| Literature DB >> 32377304 |
Antonio Díaz-Quintana1, Gonzalo Pérez-Mejías1, Alejandra Guerra-Castellano1, Miguel A De la Rosa1, Irene Díaz-Moreno1.
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Year: 2020 PMID: 32377304 PMCID: PMC7193304 DOI: 10.1155/2020/6813405
Source DB: PubMed Journal: Oxid Med Cell Longev ISSN: 1942-0994 Impact factor: 6.543
Figure 1Role of cardiolipin in cell homeostasis and apoptosis. (a) Under homeostatic conditions, cardiolipin (CL) facilitates the assembly of respiratory supercomplexes (brown arrows) and maintains a population of Cc bound to the inner mitochondrial membrane (IMM). The efficiency of electron transfer is high (thick red arrow). (b) Under apoptotic stimuli, procaspase-8 is recruited to CL-enriched microdomains in the outer mitochondrial membrane (OMM). The activation of caspase-8 involves cleavage of the BID proapoptotic factor into two domains, namely, the N-terminal (n-Bid) and C-terminal fragments (t-Bid). Dissociation of these two fragments is required for the interaction of t-Bid with CL. Then, t-Bid promotes the formation of mitochondrial pores by assembling BAX–BAK oligomers. At the same time, ROS production increases and Cc acts as a ROS scavenger and pseudoperoxidase. Cc peroxidase activity results in oxidation of CL acyl chains, to which the hemeprotein is anchored, freeing Cc from the IMM, facilitating its subsequent release into the cytosol upon OMM permeabilization. The efficiency of electron transfer is low (dashed red arrow). In addition, CL can be degraded in part, losing one of its acyl chains, giving rise to monolysocardiolipin (MLCL).
Figure 2Cardiolipin-binding sites in cytochrome c. (a) Ribbon representation of oxidized human Cc (PDB 2N9J) [92]. CL-binding sites are highlighted in orange (A-site or distal productive), green (L-site or proximal productive), purple (C-site), and cyan (N-site or proximal unproductive). The heme axial ligands H18 and M80 are highlighted as well. (b) Side chain representation of the positively charged Cc residues involved in the formation of the Cc-CL complex. Residues marked with an asterisk are reported to constitute the L- and N-sites. (c) Side chain representation of hydrophobic Cc residues, which ensure the tight interaction between Cc and CL acyl chains.
Figure 3Proposed model for the interaction of cytochrome c with cardiolipin at pH values above 7. (a) Upper: structure of free Cc showing the foldon units (in red scale, PDB 1AKK [100]). Lower: the Cc-CL interaction promotes unfolding of the metalloprotein and dissociation of the axial ligand M80, thus increasing accessibility to the heme crevice. (b) Upper: structural comparison of free (in red scale, PDB 1AKK [100]) and CL-bound Cc (in blue scale, PDB 2N3B [115]). Lower: interaction of Cc with CL yields a slight difference in dynamics at the level of the Ω-loops and helix-I. The different foldon units of Cc are colored as a gradient from the most stable (dark colors) to the weakest region (light colors). The heme group is in green, and the iron atom in orange.
Figure 4Peroxidase and oxygenase activities of cytochrome c. Reaction model merging the proposal from Kagan and collaborators [149] and the adapted catalytic model of cyclooxygenases as reviewed by Marnett [150]. Blue arrows correspond to the canonical peroxidase cycle [146]. Heterolytic cleavage of a peroxide substrate—preferentially for Cc, a lipid hydroperoxide—yields the corresponding hydroxyl derivative (or water when the substrate is H2O2) and Compound I, which is reduced back to the resting ferric state in two sequential single-electron transfers from A substrate. Red and green arrows indicate the reactions purportedly leading to oxygenase activity according to the literature. Spin trap experiments have detected Y48 radicals [151]. Dimers of tyrosines 67 and 74 and oxidation products of Y48 are detectable even in the absence of H2O2 [152]. The tyrosyl radical sequesters a hydrogen atom from an unsaturated fatty acid. Finally, O2 reacts with the alkyl radical to form an alkyl peroxide radical as an initial product undergoing further reactions.
Figure 5Functional implications of PTM and mutations of cytochrome c. Left: chemical modifications of cytochrome c residues. Right: ribbon representation of oxidized human Cc (PDB 2N9J) [92]. Residues are colored by type of PTM: pink for nitration, purple for sulfoxidation, orange for phosphorylation, brown for carbonylation, cyan for N-homocysteinylation, and blue for point mutations. Y48 (asterisk) can be either phosphorylated, nitrated, or mutated for histidine, while Y97 (asterisk) can be phosphorylated or nitrated.
Effect of PTM and point mutations on cytochrome c peroxidase activity.
| C | Effect on peroxidase activity | References | |
|---|---|---|---|
| Sulfoxidationa | |||
| M80 | ↑ | [ | |
| Nitrationb | |||
| Y46 | ↑ | [ | |
| Y48 | ↑ | [ | |
| Y67 | ↑ | [ | |
| Y74 | ↑ | [ | |
| Y97 | ↑ | [ | |
| Carbonylationc | |||
| K53 | ↑ | [ | |
| K55 | ↑ | [ | |
| K72 | ↑ | [ | |
| K73 | ↑ | [ | |
| Phosphorylation | |||
| T28 | T28D | ↑ | [ |
| T28 | T28E | ↓ | [ |
| S47 | S47D | ≈ | [ |
| Y48 | Y48E | ↑/↓ | [ |
| Y48pCMF | ↑ | [ | |
| Y97 | Y97E | ≈ | [ |
| Y97 | ≈ | [ | |
| N-Homocysteinylationd | |||
| K8/K13 | ↑ | [ | |
| K86/87 | ↑ | [ | |
| K99 | ↑ | [ | |
| K100 | ↑ | [ | |
| Point mutation | |||
| G41S | ↑ | [ | |
| Y48H | ↑ | [ | |
aDetermined under oxidative stress. bDetermined after peroxynitrite treatment. cDetermined after chloramine-T treatment. dDetermined after homocysteine thiolactone treatment.