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Human NAD(P)H:quinone oxidoreductase type I (hNQO1) activation of quinone propionic acid trigger groups
Maria F Mendoza1, Nicole M Hollabaugh, Suraj U Hettiarachchi
1Department of Chemistry, Louisiana State University, 232 Choppin Hall, Baton Rouge, Louisiana 70803-1804, USA.
Abstract:
NAD(P)H:quinone oxidoreductase type I (NQO1) is a target enzyme for triggered delivery of drugs at inflamed tissue and tumor sites, particularly those that challenge traditional therapies. Prodrugs, macromolecules, and molecular assemblies possessing trigger groups that can be cleaved by environmental stimuli are vehicles with the potential to yield active drug only at prescribed sites. Furthermore, quinone propionic acids (QPAs) covalently attached to prodrugs or liposome surfaces can be removed by application of a reductive trigger stimulus, such as that from NQO1; their rates of reductive activation should be tunable via QPA structure. We explored in detail the recombinant human NAD(P)H:quinone oxidoreductase type I (rhNQO1)-catalyzed NADH reduction of a family of substituted QPAs and obtained high precision kinetic parameters. It is found that small changes in QPA structure-in particular, single atom and function group substitutions on the quinone ring at R(1)-lead to significant impacts on the Michaelis constant (K(m)), maximum velocity (V(max)), catalytic constant (k(cat)), and catalytic efficiency (k(cat)/K(m)). Molecular docking simulations demonstrate that alterations in QPA structure result in large changes in QPA alignment and placement with respect to the flavin isoalloxazine ring in the active site of rhNQO1; a qualitative relationship exists between the kinetic parameters and the depth of QPA penetration into the rhNQO1 active site. From a quantitative perspective, a very good correlation is observed between log(k(cat)/K(m)) and the molecular-docking-derived distance between the flavin hydride donor site and quinone hydride acceptor site in the QPAs, an observation that is in agreement with developing theories. The comprehensive kinetic and molecular modeling knowledge obtained for the interaction of recombinant human NQO1 with the quinone propionic acid analogues provides insight into the design and implementation of the QPA trigger groups for drug delivery applications.
Insights
NAD(P)H:quinone oxidoreductase type I (NQO1) enzyme activity is crucial for targeted drug delivery. Modifying quinone propionic acid (QPA) structures fine-tunes drug release rates, enhancing therapeutic efficacy.
Area of Science:
- Biochemistry
- Pharmacology
- Drug Delivery Systems
Background:
- NAD(P)H:quinone oxidoreductase type I (NQO1) is a key enzyme for targeted drug delivery at inflamed or tumor tissues.
- Quinone propionic acids (QPAs) are utilized as trigger groups for prodrugs and liposomes, enabling site-specific drug release via NQO1-mediated reduction.
- Tuning QPA structure is essential for controlling the rate of reductive activation and optimizing drug delivery.
Purpose of the Study:
- To investigate the kinetic parameters of recombinant human NQO1 (rhNQO1)-catalyzed NADH reduction of various substituted QPAs.
- To elucidate the relationship between QPA structural modifications and their impact on enzyme kinetics.
- To establish a correlation between molecular docking simulations and kinetic data for rhNQO1-QPA interactions.
Main Methods:
- Detailed kinetic analysis of rhNQO1-catalyzed NADH reduction of a family of substituted QPAs.
- Determination of kinetic parameters, including K(m), V(max), k(cat), and k(cat)/K(m).
- Molecular docking simulations to visualize QPA binding within the rhNQO1 active site and assess structural impacts.
Main Results:
- Small structural changes in QPAs, particularly at the R(1) position, significantly altered kinetic parameters (K(m), V(max), k(cat), k(cat)/K(m)).
- Molecular docking revealed that QPA structural alterations led to substantial changes in active site binding and penetration depth.
- A strong quantitative correlation was observed between catalytic efficiency (log(k(cat)/K(m))) and the distance between hydride donor and acceptor sites.
Conclusions:
- The study provides comprehensive kinetic and molecular modeling insights into rhNQO1-QPA interactions.
- Understanding these interactions is vital for designing effective QPA trigger groups for targeted drug delivery.
- The findings facilitate the rational design of prodrugs and delivery systems activated by NQO1.
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