| Literature DB >> 32824592 |
María José Aliaño-González1, Tristan Richard2, Emma Cantos-Villar1.
Abstract
Grapevine canes are viticulture waste that is usually discarded without any further use. However, recent studies have shown that they contain significant concentrations of health-promoting compounds, such as stilbenes, secondary metabolites of plants produced as a response to biotic and abiotic stress from fungal disease or dryness. Stilbenes have been associated with antioxidant, anti-inflammatory, and anti-microbial properties and they have been tested as potential treatments of cardiovascular and neurological diseases, and even cancer, with promising results. Stilbenes have been described in the different genus of the Vitaceae family, the Vitis genera being one of the most widely studied due to its important applications and economic impact around the world. This review presents an in-depth study of the composition and concentration of stilbenes in grapevine canes. The results show that the concentration of stilbenes in grapevine canes is highly influenced by the Vitis genus and cultivar aspects (growing conditions, ultraviolet radiation, fungal attack, etc.). Different methods for extracting stilbenes from grapevine canes have been reviewed, and the extraction conditions have also been studied, underlining the advantages and disadvantages of each technique. After the stilbenes were extracted, they were analyzed to determine the stilbene composition and concentration. Analytical techniques have been employed with this aim, in most cases using liquid chromatography, coupled with others such as mass spectrometry and/or nuclear magnetic resonance to achieve the individual quantification. Finally, stilbene extracts may be applied in multiple fields based on their properties. The five most relevant are preservative, antifungal, insecticide, and biostimulant applications. The current state-of-the-art of the above applications and their prospects are discussed.Entities:
Keywords: antifungal; antioxidant; bioplaguicide; biostimulant; extraction; grapevine; grapevine cane extract; preservative; stilbenes
Mesh:
Substances:
Year: 2020 PMID: 32824592 PMCID: PMC7464460 DOI: 10.3390/biom10081195
Source DB: PubMed Journal: Biomolecules ISSN: 2218-273X
Stilbenes described in grapevine canes from different Vitis species [23,54,55,56,57,58,59,60,61,62,63,64,65,66,67,68,69,70].
| Stilbene | Species Concentration (mg/kg dw) | |||||||||||||||||
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| nd | nd | nd | nd | nd | nd | 367.0 ± 17.0 | nd | nd | Nd | nd | nd | nd | nd | nd | nd | nd | nd | |
| 1962.2 ± 122.4 | 1100.8 ± 21.5 | 894.4 ± 6.8 | 194.1 ± 13.6 | 599.7 ± 71.8 | 1195.1 ± 73.6 | nq | nd | 1151.1 ± 196.5 | Nd | nd | 377.0 ± 34.3 | 199.6 ± 34.9 | nd | 615.4 ± 18.1 | 1182.7 ± 26.7 | 1710.0 ± 4.0 | nd | |
| nq | nd | 64.2 ± 2.5 | 101.0 ± 1.5 | nd | 133.8 ± 8.6 | 201.0 ± 25.0 | nd | nd | Nd | nd | nd | nd | nd | 291.7 ± 11.6 | 257.0 ± 9.6 | 284.0 ± 36.0 | nd | |
| Pterostilbene | nd | nd | nd | nd | nd | nd | 547.0 ± 124.0 | nd | nd | Nd | nd | nd | nd | nd | nd | nd | nd | nd |
| 5432.9 ± 208.6 | 2412.4 ± 7.5 | 1951.2 ± 86.0 | 191.0 ± 2.4 | 2534.9 ± 15.0 | 3165.7 ± 131.3 | 25.0 ± 4.0 | 1049.0 ± 138.0 | 3572.2 ± 76.7 | Nd | nd | 1028.2 ± 53.0 | 364.0 ± 2.1 | 839.0 ± 31.0 | 1666.1 ± 9.4 | 3966.5 ± 52.5 | 66200.0 ±11.0 | nq | |
| 213.6 ± 7.2 | nd | nd | nd | nd | nd | nd | nd | nd | Nd | nd | nd | nd | nd | nd | nd | nd | nd | |
| nd | nd | nd | nd | nd | nd | 22.0 ± 3.0 | nd | nd | Nd | nd | nd | nd | nd | nd | nd | nd | nd | |
| Rhaponticin | nd | nd | nd | nd | nd | nd | 52.0 ± 6.0 | nd | nd | Nd | nd | nd | nd | nd | nd | nd | nd | nd |
| nq | nd | nd | 149.6 ± 6.6 | nd | nd | nd | nd | nd | Nq | nd | nd | nd | nd | nd | nd | 220.0 ± 16.0 | nd | |
| Ampelopsin F | nq | nd | nd | nd | nd | nd | nd | nd | nd | Nd | nd | nd | nd | nd | nd | nd | 360.0 – nq | nq |
| nd | nd | nd | nd | nd | nd | nd | nd | nd | Nd | nd | nd | nd | nd | nd | nd | nd | nq | |
| nd | nd | nd | nd | nd | nd | nd | nd | nd | Nd | nq | nd | nd | nd | nd | nd | nd | nd | |
| Pallidol | nd | nd | nd | nd | nd | nd | nd | nd | nd | Nd | nd | nd | nd | nd | nd | nd | 80.0 – nq | nd |
| nd | nd | nd | nd | nd | nd | nd | nd | nd | Nd | nd | nd | nd | nd | nd | nd | 220.0 – nq | nd | |
| 4510.4 ± 20.9 | 3715.5 ± 11.5 | 1264.5 ± 33.8 | 1397.4 ± 16.9 | 4054.9 ± 87.5 | 1610.9 ± 29.0 | nd | nd | 4352.5 ± 35.8 | Nq | nd | 4683.7 ± 99.7 | 3254.3 ± 68.5 | nd | 5739.0 ± 45.8 | 3912.6 ± 301.7 | 40600.0 ± 47.0 | nd | |
| nd | 122.2 ± 3.1 | nd | 65.1 ± 2.6 | 365.9 ± 9.3 | nd | nd | nd | 288.3 ± 3.2 | Nd | nd | 214.2 ± 3.2 | 270.5 ± 6.4 | nd | 156.8 ± 3.2 | 374.3 ± 26.9 | 85.2 ± 40.0 | nd | |
| Vitisinol A | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq |
| Vitisinol B | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq |
| nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq | |
| Vitisinol D | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq |
| nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq | |
| Vitisinol G | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq |
| nq | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | |
| α-Viniferin | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | 105.6 ± 98.4 | nd |
| 567.1 ± 14.7 | nd | nd | 55.9 ± 2.5 | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | |
| Amurensin G | nq | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd |
| Ampelopsin C | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq | nd | nd | nd | nd | nd | nd | nd | nq |
| 1615.1 ± 35.4 | 428.4 ± 3.5 | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | 575.6 ± 16.9 | nd | nd | nq | |
| nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | 1060.0 –nq | nd | |
| nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq | |
| Ampelopsin H | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | 40.0 – nq | nd |
| Flexuosol A | nd | nd | Nd | nd | nd | nd | nd | nd | nd | nd | nq | nd | nd | nd | nd | nd | nd | nd |
| Heyneanol A | nd | nd | Nd | Nd | nd | nd | nd | nd | nd | nq | nd | nd | nd | nd | nd | nd | nd | nd |
| Hopeaphenol | nd | nd | Nd | Nd | nd | nd | nd | nd | nd | nd | nq | nd | nd | nd | nd | nd | 1468.2 – nq | nd |
| Isohopeaphenol | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | 120.0 – nq | nd |
| Miyabenol A | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq |
| r2-Viniferin | nq | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq | nd | nd | nd | nd | nd | 15200.5 ± 60.0 | nq |
| r-Viniferin | 972.1 ± 48.9 | 4279.6 ± 62.5 | 2038.0 ± 98.1 | nd | 5031.8 ± 95.2 | 2531.7 ± 69.4 | nd | nd | 2506.2 ± 12.0 | nd | nd | 5051.0 ± 237.7 | 6966.2 ± 69.2 | nd | 1950.7 ± 24.8 | 4916.1 ± 412.3 | 2159.0 – nq | nq |
| nd | nd | nd | nd | nd | nd | nq | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq | nq | |
| Vitisin C | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq |
| Viniferal | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nq |
| Viniferol E | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | nd | 140.0 – nq | nd |
nd, not detected; nq, not quantified; t-, trans-; c-, cis-.
Figure 1Structures of main stilbenes from grapevine canes. Structures obtained from the ISVV-Polyphenols reference database [49].
Summary of conditions of the methods for extracting stilbenes from grapevine cane.
| Extraction Technique | Method | Conditions | Concentration (mg/Kg dw) | References |
|---|---|---|---|---|
| Solid-Liquid Extraction | 1 | Ethanol:H2O (80:20 | Cabernet sauvignon: | Vergara et al. [ |
| 2 | Ethanol:H2O (80:20 | Pinot noir: Ampelopsin A (204 ± 1), | Gorena et al. [ | |
| 3 | Acetone:H2O (60:40 | Cabernet sauvignon: | Lambert et al. [ | |
| High-Pressure Methods | 4 | Sample in column heated and pressurized | Cabernet moravia: | Zachová et al. [ |
| 4 | Sample in column heated and pressurized. | Cabernet moravia (Acetone): | Zachová et al. [ | |
| Microwave-assisted extraction | 5 | Sample at 125 °C | Cabernet Franc: Piceatannol (28 ± 6), | Piñeiro et al. [ |
| Subcritical Water | 6 | Sample in H2O at 160 °C and under pressure | Merlot: Piceid (70), Piceatannol (130), Resveratrol (650), Ampelopsin A (220), Ampelopsin F (360), Pallidol (80), Parthenocissin A (200), ε-Viniferin (300), w-Viniferin (40), Viniferol E (140), Hopeaphenol (340), Isohopeaphenol (120), Ampelopsin H (40) and r2-Viniferin (60) | Gabaston et al. [ |
Figure 2Stilbene concentrations in grapevine canes from different varieties of Vitis vinifera (Adapted from [70]).
Analytical techniques used to identify stilbenes in grapevine cane samples.
| Analysis | Identified Compounds from Grapevine Cane | References | |
|---|---|---|---|
| HPLC–DAD/FLD | 1 | [ | |
| 2 | [ | ||
| 3 | [ | ||
| 4 | Hopeaphenol, Isohopeaphenol and Ampelopsin A (280 nm); | [ | |
| 5 | [ | ||
| LC–MS | 6 | [ | |
| 7 | α-Viniferin C24H30O9 ( | [ | |
| HPLC–DAD-FLD–MS/MS | 8 | [ | |
| HPLC–DAD–ESI–MS/MS | 9 | [ | |
| 10 | Ampelopsin A ( | [ | |
| 11 | [ | ||
| UHPLC–DAD/ESI–Q-TOF | 12 | [ | |
| HPLC–NMR | 13 | [ |
HPLC–DAD/FLD: high-pressure liquid chromatography-photodiode array detector/fluorescence detector; LC–MS: liquid chromatography-mass spectrometry; HPLC–DAD–FLD–MS/MS: high-pressure liquid chromatography–photodiode array–fluorescence detector–mass spectrometry/mass spectrometry; HPLC–DAD–ESI–MS/MS: high-pressure liquid chromatography-photodiode array detector–electrospray ionization–mass spectrometry/mass spectrometry; UHPLC–DAD/ESI–Q-TOF: ultra high-pressure liquid chromatography–photodiode array detector–electrospray ionization-triple quadrupole; HPLC–NMR: high-pressure liquid chromatography–nuclear magnetic resonance.