Anthocyanins as Key Phytochemicals Acting for the Prevention of Metabolic Diseases: An Overview
Abstract
:1. Introduction
2. ANs Chemistry, Biosynthesis and Stability
2.1. Chemistry
2.2. Biosynthesis, Genetic Regulation and Stability
2.2.1. Influence of pH
2.2.2. Temperature and Oxygen Influence
2.2.3. Light
2.2.4. Copigmentation/Glycosylation and Acylation
2.3. Effects of Extraction Methods on ANs
3. ANs Bioavailability
3.1. Oral Cavity Absorption
3.2. Gastric and Intestinal Absorption
3.2.1. Stomach
3.2.2. Intestine
4. ANs and Preventive Action on Diseases
4.1. In Vitro Studies
4.2. In Vivo/Clinical Studies
Neuroprotection Sustained by ANs
4.3. Medicinal Products Developed with ANs
5. Conclusions and Future Outlook
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
8-OhdG | 8-hydroxydeoxyguanosine |
Aβ | amyloid-β |
ABC | ATP-binding cassette |
AMPK | adenosine monophosphate-activated protein kinase |
ANs | anthocyanins |
ANS | anthocyanidin synthase |
AOX1 | aldehyde oxidase 1 |
ASE | accelerated solvent extraction |
AVIs | anthocyanins vacuolar inclusions |
BACE-1 | beta site amyloid precursor protein cleaving enzyme 1 |
BBB | Blood–brain barrier |
Bcl-2 | B-cell lymphoma 2 |
BTL-like | bilitranslocase-like transporters |
BW | body weight |
CAT | catalase |
CCL-2 | C-C motif chemokine ligand 2 |
CCR2 | C-C motif receptor 2 |
CDH4 | cadherin 4 |
CHI | chalcone isomerase |
CHS | chalcone synthase |
CLDN14 | claudin 14 |
COMT | catechol-O-methyltransferase |
COX-2 | cyclooxygenase-2 |
CPR | C-reactive protein |
CRB3 | Crumbs cell polarity complex component 3 |
Cy | cyanidin |
CYP2E1 | cytochrome P450 2E1 |
DFR | dihydroflavonol 4-reductase |
D-HAEC | diabetic human aortic endothelial cells |
Dp | delphinidin |
EAE | enzyme-assisted extraction |
eIF2α | eukaryotic initiation factor 2 α |
ER | endoplasmic reticulum |
F3H | flavanone 3-hydroxylase |
F3′H | flavonoid 3′-hydroxylase |
F3′5′H | flavonoid 3′,5′-hydroxylase |
FAK | focal adhesion kinase |
FMD | flow-mediated dilation |
GCLM | glutamate-cysteine ligase modifier subunit |
GLP-1 | glucagon-like peptide-1 |
GLUT2 | glucose transporter 2 |
GSH | glutathione |
GSH-PX/GPX | glutathione peroxidase |
GSTs | glutathione S-transferases |
H2O2 | hydrogen peroxide |
HDLc | high-density lipoprotein cholesterol |
HHPE | high hydrostatic pressure extraction |
HIF-1a | hypoxia-inducible factor 1-alpha |
HO• | hydroxyl radical |
HO-1 | heme oxygenase 1 |
hsCRP | high-sensitivity C-reactive protein |
HUVECs | human umbilical vein endothelial cells |
ICAM-1 | intercellular adhesion molecule-1 |
IFN-γ | Interferon-gamma |
IL | interleukin |
iNOS | inducible nitric oxide synthase |
JNK | c-Jun N-terminal kinase |
LDH | lactate dehydrogenase |
LED | light-emitting diodes |
MAE | Microwave-assisted extraction |
MAP | mitogen-activated protein |
MATE | multidrug and toxic compound extrusion |
MDA | melanoma differentiation-associated protein |
MEF | moderate electric field |
MMD | monocyte to macrophage differentiation-associated |
MMP-1, MMP-2, MMP-9 | matrix metallopeptidase 1, 2, 9 |
Mv | malvidin |
MT | O-methyl transferase |
NF-ƙB | nuclear factor kappa-B |
Nrf2 | nuclear factor erythroid 2-related factor 2 |
O2− | superoxide anion |
oxLDL | oxidized low-density lipoprotein |
PD-1, PD-L1 | programmed death-1, -ligand 1 |
PEF | pulsed electric field-assisted extraction |
Pg | pelargonidin |
PGE2 | prostaglandin E2 |
PI3K | phosphoinositide 3-kinase |
PLE | pressurized liquid extraction |
Pn | peonidin |
Pt | petunidin |
p-tau | hyperphosphorylated tau |
RAGE | receptor for advanced glycation end products |
RBP4 | retinol binding protein 4 |
ROS | reactive oxygen species |
RPE | retinal pigment epithelium |
SFE | supercritical fluid extraction |
SGLT1 | sodium dependent glucose co-transporter 1 |
SNARE | soluble N-ethylmaleimide-sensitive factor attachment protein receptors |
SOD | superoxide dismutase |
TBARS | thiobarbituric acid reactive substances |
TG | triglycerides |
TNF | tumor necrosis factor |
TXNIP | thioredoxin-interacting protein |
UAE | Ultrasound-assisted extraction |
UFGT | flavonoid 3-O-glucosyltransferase |
UMAE | ultrasound/microwave-assisted extraction |
uPA | urokinase plasminogen activator |
sVCAM-1 | soluble vascular cell adhesion molecule-1 |
VEGF | vascular endothelial growth factor |
XBP-1 | X-box binding protein 1 |
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Cell Line | Source of ANs | Major ANs/ Metabolites | Effects | References | |
---|---|---|---|---|---|
Diabetes and obesity | RAW264.7 (murine macrophages); 3T3-L1 (human preadipocyte) | Blackberry/ Blueberry beverages | Cy-3-glucoside | ↓NF-ƙB ↓nitric oxide ↓TNF-α ↓isoproterenol-induced lipolysis ↓fat accumulation | [143] |
HepG2 (human hepatocellular carcinoma) | Blueberry extract Mv Mv-3-glucoside Mv-3-galactoside | Mv Mv-3-glucoside Mv-3-galactoside | ↓ROS ↓lipogenesis/glycogenolysis enzymes ↑lipolysis via AMPK pathway | [144] | |
D-HAEC (diabetic human aortic endothelial cells) | Bilberry/blueberry ANs capsules | Cy, Dp, Pt, Pn, Mv | ↓NF-ƙB pathway ↓inflammatory and oxidative process | [145] | |
Cardiovascular diseases | HUVECs (human umbilical vein endothelial cells) | Standard solutions | Cy, Pn, Dp, 4-hydroxy- benzaldehyde | ↓inflammatory and oxidative process ↓monocytes adhesion to HUVECs | [146] |
Red Chinese cabbage | Cy | ↓TNF-α-induced NF-κB activity | [147] | ||
Blueberry juice | Protocatechuic acid Vanillic acid trans-ferulic acid p-coumaric acid | ↑antioxidant response of Nrf2-regulated heme oxygenase 1 (HO-1) and glutamate-cysteine ligase modifier subunit (GCLM) | [148] | ||
Standard solutions | Cy-3-glucoside Pn-3-glucoside | ↓levels of VCAM-1, ICAM-1, MMP-1, MMP-9 ↓activity of caspase-3, JNK, p38 | [149] | ||
J774A.1 (murine monocyte macrophage) | Hibiscus sabdariffa L. | Dp, Cy | ↓oxLDL ↓CD36 expression | [150] | |
Cancer | SMMC-7721 (human hepatoma cells) | Lonicera caerulea ‘Beilei’ fruit | Cy, Pn | ↓cell proliferation ↑apoptosis | [151] |
HepG2 (human hepatocyte carcinoma) | Grape seeds | Pro-ANs | ✓activation of caspase-3 ✓G2/M, G1/M cell cycle arrest | [152] | |
DLD-1 SW480 SW620 Human colon cancer | Standard solution | Dp | ↓tumor cells adhesion, migration, invasion, epithelial-to-mesenchymal transition ↓integrin and FAK signaling pathways ↑miR-204-3p upregulation | [153] | |
HCT-29 HCT-116 Human colorectal cancer | Standard solutions | Dp-3-glucoside Cy-3-glucoside | ↓PD-1, PD-L1 | [154] | |
Colon cancer stem cells | Purple fleshed potato extract | Pt, Mv, Cy, Pn | ↓cell proliferation ↑cell apoptosis | [155] | |
B16-F10 (murine melanoma cells) | Strawberry fruits | Cy, Pg, p-cumaroyl monohexose | ↑cell differentiation ↓cell proliferation | [156] | |
B16-F1 (murine melanoma cells) | Mulberry fruits | Cy, Pg | ↓PI3K expression ↓Ras ↓NF-kβ | [157] | |
MCF-7 HER2 MDA-MB-231 MDA-MB-453 Breast cancer cells | Black rice | Cy-3-glucoside Pn-3-glucoside | ↓cell viability ↑caspase-3 activation ↑cytochrome C release | [158] | |
MCF-7 (human breast cancer cells) | Red sorghum bran | - | ↑apoptosis ↓tumor proliferation | [159] | |
HeLa (human cervical tumor Cells) | Chokeberry | Cy-3-galactoside | ✓antioxidant activity ↓cell proliferation | [160] | |
MDA-MB-231 and MCF7 (human breast cancer cells) | Blueberry | Dp-3-glucoside Cy-3-glucoside Mv-3-glucoside | ↓cell invasion capacity ✓activation of caspase-3 in MCF7 cells | [161] | |
N202/1A, N202/1E (murine melanoma) | Strawberry | Pg-3-glucose | ↓cell viability ✓ROS induction ✓mitochondrial damage | [162] | |
B16-F10 (murine melanoma cells) | Elderberries | Cy-3-sambubioside-5-glucoside | ↓cell proliferation ↑LDH activity | [163] | |
Caco-2, HT-29 (colon cancer); MDA-MB-231 (breast cancer) | Table grapes with entacapone | Cy-3-glucoside Dp-3-glucose | ↓cell proliferation ↑extracellular ROS levels | [164] | |
MDA-MB-453 (breast cancer) | Black rice | Cy-3-glucoside Pn-3-glucoside | ↓cell migration, adhesion, motility, invasion ↓urokinase-type plasminogen activator activity ↓transfer promoting factor activity | [165] | |
MCF-7 (breast); SF-268 (CNS); NCI-H460 (lung); HCT-116 (colon); AGS (gastric) human tumor cells | Black/Red raspberry, Blackberry | Cy-3-glucoside Pg-3-glucoside Cy-3-glucosylrutinoside | ↓cell proliferation ↓lipid peroxidation | [166] | |
B16-F10 (murine melanoma) | Blueberry | Mv-3-galactoside Pt-3-galactoside Dp-3-galactoside | ✓antioxidant activity ↓cells proliferation ✓apoptosis ↑LDH activity | [167] | |
Neurological disorders | SK-N-SH (human neuroblastoma) treated with Aβ25-35 (neurotoxic) | Standard solution | Cy-3-glucoside | ↓ROS accumulation ↓ER stress response proteins ↓eIF2α, XBP-1, caspase-12 | [168] |
SH-SY5Y (human neuroblastoma) treated with hydrogen peroxide (neurotoxic) | Blueberry/cranberry juices | Cy, Dp, Pn, Pt | ↑SOD and CAT activity ↓ROS and TBARS accumulation | [169] |
Medical Condition | Source of ANs | Target Group | Treatment Details | Dose of Treatment | Effect | Reference | |
---|---|---|---|---|---|---|---|
Diabetes and Obesity | Metabolic syndrome | Fresh bilberries | 15 volunteers | 8 weeks | 400 g | ↓IL-6, IL-12 ↓C-reactive protein ↓MMD and CCR2 expression | [186] |
Overweight/obesity | Black soybean extract | 63 obese volunteers | 8 weeks | 2.5 g/day (ANs conc: 12.58 mg/g) | ↓LDLc ↓TG ↓Non-HDLc | [187] | |
Weight control over time | Blueberries Strawberries Apples Pears | 124,086 volunteers | 24 years | - | ✓0.07–0.10 kg less weight gained every 4 years ✓weight control | [188] | |
Overweight/obesity | Commercial red orange juice | 11 women | 12 weeks | 500 mL/day | ↓LDL | [189] | |
Obesity | Raspberry extract | Male C57BL/6 mice | 4 weeks | 200 mg/kg food | ↓TNFα, IL-6, NF-κB gene expression ↓63.7% less body weight ↑SOD, GSH-PX activity | [190] | |
Obesity | Black rice Clack soybean Purple corn | C57BL/6 mice | 12 weeks | 200 mg/kg food | ↓TNFα, IL-6, iNOS, NF-κB gene expression ↓lipid peroxidation ↑peroxide dismutase | [191] | |
Obesity | Cherry Mulberry | C57BL/6 mice | 8 weeks | 200 mg/kg food | ↓29.6 and 32.7% less body weight ↓TNFα, IL-6, iNOS, NF-κB gene ↑SOD, GPX activity | [192] | |
Metabolic syndrome | Wild blueberries | Obese Zucker rats | 8 weeks | 8% of diet | ↓IL-6, TNF-α, Nf-κB ↓C-reactive protein | [193] | |
Diabetes | Cy-3-glucoside | KK-A(y) mice | 5 weeks | 0.2% of diet | ↓RBP4 expression ↓blood glucose ↑Glut4 | [194] | |
Pre-diabetes | Kamchatka honeysuckle extract | 24 Wistar rats | 4 weeks | 327 mg ANs/g | ↑gut α and β glucosidase activity ✓ameliorates abnormal lipid/glucose metabolism | [195] | |
Diabetic nephropathy | Purple corn extract | C57BLKS/J-Leprdb mice | 8 weeks | 10 mg/kg BW | ↓VEGF, HIF-1a ↓angiogenesis | [196] | |
Pre-diabetes | Black currant extract | Sprague- Dawley rats | - | 5 mg/kg BW | ↑GLP-1 | [197] | |
Cardiovascular diseases/Obesity | Myocardial infarction (MI) | ANs-rich fruits and vegetables | 93,600 women, ages 25–42 | 18 years | - | ↓MI risk | [198] |
Vascular impairments | Blueberry fruits | 21 healthy men | 1, 2, 4, 6 h after ingestion | 319, 637, 766, 1278, and 1791 mg total | ↑vascular function | [199] | |
Cardiovascular risk | Strawberries | Healthy volunteers | 1 month | 500 g fruits/day | ↓cholesterol ↓triglycerides ↓activated platelets ↑plasma antioxidant capacity | [200] | |
Hypercholesterolemia | ANs mixture | 150 volunteers | 24 weeks | 320 mg/day | ↓hsCRP ↓sVCAM-1 ↓IL-1β | [201] | |
Cancer | Chronic B cell lymphocytic leukemia | Bilberry extract | 30 patients | 24 h | - | ✓activation of caspase-3 ✓apoptosis of B CLL cells ↓Bcl-2/Bad pathway | [202] |
Induced melanoma | Dp pure solution | C57BL/6N mice | 30 days | 10 mg delphinidin/kg | ↓melanoma-induced tumor growth | [203] | |
UVB-mediated apoptosis | Dp | Female SKH-1 mice | 1 and 8 h | 1 mg/0.1 DMSO/mouse | ↓apoptosis ↓cyclobutane pyrimidine dimers ↓8-OhdG ↓DNA damage | [204] | |
UVB-induced inflammation | Cy-3-glucoside | Female SKH-1 mice | 24 h | 250 and 500 µM | ↓COX-2, iNOS, PGE2, NF-κB ↓proinflammatory cytokines ↓p38 MAP kinase signaling | [205] | |
Neuroprotection | Dementia | Cherry juice | 49 older adults (+70 years) | 12 weeks | 200 mL/day | ↑cognition ↑speech fluency ↑short/long memory | [206] |
Cognitive degradation | Freeze-dried blueberries | 37 older adults (60–75 years) | 90 days | 24 g/day | ↓verbal errors ↓switch cost on task-switching test | [207] | |
Cognition improvement | Freeze-dried wild blueberries | 21 children (7–10 years) | 1, 3, 6 h | 15 or 30 g/day | ↑cognitive performance | [208] | |
Neuroinflammation mediated cognitive impairment | Korean black soybean | Male Sprague-Dawley rats | 7 weeks | 100 mg/kg ANs | ✓memory improved ✓astrocytes and microglia activation ↓RAGE, BACE-1, Aβ expression | [209] | |
Neuroinflammation | Korean black soybean | Male C57BL/6N mice | 14 days | 24 mg/kg/day | ↓p-NF-κB, TNF-α, and IL-1β ↓cell apoptosis | [210] | |
Alzheimer dementia | ANs | Male Wistar rats | - | 200 mg/kg/day | ↑SOD, CAT, GPX ↓ROS | [211] | |
Age-related brain deficiency | Chokeberry extract | Male Kunming mice | 8 weeks | 15 or 30 mg/kg | ↓COX2, TGF-β1 and IL-1 ↓DNA degradation | [212] |
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Nistor, M.; Pop, R.; Daescu, A.; Pintea, A.; Socaciu, C.; Rugina, D. Anthocyanins as Key Phytochemicals Acting for the Prevention of Metabolic Diseases: An Overview. Molecules 2022, 27, 4254. https://doi.org/10.3390/molecules27134254
Nistor M, Pop R, Daescu A, Pintea A, Socaciu C, Rugina D. Anthocyanins as Key Phytochemicals Acting for the Prevention of Metabolic Diseases: An Overview. Molecules. 2022; 27(13):4254. https://doi.org/10.3390/molecules27134254
Chicago/Turabian StyleNistor, Madalina, Roxana Pop, Adela Daescu, Adela Pintea, Carmen Socaciu, and Dumitrita Rugina. 2022. "Anthocyanins as Key Phytochemicals Acting for the Prevention of Metabolic Diseases: An Overview" Molecules 27, no. 13: 4254. https://doi.org/10.3390/molecules27134254
APA StyleNistor, M., Pop, R., Daescu, A., Pintea, A., Socaciu, C., & Rugina, D. (2022). Anthocyanins as Key Phytochemicals Acting for the Prevention of Metabolic Diseases: An Overview. Molecules, 27(13), 4254. https://doi.org/10.3390/molecules27134254