Protein Lipoxidation: Basic Concepts and Emerging Roles
Abstract
:1. Introduction
- Lipid Oxidation: an overall term encompassing both radical and non-radical (electrophilic) reactions and leading to an increase in the number of oxygens and other heteroatoms (such as nitrogen or chlorine) or a decrease in the hydrogen content of the lipid.
- Lipid Peroxidation: a specific form of radical attack, usually at bis-allylic sites in an unsaturated hydrocarbon chain, that leads first to a carbon-centred radical and then the addition of molecular oxygen to form a peroxyl radical (-O-O•) on that carbon. The peroxyl radical remains reactive and can abstract hydrogens from adjacent molecules, resulting in a chain reaction and propagation of damage.
- Lipoxidation: covalent reaction of reactive and electrophilic lipid products, mostly arising from lipid oxidation, for example, aldehydes or α,β-unsaturated breakdown products such as acrolein and 4-hydrononenal, or cyclopentenone-containing lipids (e.g., 15-deoxy-Δ12,14-prostaglandin J2) with macromolecules. The targets of lipoxidation include proteins, DNA or head groups of phospholipids.
- Advanced Lipoxidation End-products (ALEs): the covalent adducts formed by the process of lipoxidation.
- Protein lipoxidation: the modification of proteins by electrophilic lipids. Although is not an oxidative modification per se, it frequently contributes to the damage to proteins under oxidative stress conditions.
- Protein lipidation: enzymatically-catalysed covalent modification of proteins by lipids, which usually enable the proteins to associate with membranes. Typical examples include N-myristoylation, S-palmitoylation, or S-prenylation, as well as the addition of a glycosylphosphatidylinositol anchor.
- Lipoproteins: particles formed by amphipathic proteins embedded in a phospholipid monolayer and surrounding an inner core of cholesterol, cholesterol esters and triacylglycerols. They function as lipid transporters and are commonly found in plasma.
2. Lipid Oxidation and Protein Lipoxidation
Reactive Lipid Product | Type | Source | Reactions Reported With | Cross-Linking |
---|---|---|---|---|
Malondialdehyde | bis-aldehyde, isomerizes to β-hydroxy-acrolein | Polyunsaturated chains with ≥3 double bonds | Lys (Michael and Schiff’s) His, Arg, Cys (Michael) | √ |
Acrolein | Alkenal (3 carbons) (α-β-unsaturated aldehyde) | Polyunsaturated lipids but also other environmental sources | Lys (Michael and Schiff’s) His, Cys (Michael) | √ |
Crotonaldehyde | Alkenal (4 carbons) (α-β-unsaturated aldehyde) | ω-3 unsaturated lipids (α-linolenic, eicosapentaenoic or docosahexaenoic acid) | Lys (Michael and Schiff’s) His, Cys (Michael) | √ |
4-hydroxy-2- hexenal (HHE) | 4-hydroxy-alkenal (α-β-unsaturated aldehyde) | ω-3 polyunsaturated lipids (α-linolenic, eicosapentaenoic or docosahexaenoic acid) | Lys (Michael and Schiff’s) His, Cys (Michael) | √ |
4-hydroxy-2-nonenal (HNE) | 4-hydroxy-alkenal (α-β-unsaturated aldehyde) | ω-6 polyunsaturated lipids (γ-linolenic or arachidonic acid) | Lys (Michael and Schiff’s) His, Cys (Michael) | √ |
4-oxo-2-nonenal (ONE) | 4-oxo-alkenal (α-β-unsaturated aldehyde) | ω-6 polyunsaturated lipids (γ-linolenic or arachidonic acid) | Lys (Michael and Schiff’s) His, Cys (Michael) | √ |
15-deoxy-Δ12,14-prosta-glandin J2 (15d-PGJ2) | Cyclopentenone prostaglandin (cyPG) | Arachidonic acid | His, Cys (Michael) | √ |
15-keto-prostaglandin E2 | Prostaglandin | Arachidonic acid | Cys (Michael) | X |
Palmitoyl-oxovaleroyl phosphatidylcholine (POVPC) | Esterified alkenal | ω-6 polyunsaturated lipids (γ-linolenic or arachidonic acid) | Lys (Michael and Schiff’s) His, Cys (Michael) | X |
Palmitoyl-oxononanoyl phosphatidylcholine (PONPC) | Esterified alkenal | ω-6 polyunsaturated lipids (γ-linolenic or arachidonic acid) | Lys (Schiff’s base only) | X |
Isolevuglandins (isoLGs) and Isoketals | γ-keto-aldehydes | Arachidonic acid and docosahexenoic acid | Lys (Schiff’s base only) | √ |
Nitro-oleate and nitro-linoleate | Nitro-fatty acids (NO2-FAs) (can be esterified in PLs) | Unsaturated fatty acyl chains (e.g., oleoyl or linoleoyl) | Lys, His, Cys (Michael) (nitro-alkylation) | X |
Chloro-hexadecanal or chloro-octadecanal | Chloro-fatty aldehydes | Plasmenyl phospholipids (palmitate or stearate attached by vinyl ether bond) | Lys (Schiff’s base only) | X |
3. Functional Consequences of Lipoxidation
Category | Protein | Lipid | Residue | Implication | Reference |
---|---|---|---|---|---|
Cytoskeletal protein | Vimentin | 15d-PGJ2, PGA1 HNE | Cys328 | Filament reorganisation | [73,74] [75,76] |
GFAP | 15d-PGJ2, PGA1 | Cys294 | Filament reorganisation | [77] | |
Actin | HNE PGA1 15d-PGJ2 Acrolein | Cys374 Cys374 Cys374, His87, His173 | Electrophilic scavenger, filament disruption | [78] [79] [80] [81] | |
Tubulin | HNE | Cys295 | Filament reorganisation | [75] | |
Metabolic enzymes | AKR1B1 AKR1B AKR1B10 | Acrolein HNE PGA1 | Cys298 Cys298 Cys299 | Activation Inhibition Inhibition | [56] [57] [82] |
α-Enolase | HNE 15d-PGJ2 | ? * | Inhibition | [83] [80] | |
Soluble epoxide hydrolase | 15d-PGJ2 | Cys521 | Inhibition | [84] | |
Pyruvate kinase | 15d-PGJ2 Acrolein, HHE, MDA HNE, ONE | ? Cys152, Cys358, Cys423, Cys474 Cys424, His439 | ? Inhibition Inhibition | [74] [33] [85] | |
Pin1 | HNE | Cys113 | Inhibition | [86] | |
Chaperones | Hsp 90 | 15d-PGJ2 PGA1 HNE, ONE | ? Cys572 | Inhibition | [74] [73,87] [88] |
Hsp 70 | cyPG HNE | ? Cys267 | Inhibition | [84,87] [89] | |
Transcription factor | PPARγ | NO2-FAs 15d-PGJ2 | Cys285 Cys285 | Activation | [90] [91,92] |
P53 | 15d-PGJ2 | Cys277 | Inhibition | [93] | |
NF-κB | 15d-PGJ2, PGA1 | Cys38 (p65) and Cys62 (p50) | Inhibition | [94,95] | |
STAT3 | 15-keto-PGE2 | Cys259 | Inhibition | [96] | |
AP-1 | 15d-PGJ2 | Cys269 (c-Jun) | Inhibition | [97] | |
Membrane receptor | Estrogen receptor α | 15d-PGJ2 | Cys227, Cys240 | Inhibition | [98] |
EGFR | HNE | ? | Activation (low levels); inhibition (high levels) | [99] | |
TRPA | 15d-PGJ2 | Cys421, Cys621 | Activation | [100] | |
Regulatory proteins | Keap1 | NO2-FAs HNE 15d-PGJ2 | Cys151, 273, 288 Cys 273, Cys288 | Inhibition | [101,102] [103] [101,102,103,104] |
IKK | HNE cyPG | ? Cys179 | Inhibition | [105] [106] | |
H-Ras | 15d-PGJ2, PGA1 | Cys118, Cys181, Cys184 | Activation | [107,108] | |
Signalling protein | PTEN | Acrolein, HNE, PGA2, 15d-PGJ2 | Cys71, Lys327 | Inhibition | [58,109] |
Akt | HNE | His196, His267, Cys311 | Inhibition | [110] | |
PP2A | HNE | ? | Inhibition | [60] | |
Epigenetic regulation | Sirt2 | Acrolein, HNE | Cys482 | Inhibition | [111] |
HDACs | Acrolein HNE, 15d-PGJ2 | Cys274 Cys 274 | Inhibition Inhibition | [112] [61] | |
Mitochondrial proteins | DRP1 | 15d-PGJ2 | At least Cys644 | Fission inhibition | [113] |
Cytochrome c | HNE | His196, His267, Lys87 | In vitro modification | [114] | |
Aconitase | HNE | Cys99, Cys358, Cys421, Cys424, Cys565 | Inhibition | [115] | |
Others | Albumin | Δ12-PGJ2 HNE, acrolein | His146 Cys34 | ? | [116] [117] |
4. Selectivity and Protein Targets of Lipoxidation
5. The Emerging Role of Lipoxidation in Cellular Regulation
6. The Dependence of Lipoxidation on the Cellular Environment
7. Interplay among Post-Translational Modifications
8. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
ACR | Alkenal/one reductase |
ADH | Alcohol dehydrogenase |
AER | Alkenal reductase |
AKR | Aldo-keto reductase |
AKR1B1 | Aldo-ketoreductase B1 |
ALDH | Aldehyde dehydrogenase |
ALDH2 | Aldehyde dehydrogenase 2 |
ALEs | Advanced lipoxidation end products |
ALH | Alkenal hydrogenase |
ALR | Aldose/aldehyde reductase |
CaMKII | Ca2+/calmodulin-dependent protein kinase II |
COX | Cyclooxygenases |
CRM1 | Chromosomal maintenance 1 |
cyPG | Cyclopentenone prostaglandin(s) |
CYP450 | Cytochrome P450 |
FDP | Nε-(3-formyl-3,4-dehydropiperidino) |
GAPDH | Glyceraldehyde-3-phosphate dehydrogenase |
GFAP | Glial fibrillary acidic protein |
GO | Gene ontology |
GSH | Reduced glutathione |
GST | Glutathione S-transferase |
HDACs | Histone deacetylases |
HNE | 4-hydroxynonenal |
Hsp70 | Heat shock protein 70 |
Hsp90 | Heat shock protein 90 |
iNOS | Nitric oxide synthase |
LOX | Lipoxygenases |
MDA | Malondialdehyde |
NF-κB | Nuclear factor-κB |
NO2-FA | Nitrate fatty acid |
NO2-POPC | Nitrated phospholipid 1-palmitoyl-2-oleyl-phosphatidylcholine |
Nrf2 | Nuclear factor erythroid 2–related factor 2 |
ONE | 4-oxononenal |
oxo-ODE | Oxooctadecadienoic acid |
PG | Prostaglandin(s) |
PGA1 | Prostaglandin A1 |
PGA2 | Prostaglandin A2 |
PGD | Prostaglandin D |
PGE2 | Prostaglandin E2 |
PI3K | Phosphoinositide 3-kinase |
PKA | Protein kinase A |
PKC | Protein kinase C |
PKG | Protein kinase G |
PP1 | Protein phosphatase 1 |
PP2A | Protein phosphatase 2 |
PP2B | Protein phosphatase 2B |
PPARγ | Peroxisome proliferator-activated receptor γ |
Prx | Peroxiredoxin |
PTEN | Phosphatidylinositol 3,4,5-trisphosphate 3-phosphatase |
PTM | Post-translational modification |
PUFAs | Polyunsaturated fatty acids |
RAGE | Receptor of advanced glycation end products |
RNS | Reactive nitrogen species |
ROS | Reactive oxygen species |
sEH | soluble epoxide hydrolase |
SOD | Superoxide dismutase |
STAT3 | Signal transducer and activator of transcription 3 |
TCA | Tricarboxylic acid cycle |
Trx | Thioredoxins |
UPR | Unfolded protein response |
15d-PGJ2 | 15-deoxy-Δ12,14-prostaglandin J2 |
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Protein | Targeted Residue (Position) | Electrophile | Type of Adduction | Reference |
---|---|---|---|---|
Pyruvate kinase | Cys 49, 152, 326, 358, 423, 474 | Acrolein, HHE and MDA | Michael, Schiff’s or FDP adduction | [33] |
Lys 66, 115, 135, 166, 188, 207, 224, 247, 270, 305, 367, 393, 475 | ||||
His 379, 391, 464 | ||||
Cyclin-dependent Kinase 2 | Cys 177 | HNE | Michael | [85] |
Lys 129 | ||||
His 60, 71, 161, 268, 283, 295 | ||||
Serum Albumin | Cys 53, 62, 75, 101, 124, 245, 246, 253, 269, 270, 277, 514 | HNE and MDA | Michael and Schiff’s (N-propenal-lysine adduct with MDA) | [137,138] |
Lys 73, 106, 136, 174, 233, 240, 281, 378, 525, 541, 545 | ||||
His 67, 105, 128, 242, 247, 510 | ||||
Apolipoprotein E | Lys 64, 67, 68, 135, 138, 149, 155, 254 | Acrolein | Michael and Schiff’s | [139] |
Creatine kinase | Cys 141, 145, 254, 283 | HNE | Michael and Schiff’s | [140] |
Lys 86, 101 | ||||
His 7, 26, 29, 66, 97, 191, 219, 234, 276, 296, 305 |
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Viedma-Poyatos, Á.; González-Jiménez, P.; Langlois, O.; Company-Marín, I.; Spickett, C.M.; Pérez-Sala, D. Protein Lipoxidation: Basic Concepts and Emerging Roles. Antioxidants 2021, 10, 295. https://doi.org/10.3390/antiox10020295
Viedma-Poyatos Á, González-Jiménez P, Langlois O, Company-Marín I, Spickett CM, Pérez-Sala D. Protein Lipoxidation: Basic Concepts and Emerging Roles. Antioxidants. 2021; 10(2):295. https://doi.org/10.3390/antiox10020295
Chicago/Turabian StyleViedma-Poyatos, Álvaro, Patricia González-Jiménez, Ophélie Langlois, Idoia Company-Marín, Corinne M. Spickett, and Dolores Pérez-Sala. 2021. "Protein Lipoxidation: Basic Concepts and Emerging Roles" Antioxidants 10, no. 2: 295. https://doi.org/10.3390/antiox10020295
APA StyleViedma-Poyatos, Á., González-Jiménez, P., Langlois, O., Company-Marín, I., Spickett, C. M., & Pérez-Sala, D. (2021). Protein Lipoxidation: Basic Concepts and Emerging Roles. Antioxidants, 10(2), 295. https://doi.org/10.3390/antiox10020295