| Literature DB >> 34070065 |
María Del Carmen Razola-Díaz1, Eduardo Jesús Guerra-Hernández1, Celia Rodríguez-Pérez2,3,4, Ana María Gómez-Caravaca3,5, Belén García-Villanova1, Vito Verardo1,3.
Abstract
Orange peel is the main by-product from orange juice industry. It is a known source of bioactive compounds, mostly phenolic compounds, and it has been widely studied for its healthy activities. Thus, this research focuses on the establishment of ultrasound-assisted extraction of phenolic compounds in orange peel using a sonotrode. For this purpose, a Box-Behnken design of 27 experiments was carried out with four independent factors-ratio ethanol/water (v/v), time (min), amplitude (%), and pulse (%). Quantitative analyses of phenolic compounds were performed and the antioxidant activity was measured by ABTS and DPPH methods. The validity of the experimental design was confirmed by ANOVA and the optimal sonotrode extraction conditions were obtained by response surface methodology (RSM). The extracts obtained in the established conditions were analyzed by High Performance Liquid Chromatography (HPLC) coupled to mass spectrometer detector and 74 polar compounds were identified. The highest phenolic content and antioxidant activity were obtained using 45/55 ethanol/water (v/v), 35 min, amplitude 90% (110 W), and pulse 100%. The established method allows an increment of phenolics recovery up to 60% higher than a conventional extraction. Moreover, the effect of drying on phenolic content was also evaluated.Entities:
Keywords: Box–Behnken design; HPLC-MS; antioxidant activity; orange peel; phenolic compounds; sonotrode ultrasound-assisted extraction
Year: 2021 PMID: 34070065 PMCID: PMC8158112 DOI: 10.3390/foods10051120
Source DB: PubMed Journal: Foods ISSN: 2304-8158
Box–Behnken design with natural and coded values (parenthesis) of the conditions of extraction and the experimental results obtained for TPC, and antioxidant assays (ABTS and DPPH) expressed with the average and the standard deviation.
| Independent Factors | Dependent Factors | ||||||
|---|---|---|---|---|---|---|---|
| X1 | X2 | X3 | X4 | TPC (mg GAE/g d.w.) | ABTS (mg TE/g d.w.) | DPPH (mg TE/g d.w.) | |
| 1 | 0 (−1) | 5 (−1) | 60 (0) | 50 (0) | 20.46 ± 0.18 e–g | 26.67 ± 0.39 e,f | 10.55 ± 0.03 b |
| 2 | 100 (1) | 5 (−1) | 60 (0) | 50 (0) | 10.33 ± 0.10 b | 11.56 ± 0.26 a | 10.94 ± 0.21 c |
| 3 | 0 (−1) | 45 (1) | 60 (0) | 50 (0) | 21.64 ± 0.21 f–i | 24.92 ± 0.06 d,e | 19.79 ± 0.04 i |
| 4 | 100 (1) | 45 (1) | 60 (0) | 50 (0) | 19.55 ± 0.35 e | 18.28 ± 0.38 b | 11.07 ± 0.06 c |
| 5 | 50 (0) | 25 (0) | 20 (−1) | 10 (−1) | 25.33 ± 0.14 l | 25.21 ± 0.26 d,e | 20.02 ± 0.06 i |
| 6 | 50 (0) | 25 (0) | 100 (1) | 10 (−1) | 21.95 ± 0.16 g–j | 36.62 ± 0.50 n–p | 18.54 ± 0.05 f |
| 7 | 50 (0) | 25 (0) | 20 (−1) | 100 (1) | 25.12 ± 0.35 l | 39.13 ± 0.79 o–q | 21.05 ± 0.04 k,l |
| 8 | 50 (0) | 25 (0) | 100 (1) | 100 (1) | 29.75 ± 0.36 m | 30.14 ± 0.01 h, i | 20.95 ± 0.05 k |
| 9 | 50 (0) | 25 (0) | 60 (0) | 50 (0) | 23.59 ± 0.92 j,k | 34.97 ± 0.13 l, m | 22.43 ± 0.06 m,n |
| 10 | 0 (−1) | 25 (0) | 60 (0) | 10 (−1) | 20.08 ± 0.35 e,f | 36.27 ± 0.26 l–n | 21.21 ± 0.05 k,l |
| 11 | 100 (1) | 25 (0) | 60 (0) | 10 (−1) | 10.11 ± 0.37 b | 22.87 ± 0.51 c | 11.16 ± 0.04 c |
| 12 | 0 (−1) | 25 (0) | 60 (0) | 100 (1) | 21.95 ± 0.42 h–k | 33.07 ± 0.78 j,k | 19.93 ± 0.05 i |
| 13 | 100 (1) | 25 (0) | 60 (0) | 100 (1) | 16.27 ± 0.35 c,d | 23.60 ± 0.77 c,d | 15.44 ± 0.05 e |
| 14 | 50 (0) | 5 (−1) | 20 (−1) | 50 (0) | 21.30 ± 0.03 f–h | 37.18 ± 0.77 m–o | 19.03 ± 0.05 g |
| 15 | 50 (0) | 45 (1) | 20 (−1) | 50 (0) | 22.40 ± 0.14 h–k | 36.28 ± 0.64 m–p | 23.07 ± 0.05 p |
| 16 | 50 (0) | 5 (−1) | 100 (1) | 50 (0) | 10.31 ± 0.04 b | 29.71 ± 0.27 g, h | 22.69 ± 0.06 o |
| 17 | 50 (0) | 45 (1) | 100 (1) | 50 (0) | 23.03 ± 0.14 j,k | 40.92 ± 0.64 q | 22.23 ±0.05 m |
| 18 | 50 (0) | 25 (0) | 60 (0) | 50 (0) | 22.35 ± 0.07 h–k | 34.92 ± 0.59 k,l | 21.20 ± 0.08 l |
| 19 | 0 (−1) | 25 (0) | 20 (−1) | 50 (0) | 20.56 ± 0.35 e–g | 32.53 ± 0.37 j,k | 23.19 ± 0.06 p |
| 20 | 100 (1) | 25 (0) | 20 (−1) | 50 (0) | 8.66 ± 0.06 a | 26.33 ± 0.12 e,f | 9.54 ± 0.04 a |
| 21 | 0 (−1) | 25 (0) | 100 (1) | 50 (0) | 22.81 ± 0.26 j,k | 32.51 ± 0.03 j,k | 20.29 ± 0.05 j |
| 22 | 100 (1) | 25 (0) | 100 (1) | 50 (0) | 15.98 ± 0.21 c | 27.35 ± 0.96 f,g | 12.30 ± 0.04 d |
| 23 | 50 (0) | 5 (−1) | 60 (0) | 10 (−1) | 17.30 ± 0.42 d | 35.04 ± 0.19 l–n | 19.41 ± 0.04 h |
| 24 | 50 (0) | 45 (1) | 60 (0) | 10 (−1) | 20.42 ± 0.09 e–g | 38.15 ± 0.76 p,q | 21.28 ± 0.04 l |
| 25 | 50 (0) | 5 (−1) | 60 (0) | 100 (1) | 23.37 ± 0.13 k | 28.93 ± 0.15 g, h | 26.45 ± 0.04 r |
| 26 | 50 (0) | 45 (1) | 60 (0) | 100 (1) | 25.30 ± 0.08 l | 31.37 ± 0.37 i,j | 25.65 ± 0.04 q |
| 27 | 50 (0) | 25 (0) | 60 (0) | 50 (0) | 22.52 ± 0.36 i–k | 32.62 ± 0.27 j,k | 22.61 ± 0.01 n,o |
X1–4: Ethanol/water (v/v), time (min), amplitude (%), pulse (%). TPC: Total phenolic compounds. GAE: Gallic acid equivalents. TE: Trolox equivalents. d.w.: dry weight. Different letters in the same column showed significant differences.
Estimated regression coefficients of the adjusted second-order polynomial equation and analysis of variance (ANOVA) of the model.
| Regression Coefficients | Response | |||||
|---|---|---|---|---|---|---|
| TPC | ABTS | DPPH | ||||
| Effect | Effect | Effect | ||||
| β0 | 20.9165 * | 0.0000 | 25.5081 * | 0.0000 | 16.4511 * | 0.0001 |
| Lineal | ||||||
| β1 | −7.39159 * | 0.0000 | −6.9354 * | 0.000 | −7.1540 * | 0.0036 |
| β2 | 7.14405 * | 0.0001 | 4.1242 * | 0.0189 | 3.9375 * | 0.0343 |
| β3 | 0.1177 | 0.8784 | −2.5229 | 0.6391 | 1.2579 | 0.7225 |
| β4 | 5.0592 * | 0.0002 | −6.3625 * | 0.0227 | 4.2319 * | 0.0215 |
| Crossed | ||||||
| β12 | 4.0196 * | 0.0211 | 4.2385 | 0.1091 | −4.5509 * | 0.0274 |
| β13 | 2.5322 | 0.0637 | 0.5152 | 0.7383 | 2.8321 | 0.0665 |
| β14 | 2.1488 | 0.0855 | 1.9652 | 0.2811 | 2.7874 | 0.0684 |
| β23 | 5.8083 * | 0.0023 | 6.0598 * | 0.0182 | −2.2457 | 0.4190 |
| β24 | −0.5977 | 0.4677 | −0.3305 | 0.8286 | −1.3348 | 0.2248 |
| β34 | 4.0099 * | 0.0214 | −10.1977 * | 0.0005 | 0.6917 | 0.4634 |
| Quadratic | ||||||
| β11 | 1.9745 * | 0.0001 | 12.6447 * | 0.0000 | 8.0299 * | 0.0020 |
| β22 | −1.0824 | 0.1228 | 7.1362 * | 0.0000 | 2.1692 * | 0.03400 |
| β33 | −1.6717 | 0.0569 | 0.7439 | 0.4660 | 1.1751 | 0.1326 |
| β44 | −2.2687 * | 0.0336 | 1.9455 | 0.1091 | 0.4520 | 0.3771 |
| R2 | 0.9564 | 0.9286 | 0.8694 | |||
| 0.0011 | 0.0043 | 0.0001 | ||||
| 0.1522 | 0.2624 | 0.1117 | ||||
* Significant at α ≤ 0.05; 1 Ethanol/water ratio (v/v), 2 time, 3 amplitude, 4 pulse.
Figure 1Response surface graphs (a–f) showing the combined effects of the process variables: Ethanol/water (v/v), time (min), amplitude (%), and pulse (%), for TPC (mg GAE/g d.w.).
Figure 2Response surface graphs (a–f) showing the combined effects of the process variables: Ethanol/water (v/v), time (min), amplitude (%), and pulse (%), for ABTS antioxidant assay (mg TE/g d.w.).
Figure 3Response surface graphs (a–f) showing the combined effects of the process variables: Ethanol/water (v/v), time (min), amplitude (%), and pulse (%), for DPPH antioxidant assay (mg TE/g d.w.).
Optimal conditions selected and the model predicted values with the obtained values expressed with the mean and the standard deviation.
| Parameter | Optimal Conditions | ||
|---|---|---|---|
| Ethanol/water ( | 45 | ||
| Time (min) | 35 | ||
| Amplitude (%) | 90 | ||
| Pulse (%) | 100 | ||
| TPC | DPPH | ABTS | |
| Predicted value (mg/g d.w.) | 29.36 ± 3.5 | 24.44 ± 3.6 | 32.02 ± 7.0 |
| Obtained value (mg/g d.w.) | 30.42 ± 1.5 | 26.37 ± 1.6 | 35.62 ± 2.1 |
| Coefficient of variation | 0.025 | 0.053 | 0.075 |
Figure 4Comparison of phenolic content in orange by-products extracts obtained by sonotrode and conventional extraction. Different letters reported statistical significant differences.
Previous research about other technologies used for extracting phenolic compounds from the orange by-products with the conditions used and the total phenolic compounds (TPC) obtained.
| Technology Used | Conditions | TPC (mg GAE/g d.w.) | Reference |
|---|---|---|---|
| Solvent extraction | Water, 60 °C, 12 h | 6.89 | [ |
| Methanol, 55 °C, 3 h | 28.00 | [ | |
| Methanol/water 80:20, 20 °C, 22 h | 25.60 | [ | |
| Methanol/sample 20:1 ( | 18.50 | [ | |
| Acetone/sample 20:1 ( | 18.00 | [ | |
| Acetone 50%/sample 50:1 ( | 10.21 | [ | |
| High voltage electrical discharges-assisted extraction | Water/sample 20:10 ( | 7.00 | [ |
| Ultrasound-assisted extraction (ultrasonic bath) | Ethanol 40%/sample 80:1 ( | 2.33 | [ |
| Ethanol 50%/sample 57:1 ( | 5.50 | [ | |
| Ethanol 50%/sample 10:1 ( | 1.05 | [ | |
| Acetone 75.79%/sample 50:1 ( | 10.35 | [ | |
| Microwave-assisted extraction | Acetone 51%/sample 25:1 ( | 12.20 | [ |
| Pressurized liquid extraction | Ethanol 50%/sample 47:1 ( | 10.30 | [ |
| Ultrasound-assisted extraction (ultrasonic bath) combined with enzymatic process | Ethanol/sample 10:1 ( | 0.88 | [ |
| Pressing extraction with pulsed electric fields as pre-treatment | 7 kV/cm PEF and 5 bars, 30 min | 0.35 | [ |
| Solvent extraction with infrared as pre-treatment | Ethanol 50%/sample 8:1 ( | 1.5 | [ |
Standard analytes used for elaborating the calibration curves with the range used, equations, R2, LOD, and LOQ of each compound.
| Standards | Calibration Ranges (µg/mL) | Calibration Curves (µg/mL) |
| LOD (µg/mL) | LOQ (µg/mL) |
|---|---|---|---|---|---|
| Vanillic acid | 3.7–236.67 | 0.9979 | 0.47 | 1.57 | |
| Chlorogenic acid | 3.85–246.67 | 0.9984 | 0.17 | 0.56 | |
| Ferulic acid | 3.54–226.67 | 0.9983 | 0.27 | 0.89 | |
| Quercetin | 3.54–226.67 | 0.9988 | 0.06 | 0.21 | |
| Rutin | 3.44–220 | 0.9954 | 0.04 | 0.14 |
Compounds identified by HPLC-ESI-TOF-MS in the optimal extract of orange peel.
| No. | Compound | Retention Time (Min) | Molecular Formula | Score | Error (ppm) | ||
|---|---|---|---|---|---|---|---|
| 1 | Caffeoylglycolic acid methyl ester isomer a | 3.608 | C12H12O6 | 251.055 | 251.0556 | 86.53 | −2.4 |
| 2 | Norbergenin | 3.806 | C13H14O9 | 313.0563 | 313.056 | 94.08 | 1 |
| 3 | Citric acid | 4.278 | C6H8O7 | 191.0198 | 191.0192 | 94.52 | 3.1 |
| 4 | Cynaroside A | 4.774 | C21H32O10 | 443.191 | 443.1917 | 99.27 | −1.6 |
| 5 | 2-(E)- | 4.898 | C16H18O11 | 385.0769 | 385.0771 | 99.77 | −0.5 |
| 6 | 2-(E)- | 5.113 | C16H18O11 | 385.0771 | 385.0771 | 95.25 | 0 |
| 7 | Caffeic acid 3- | 5.308 | C15H16O10 | 355.0667 | 355.0665 | 99.92 | 0.6 |
| 8 | Citroside | 5.669 | C19H30O8 | 385.1856 | 385.1862 | 87.14 | −1.6 |
| 9 | Ferulic acid | 5.854 | C16H20O9 | 355.1024 | 355.1029 | 97.78 | −1.4 |
| 10 | 2-(E)- | 6.007 | C16H18O11 | 385.0768 | 385.0771 | 96.52 | −0.8 |
| 11 | Feruloyl isocitric acid isomer a | 6.131 | C16H16O10 | 367.0662 | 367.0665 | 99.75 | −0.8 |
| 12 | Sinapic acid | 6.206 | C17H22O10 | 385.1133 | 385.1136 | 99.70 | −0.5 |
| 13 | Caffeoylglycolic acid methyl ester isomer b | 6.268 | C12H12O6 | 251.0549 | 251.0556 | 88.53 | −2.8 |
| 14 | Caffeoylmalic acid isomer a | 6.45 | C13H12O8 | 295.0446 | 295.0454 | 98.46 | −2.7 |
| 15 | Sinapinic acid- | 6.545 | C17H20O11 | 399.0921 | 399.0927 | 89.58 | −1.5 |
| 16 | Feruloyl isocitric acid isomer b | 6.661 | C16H16O10 | 367.0675 | 367.0665 | 90.04 | 2.7 |
| 17 | Rutin isomer a | 6.785 | C27H30O16 | 609.1467 | 609.1456 | 94.51 | 1.8 |
| 18 | Dihydroisorhamnetin 7-rutinoside | 7.194 | C28H34O16 | 625.1765 | 625.1769 | 87.24 | −0.6 |
| 19 | Apigenin-di-C-hexoside (Vicenin-2) isomer a | 7.376 | C27H30O15 | 593.1506 | 593.1506 | 99.24 | 0 |
| 20 | Prunin | 7.596 | C21H22O10 | 433.1132 | 433.1135 | 100.0 | −0.7 |
| 21 | Isorhamnetin-3- | 7.753 | C28H32O16 | 623.1607 | 623.1612 | 96.55 | −0.8 |
| 22 | Isorhamnetin-3- | 7.914 | C28H32O16 | 623.1605 | 623.1612 | 95.79 | −1.1 |
| 23 | Caffeoylmalic acid isomer b | 8.241 | C13H12O8 | 295.0428 | 295.0454 | 88.92 | −8.8 |
| 24 | Luteolin- | 8.432 | C26H28O15 | 579.134 | 579.135 | 86.57 | −1.7 |
| 25 | Alpha-Glucosyl Hesperidin | 8.481 | C34H44O20 | 771.2352 | 771.2348 | 92.05 | 0.5 |
| 26 | Luteolin- | 8.572 | C26H28O15 | 579.1367 | 579.135 | 91.83 | 2.9 |
| 27 | Quercitrin | 8.676 | C21H20O11 | 447.0934 | 447.0927 | 99.92 | 1.6 |
| 28 | Eriocitrin | 8.8 | C27H32O15 | 595.1662 | 595.1663 | 88.90 | −0.2 |
| 29 | Limonin 17- | 8.899 | C32H42O14 | 649.2497 | 649.2496 | 99.94 | 0.2 |
| 30 | Vitexin- | 9.135 | C26H28O14 | 563.1407 | 563.1401 | 99.96 | 1.1 |
| 31 | Apigenin-di- | 9.213 | C27H30O15 | 593.1500 | 593.1506 | 96.70 | −1 |
| 32 | Quercetin- | 9.234 | C27H30O17 | 625.1411 | 625.1405 | 98.61 | 1 |
| 33 | Vitexin- | 9.511 | C26H28O14 | 563.14 | 563.1401 | 100.0 | −0.2 |
| 34 | Naringin hydrate | 9.615 | C27H34O15 | 597.1816 | 597.1819 | 99.99 | −0.5 |
| 35 | Apigenin-di- | 9.697 | C27H30O15 | 593.1506 | 593.1506 | 99.13 | 0 |
| 36 | Apigenin-di- | 9.847 | C27H30O15 | 593.1505 | 593.1506 | 98.19 | −0.2 |
| 37 | Narirutin | 10.012 | C27H32O14 | 579.1696 | 579.1714 | 99.80 | 0.3 |
| 38 | Unknown flavonoid | 10.074 | C26H26O14 | 561.1246 | 561.1244 | 99.56 | 0.4 |
| 39 | 6-keto-7- | 10.219 | C32H44O15 | 667.2588 | 667.2602 | 88.13 | −2.1 |
| 40 | Rutin isomer b | 10.318 | C27H30O16 | 609.1458 | 609.1456 | 99.99 | 0.3 |
| 41 | Deacetylnomilinic acid 17- | 10.359 | C32H46O15 | 669.2781 | 669.2758 | 98.18 | 3.4 |
| 42 | Hesperidin | 10.45 | C28H34O15 | 609.1812 | 609.1819 | 99.98 | −1.1 |
| 43 | Kaempferol 3- | 10.624 | C39H32O13 | 707.1788 | 707.1765 | 98.71 | 3.3 |
| 44 | Isoobacunoic acid 17- | 10.827 | C32H44O14 | 651.2661 | 651.2653 | 98.74 | 1.2 |
| 45 | Kaempferol 3-[2″-glucosyl-6″-acetyl-galactoside] 7-glucoside isomer a | 10.951 | C35H42O22 | 813.2104 | 813.2089 | 99.92 | 1.8 |
| 46 | Kaempferol 3-[2″-glucosyl-6″-acetyl-galactoside] 7-glucoside isomer b | 11.063 | C35H42O22 | 813.2089 | 813.2089 | 97.06 | 0.2 |
| 47 | Apigenin-di- | 11.208 | C27H30O15 | 593.1504 | 593.1506 | 99.92 | −0.3 |
| 48 | Isorhamnetin-3- | 11.336 | C28H32O16 | 623.1614 | 623.1612 | 99.20 | 0.3 |
| 49 | Kaempferol-dihexosyl acetate | 11.613 | C29H32O17 | 651.1577 | 651.1571 | 86.35 | 2.5 |
| 50 | nomilin 17- | 11.973 | C34H46O15 | 693.2766 | 693.2758 | 99.99 | 1.2 |
| 51 | Neohesperidin | 12.184 | C28H34O15 | 609.1824 | 609.1819 | 99.90 | 0.8 |
| 52 | Didymin | 12.41 | C28H34O14 | 593.1885 | 593.187 | 91.36 | 2.5 |
| 53 | Nomilinic acid 17- | 12.602 | C34H48O16 | 711.2878 | 711.2864 | 97.47 | 2 |
| 54 | Apigenin 7- | 12.693 | C27H30O14 | 577.1564 | 577.1557 | 99.80 | 1.2 |
| 55 | Obacunone 17- | 12.742 | C32H42O13 | 633.2574 | 633.2547 | 87.20 | 4.3 |
| 56 | Naringin 6″-malonate | 13.094 | C30H34O17 | 665.1697 | 665.1718 | 90.41 | −3.2 |
| 57 | Kaempferol 3- | 13.309 | C29H32O16 | 635.1617 | 635.1612 | 99.28 | 0.8 |
| 58 | Kaempferol 3-apiosyl-(1->4)-rhamnoside-7-rhamnoside | 13.338 | C32H38O18 | 709.1987 | 709.198 | 91.26 | 1 |
| 59 | Quercetin-3- | 13.814 | C33H40O21 | 771.2137 | 771.1984 | 89.33 | 1.8 |
| 60 | Demethylnobiletin | 13.888 | C20H20O8 | 387.1079 | 387.108 | 92.26 | −0.3 |
| 61 | Methyl 2-[(2S,4R,5S,6R)-4-acetyloxy-6-(acetyloxymethyl)-5-[(2R,4R,5S,6R)-4,5-diacetyloxy-6-(acetyloxymethyl) oxan-2-yl]oxyoxan-2-yl]oxy-3,4,5-trihydroxy-6-oxobenzo[7]annulene-8-carboxylate | 14.132 | C35H40O20 | 779.2047 | 779.2035 | 99.98 | 1.5 |
| 62 | Naringenin | 14.178 | C15H12O5 | 271.0603 | 271.0606 | 95.40 | −1.1 |
| 63 | Kaempferol 3- | 14.339 | C53H56O28 | 1139.2892 | 1139.2885 | 95.98 | 1.1 |
| 64 | Kaempferol 3- | 14.476 | C53H56O28 | 1139.2933 | 1139.288 | 88.40 | 4.7 |
| 65 | Deacetylnomilin acid | 14.526 | C26H34O9 | 489.2131 | 489.2125 | 90.73 | 1.2 |
| 66 | Limonol | 14.559 | C26H32O8 | 471.2025 | 471.2019 | 96.48 | 1.3 |
| 67 | Kaempferol 3- | 14.786 | C52H54O27 | 1109.2789 | 1109.2774 | 90.94 | 1.4 |
| 68 | Epilimonin | 15.043 | C26H30O8 | 469.1859 | 469.1862 | 99.98 | −0.6 |
| 69 | Limonin | 15.708 | C26H30O8 | 469.1849 | 469.1862 | 99.28 | −2.8 |
| 70 | Nomilinic acid | 15.8 | C28H36O10 | 531.2208 | 531.223 | 91.17 | −4.1 |
| 71 | Pectolinarigenin | 16.073 | C17H14O6 | 313.0704 | 313.0712 | 98.95 | −2.6 |
| 72 | Deoxylimonin | 16.102 | C26H30O7 | 453.1881 | 453.1913 | 85.92 | −3.1 |
| 73 | Isosakuranetin | 16.524 | C16H14O5 | 285.0754 | 285.0763 | 89.61 | −3.2 |
| 74 | 3′,4′-Didemethylnobiletin | 16.569 | C19H18O8 | 373.0923 | 373.0923 | 94.17 | 0 |
Quantification of phenolic compounds from orange peel dry and fresh by HPLC-MS (expressed as mean ± standard deviation µg/g d.w.).
| Compounds | Fresh By-Product (µg/g d.w.) | Dry By-Product (µg/g d.w.) |
|---|---|---|
| Sum of phenolic compounds | 6344.0 ± 3.6 | 4737.6 ± 4.4 |
| Phenolic Acids | 3087.5 ± 0.2 | 2891.1 ± 2.4 |
| Norbergenin | 383.5 ± 0.5 | 340.4 ±0.7 |
| Caffeoylglycolic acid methyl ester isomer a | 201.8 ± 0.1 | 284.2 ± 0.7 |
| Caffeoylglycolic acid methyl ester isomer b | 133.36 ± 0.04 | 178.2 ± 0.1 |
| Caffeic acid 3- | 218.9 ± 0.3 | 128.6 ± 0.7 |
| Caffeoylmalic Acid isomer a | 127.9 ± 0.6 | 99.5 ± 0.4 |
| Caffeoylmalic Acid isomer b | 109.5 ± 0.1 | 77.6 ± 0.1 |
| 2-(E)- | 378.8 ± 0.5 | 463.0 ± 0.04 |
| 2-(E)- | 575.6 ± 0.3 | 416.3 ± 0.4 |
| 2-(E)- | 313.2 ± 0.2 | 564.0 ± 0.9 |
| Ferulic acid | 235.3 ± 0.7 | 48.73 ± 0.1 |
| Feruloyl Isocitric acid isomer a | 195.2 ± 0.7 | 170.66 ± 0.4 |
| Feruloyl isocitric acid isomer b | 16.9 ± 0.03 | 11.2 ± 0.2 |
| Sinapic acid | 183.5 ± 0.4 | 14.9 ± 0.1 |
| Sinapinic acid- | 14.0 ± 0.5 | 93.7 ± 0.1 |
| Flavonoids | 3256.5 ± 3.4 | 1846.5 ± 2.0 |
| Cynaroside A | 13.1 ± 0.3 | 6.1 ± 0.1 |
| Rutin isomer a | 57.8 ± 0.3 | 73.6 ± 0.1 |
| Rutin isomer b | 22.0 ± 0.1 | 49.8 ± 0.05 |
| Prunin | 122.5 ± 0.4 | 35.4 ± 0.01 |
| Quercitrin | 1.2 ± 0.2 | <LOQ |
| Eriocitrin | 24.6 ± 0.1 | 17.5 ± 0.4 |
| Narirutin | 799.4 ± 0.5 | 319.6 ± 0.4 |
| Hesperidin | 894.8 ± 0.5 | 320.2 ± 0.5 |
| α-glucosyl Hesperidin | 23.8 ± 0.1 | 19.0 ± 0.1 |
| Neohesperidin | <LOQ | <LOQ |
| Didymin | 146.3 ± 0.2 | 72.8 ± 0.2 |
| Naringin 6″-malonate | <LOQ | <LOQ |
| Naringin hydrate | 35.1 ± 0.2 | 51.7 ± 0.2 |
| Dihydroisorhamnetin 7-rutinoside | 8.4 ± 0.2 | 10.1 ± 0.06 |
| Isorhamnetin-3- | 135.4 ± 0.6 | 116.6 ± 0.3 |
| Isorhamnetin-3- | 10.6 ± 0.1 | 8.0 ± 0.0005 |
| Isorhamnetin-3- | 54.6 ± 0.1 | 48.9 ± 0.002 |
| Vitexin- | 72.2 ± 0.5 | 68.61 ± 0.27 |
| Vitexin- | 111.5 ± 0.01 | 94.6 ± 0.2 |
| Apigenin 7- | 14.8 ± 0.1 | 9.2 ± 0.5 |
| Apigenin-di- | 570.7 ± 0.9 | 318.3 ± 0.4 |
| Apigenin-di- | <LOQ | <LOQ |
| Apigenin-di- | 7.7 ± 0.2 | 13.7 ± 0.1 |
| Apigenin-di- | 22.3 ± 0.1 | 16.3 ± 0.1 |
| Apigenin-di- | <LOQ | <LOQ |
| Luteolin- | 1.2 ± 0.1 | 0.2 ± 0.01 |
| Luteolin- | 3.8 ± 0.1 | 2.3 ± 0.02 |
| Kaempferol 3-[2″-glucosyl-6″-acetyl-galactoside] 7-glucoside isomer a | 24.6 ± 0.3 | 16.0 ± 0.004 |
| Kaempferol 3-[2″-glucosyl-6″-acetyl-galactoside] 7-glucoside isomer b | 16.9 ± 0.7 | 12.3 ± 0.04 |
| Kaempferol-dihexosyl acetate | <LOQ | <LOQ |
| Kaempferol 3- | <LOQ | <LOQ |
| Kaempferol 3-apiosyl-(1->4)-rhamnoside-7-rhamnoside | <LOQ | <LOQ |
| kaempferol 3- | 0.7 ± 0.06 | 0.3 ± 0.002 |
| Kaempferol 3- | <LOQ | <LOQ |
| Kaempferol 3- | <LOQ | <LOQ |
| Kaempferol 3- | <LOQ | <LOQ |
| Quercetin- | <LOQ | <LOQ |
| Quercetin-3- | <LOQ | <LOQ |
| Demethylnobiletin | n.d. | <LOQ |
| 3′,4′-Didemethylnobiletin | <LOQ | <LOQ |
| Naringenin | 11.5 ± 0.02 | 9.4 ± 0.009 |
| Pectolinarigenin | <LOQ | <LOQ |
| Isosakuranetin | n.d. | <LOQ |
| Unknown flavonoid | 60.3 ± 0.1 | 125.8 ± 0.5 |
n.d.: non-detected; LOQ: Limit of quantification.
Figure 5Comparison of antioxidant activities by two methods (DPPH and ABTS) in fresh and dry orange by-products extracts expressed in mg TE/g d.w. Different letters reported statistical significant differences.