assays produce inconsistent antioxidant rankings. • Mechanistic insights highlight the need to match assay radicals to biologically relevant oxidative mechanisms.

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Cite This Study

Juan Raúl Alvarez-Idaboy (2026) studied this question.

synapsesocial.com/papers/69d8940c6c1944d70ce05105https://doi.org/10.1016/j.comptc.2026.115802
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