| Literature DB >> 32545714 |
Abstract
There is no vaccine or specific antiviral treatment for COVID-19, which is causing a global pandemic. OneEntities:
Keywords: COVID-19; HIV; antitumor agents; antiviral agents; phagocytosis; reactive halogen species; reactive nitrogen species; reactive oxygen species; respiratory burst; signaling
Mesh:
Substances:
Year: 2020 PMID: 32545714 PMCID: PMC7349336 DOI: 10.3390/cells9061461
Source DB: PubMed Journal: Cells ISSN: 2073-4409 Impact factor: 6.600
Figure 1Respiratory burst in the immune defense against pathogens in phagocytosis. Reactive oxygen/halogen/nitrogen species (OH•; HOX with X = Cl, Br or I; NO2) produced within the phagosome cause damage to the DNA/RNA/lipids/proteins of phagocytosed pathogens. The formyl peptide receptors (FPRs) stimulate the activation of the phagocytic NADPH oxidase (NOX2) to form O2•−, which is rapidly converted to H2O2 by the action of cytoplasmic or mitochondrial SOD enzymes. Additionally, H2O2 can also be produced extracellularly by the IgG-catalyzed oxidation of water or by the interactions of other receptors such as tumor necrosis factor (TNF) receptors, Toll-like receptors (TLRs) and Nod-like receptors (NLRs) with pathogen-associated ligands. The ROS are also produced by a variety of cell types (nonphagocytic cells) and tissues, catalyzed by six other members of the NOX family including nonphagocytic enzymes NOX1, NOX3, NOX4, NOX5, and the dual oxidases Duox1 and Duox2. The activation of these NOX is stimulated by growth factors, cytokines, and integrins. NOX5 and Duox1 and Duox2 are activated by Ca2+ through a cytoplasmic calcium-binding domain. H2O2 and NO• can diffuse freely across membranes, as indicated by the arrows.
Figure 2Proposed halogen reaction cycles involved in the immune defense against pathogens and in the inflammatory process. The amplified reactions of reactive halogen species (RHS), including HOX, OX−, X2, X• and OX• (X = Cl, Br or I), produced by dissociative electron transfer (DET) within the phagosome cause major damage (represented by RX/RNX) to the DNA/RNA/lipids/proteins of phagocytosed pathogens. The immune defence system consists mainly of three components: the H2O2 signaling pathway as the trigger, the RHS reaction cycles as the amplifier, and the NO• signaling pathway as the terminator. H2O2 from other intracellular organelles such as mitochondria and peroxisomes can also diffuse across membranes and promote the anti-pathogen activity.
Approximate rate constants (M–1 s–1) for aqueous-phase reactions of some species involved in phagocytosis at pH = 7.0, 288 K.
| Reaction | Products | Refs | |
|---|---|---|---|
| X− + H2O2 + MPO + H+ | HOX/OX−/X2 + H2O | 2.5 × 104, 1.1 × 106, 7.2 × 106 (X = Cl, Br, I) | [ |
| X− + H2O2 + EPO + H+ | 3.1 × 103, 1.9 × 107, 9.3 × 107 (X = Cl, Br, I) | ||
| Cl− + OH• + H+ | Cl• + H2O | 1.5 × 1010 | [ |
| R2NH + HOX/XO− | R2NX | 107–108 | [ |
| Cl2+ RNH2 | RNHX + Cl− + H+ | (>)109 | [ |
| NH2Cl + eaq− | Cl− + NH2 | 2.2 × 1010 | [ |
| R2NCl + eaq− | Cl− + R2N• | 1.5–1.9 × 1010 | [ |
| RNHCl + eaq− | Cl− + RNH• | 6.1–9.3 × 109 | [ |
| RR’NBr + eaq− | Br• + RR’N− | 2.9 × 1010 (1.1 × 1011) | [ |
| RR’NBr+ O2− | Br• + RR’N− | 2–9 × 108 | [ |
| NO3− + epre− | NO32− | 1.2 × 1013 | [ |
| CO3− + O2•− | CO32−+ O2 | 4 × 108 | [ |
| NO2 + OH• | NO3− + H+ | 1.3 × 109 | [ |
Figure 3Schematic representations of the negative ion chemistry in the undisturbed stratosphere and troposphere of the Earth [61,62] and in the phagolysosome in the innate immune defense system in humans.
Figure 4Schematic diagram for the dissociative electron transfer (DET) reaction [18,19,49,50] of a halogenated aromatic ring molecule AX with a weakly-bound electron (ewb−) in phagosomes, where ewb− is readily donated from a variety of enzymes or antioxidants or O2•−. For HCQ and chloroquine, A is a quine ring system and X = Cl, whereas A is an aromatic ring coupled to two NH2 groups at ortho positions [A = B(NH2)2] and X = Cln or Brn or In with n = 1,2 for FMD compounds) [69,70].