Target intelligence / Profile preview

Pyrroloquinoline quinone-dependent dehydrogenase (PQQ-DH) (PQQ-DH)

Target
PQQ-DH
Molecular classification
Enzyme, Oxidoreductase, Quinoprotein
01

Overview

Pyrroloquinoline quinone-dependent dehydrogenases (PQQ-DHs) are a specialized class of oxidoreductases, also known as quinoproteins, that utilize the redox-active cofactor pyrroloquinoline quinone (PQQ) to catalyze the oxidation of various substrates including alcohols, sugars, and amines (Matsushita et al., 2002). These enzymes are primarily located in the periplasmic space of Gram-negative bacteria, where they facilitate the initial steps of substrate oxidation and channel electrons directly into the respiratory chain, often bypassing the need for NAD(P)+ (Klinman & Bonnot, 2014). A prominent member of this family is PQQ-dependent glucose dehydrogenase (GDH-PQQ), which has been extensively utilized in the development of blood glucose monitoring systems due to its high catalytic efficiency and lack of oxygen interference (FDA, 2009). While PQQ-dependent enzymes are not natively expressed in humans, PQQ itself is found in human tissues and breast milk, leading to its investigation as a potential bioactive compound with neuroprotective and antioxidant properties (UniProt). From a therapeutic perspective, these enzymes represent potential targets for the development of novel antibacterial agents designed to disrupt bacterial energy metabolism. However, a significant clinical challenge associated with GDH-PQQ-based diagnostics is the lack of substrate specificity, which historically led to life-threatening errors in glucose readings for patients receiving treatments containing maltose or icodextrin (FDA, 2009).

Other names
Quinoprotein dehydrogenasePQQ-containing dehydrogenaseMethoxatin-dependent dehydrogenaseGlucose dehydrogenase (PQQ-dependent)
02

Mechanism of action

These enzymes catalyze the oxidation of substrates (such as glucose or alcohols) by transferring two electrons and two protons to the PQQ prosthetic group to form PQQH2; the reduced cofactor is then re-oxidized by transferring electrons to an external acceptor, typically a cytochrome or ubiquinone, within the bacterial electron transport chain (Matsushita et al., 2002).

03

Biological functions

Alcohol metabolismCarbohydrate metabolismElectron transport chainBacterial growth
04

Disease associations

Bacterial infectionDiabetes mellitusMitochondrial dysfunction
05

Safety considerations

Substrate cross-reactivity (e.g., maltose interference in glucose sensors leading to false high readings)Potential for off-target effects on commensal bacterial floraChallenges in achieving selectivity over human mitochondrial processes
06

Interacting drugs

Pyrroloquinoline quinone

2 more in the full profile.

07

Biomarkers

Blood glucose levelPQQ plasma concentration

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