| Literature DB >> 33019644 |
Zhen Li1, Zongcai Tu1,2, Hui Wang1, Lu Zhang2.
Abstract
Ceratophyllum demersum L. (CDL) is a traditional Chinese herb to treat many diseases, but research on its anti-diabetic activity is not available. In this research, the α-glucosidase inhibitory ability and phytochemical constituents of CDL extract were firstly studied. Optimal ultrasound-assisted extraction conditions for α-glucosidase inhibitors (AGIs) were optimized by single factor experiment and response surface methodology (RSM), which was confirmed as 70% methanol, liquid-to-solid ratio of 43 (mL/g), extraction time of 54 min, ultrasonic power of 350 W, and extraction temperature of 40 °C. The lowest IC50 value for α-glucosidase inhibition was 0.15 mg dried material/mL (mg DM/mL), which was much lower than that of acarbose (IC50 value of 0.64 mg DM/mL). In total, 80 compounds including 8 organic acids, 11 phenolic acids, 25 flavonoids, 21 fatty acids, and 15 others were identified or tentatively identified from CDL extract by HPLC-QTOF-MS/MS analysis. The results suggested that CDL could be a potential source of α-glucosidase inhibitors. It can also provide useful phytochemical information for research into other bioactivities.Entities:
Keywords: Ceratophyllum demersum L.; phytochemical profile; response surface methodology; α-glucosidase inhibitors
Mesh:
Substances:
Year: 2020 PMID: 33019644 PMCID: PMC7582508 DOI: 10.3390/molecules25194507
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1α-Glucosidase inhibition (a), total phenolic and total flavonoid content (b), of Ceratophyllum demersum L. (CDL) extracts prepared with different concentrations of methanol aqueous solvent.
Figure 2Effects of liquid-to-solid ratio (a), ultrasonic power (b), extraction time (c), extraction temperature (d), on the α-glucosidase inhibitory ability (IC50) of CDL extracts.
Box—Behnken design for extraction of α-glucosidase inhibitors (AGIs) from CDL by ultrasonic-assisted extraction (UAE) with the observed responses.
| Std no | A: Liquid-to-Solid Ratio (mL/g) | B: Power (W) | C: Time (min) | Response: IC50 (µg DM/mL) |
|---|---|---|---|---|
| 1 | 40:1 | 300 | 40 | 159.20 |
| 2 | 30:1 | 350 | 40 | 182.30 |
| 3 | 40:1 | 350 | 80 | 189.97 |
| 4 | 40:1 | 350 | 60 | 149.14 |
| 5 | 50:1 | 300 | 60 | 160.40 |
| 6 | 30:1 | 400 | 60 | 169.88 |
| 7 | 40:1 | 400 | 40 | 172.22 |
| 8 | 50:1 | 400 | 60 | 159.50 |
| 9 | 40:1 | 350 | 60 | 146.90 |
| 10 | 30:1 | 300 | 60 | 172.71 |
| 11 | 50:1 | 350 | 80 | 198.20 |
| 12 | 40:1 | 400 | 80 | 187.48 |
| 13 | 50:1 | 350 | 40 | 156.40 |
| 14 | 40:1 | 350 | 60 | 148.13 |
| 15 | 40:1 | 350 | 60 | 142.26 |
| 16 | 40:1 | 300 | 80 | 183.31 |
| 17 | 40:1 | 350 | 60 | 146.47 |
ANOVA statistics for the α-glucosidase inhibitory activity of extracts.
| Source | Sum of Squares | df | Mean Square | F Value | Significance | |
|---|---|---|---|---|---|---|
| Model | 4764.62 | 9 | 529.40 | 37.69 | <0.0001 | ** |
| A-liquid-to-solid ratio | 203.74 | 1 | 203.74 | 14.50 | 0.0066 | ** |
| B-Power | 22.65 | 1 | 22.65 | 1.61 | 0.2447 | |
| C-Time | 986.78 | 1 | 986.78 | 70.25 | <0.0001 | ** |
| A2 | 668.94 | 1 | 668.94 | 47.62 | 0.0002 | ** |
| B2 | 174.45 | 1 | 174.45 | 12.42 | 0.0097 | ** |
| C2 | 2138.47 | 1 | 2138.47 | 152.25 | <0.0001 | ** |
| AB | 0.94 | 1 | 0.94 | 0.067 | 0.8034 | |
| AC | 291.45 | 1 | 291.45 | 20.75 | 0.0026 | ** |
| BC | 19.55 | 1 | 19.55 | 1.39 | 0.2767 | |
| Residual | 98.32 | 7 | 14.05 | |||
| Lack of Fit | 70.57 | 3 | 23.52 | 3.39 | 0.1345 | |
| Pure Error | 27.75 | 4 | 6.94 | |||
| Total | 4862.94 | 16 | ||||
| R2 = 0.9798 R2Adj = 0.9538 | ||||||
Note: ** indicates significant difference at 0.01 level.
Figure 33D surface plot and contour map showing the interaction effects of (a) liquid-to-solid ratio and power, (b) liquid-to-solid ratio and time, (c) time and power on IC50.
Figure 4The base peak chromatogram of CDL extract under negative mode.
The identified or tentatively identified compounds in 70% methanol extract of CDL by HPLC-QTOF-MS/MS under negative ion mode.
| No. | Rt (min) | Found at | Expected at | Error (ppm) | Molecular Formula | MS/MS | Proposed Compounds |
|---|---|---|---|---|---|---|---|
| Organic acids | |||||||
| 3 | 4.53 | 195.0514 | 195.0510 | 1.9 | C6H12O7 | - | Gluconic acid |
| 5 | 5.57 | 133.0148 | 133.0142 | 4.2 | C4H6O5 | 115.002[M − H − H2O]− | Malic acid |
| 10 | 6.75 | 191.0200 | 191.0197 | 1.4 | C6H8O7 | 111.0083[M − H − CO2 − 2H2O]− | Citric acid |
| 18 | 9.07 | 163.0404 | 163.0401 | 2.2 | C9H8O3 | 119.0487[M − H − CO2]− | |
| 19 | 9.08 | 325.0937 | 325.0938 | 0.3 | C15H18O8 | 163.0394[M − H − hexose]−, 119.0499[M − H − hexose − CO2]− | Coumaroyl hexose |
| 20 | 9.32 | 325.0939 | 325.0942 | −0.8 | C15H18O8 | 145.0927[M − H − hexose − H2O]−, 117.0342[M − H − hexose − H2O − CO]− | Coumaroyl hexose |
| 24 | 9.69 | 325.0941 | 325.0939 | 0.7 | C15H18O8 | 145.0927[M − H − hexose − H2O]−, 117.0342[M − H − hexose − H2O − CO]− | Coumaroyl hexose |
| 49 | 14.92 | 187.0984 | 187.0982 | 1.0 | C9H16O4 | 125.0970[M − H − C2H2O2]− | Azelaic acid |
| Phenols acids and derivatives | |||||||
| 9 | 6.31 | 329.0879 | 329.0878 | 0.3 | C14H18O9 | 167.0341[M − H − glucose]−, 152.0120[M − H − C7H13O5]−, 123.0438[M − H − C7H10O7]−, 108.0210[M − H − C8H13O7]− | Vanilloyl glucoside |
| 11 | 7.81 | 341.0884 | 341.0883 | 0.4 | C15H18O9 | 179.0344[M − H − hexose]−, 161.0244[M − H − C6H12O6]−, 133.0293[M − H − C7H12O7]−, | Caffeoyl-hexose |
| 13 | 8.18 | 517.1584 | 517.1563 | 4.2 | C22H30O14 | 193.0506[ferulic acid − H]− | Feruloyl sucrose |
| 14 | 8.44 | 223.0621 | 223.0612 | 4.2 | C11H12O5 | 208.0322[M − H − CH3]−, | Sinapinic acid |
| 15 | 8.44 | 385.1159 | 385.1140 | 4.8 | C17H22O10 | 223.0606[M − H − glucose]−, 208.0365[M − H − C7H13O5]−, | Sinapoylglucose |
| 16 | 8.66 | 341.0886 | 341.0881 | 1.1 | C15H18O9 | 179.0354[M − H − hexose]−, 135.0449[M − H − C7H10O7]− | Caffeoyl hexose |
| 23 | 9.51 | 355.1052 | 355.1035 | −0.2 | C16H20O9 | 193.0511[M − glucose]−, 178.0272[M − H − C7H13O5]−, 149.0606[M − H − C7H10O7]−, 134.0372[M − H − C8H13O7]− | Feruloyl glucose |
| 25 | 9.84 | 385.1158 | 385.1140 | 4.7 | C17H22O10 | 223.0606[M − H − glucose]−, 208.0365[M − H − C7H13O5]−, | Sinapoylglucose |
| 26 | 10.28 | 183.0307 | 183.0299 | 4.3 | C8H8O5 | 124.0158[M − H − C2H3O2]− | Methyl gallate |
| 42 | 13.05 | 197.0465 | 197.0455 | 5.0 | C9H10O5 | 169.0138[M − H − C2H4]−, 125.0235[M − H − C3H4O2]−, 124.0163[M − H − C3H5O2]− | Ethyl gallate |
| 47 | 13.84 | 193.0507 | 193.0506 | 0.3 | C10H10O4 | 178.0253[M − H − CH3]−, 134.0368[M − H − CH3 − CO2]−, 133.0287[M − H − C4H4O2]− | Ferulic acid |
| Flavonoids | |||||||
| 17 | 8.85 | 577.1378 | 577.1315 | 4.7 | C30H26O12 | 289.0720[(Epi) catechin − H]− | Procyanidin dimmer |
| 21 | 9.32 | 401.1471 | 401.1453 | 4.5 | C18H26O10 | 355.1037[M − H − H2O − CO]−, 269.1040[apigenin − H]−, 223.0582[M − H − C7H14O5]−, 161.0448[M − H − C9H20O7]−, | Apigenin pentose |
| 22 | 9.41 | 289.0724 | 289.0718 | 2.3 | C15H14O6 | 245.0782[M − H − CO2]−, 137.0234[M − H − C8H8O3]−, | (Epi)catechin |
| 27 | 10.28 | 289.0722 | 289.0718 | 1.7 | C15H14O6 | 245.0782[M − H − CO2]−, 137.0234[M − H − C8H8O3]−, | (Epi)catechin |
| 28 | 10.50 | 463.0900 | 463.0898 | 0.5 | C21H20O12 | 463.0898[M − H]−, | Quercetin-3- |
| 30 | 10.85 | 479.0842 | 479.0831 | 2.2 | C21H20O13 | 259.0262[M − H − C8H12O7]− | Myricetin-3- |
| 32 | 11.12 | 609.1495 | 609.1490 | 0.5 | C27H30O16 | 301.0357[M − H − rutinose]− | Quercetin-3- |
| 33 | 11.14 | 593.1549 | 593.1546 | 0.5 | C27H30O15 | 285.0411[M − H − rutinose]−, 284.0320[M − H − C12H21O9]−, 151.0027[M − H − rutinose − C8H5O]− | Kaempferol-3- |
| 34 | 11.93 | 447.0960 | 447.0959 | −0.1 | C21H20O11 | 447.0963[M − H]−, | Luteolin-7- |
| 35 | 11.93 | 493.1007 | 493.0988 | 3.9 | C22H22O13 | 331.0465[M − H − hexose]−, 315.0157[M − H − C6H10O6]− | Laricitrin-3- |
| 36 | 12.05 | 463.0901 | 463.0898 | 0.5 | C21H20O12 | 301.0363[M − H − hexose]−, 300.0282[M − H − C6H11O5]− | Quercetin-3- |
| 37 | 12.23 | 577.1621 | 577.1621 | 0.0 | C27H30O14 | 269.0459[M − H − rutinose]−, 268.0375[M − H − C12H21O9]− | Apigenin-7- |
| 38 | 12.38 | 579.1751 | 579.1743 | 1,4 | C27H32O14 | 271.0622[M − H − C12H20O9]−, 151.0035[M − H − C20H28O10]− | Naringin |
| 40 | 12.86 | 507.1174 | 507.1176 | −0.4 | C23H24O13 | 345.0619[M − H − hexose]−, 344.0553[M − H − C6H11O5]−, 329.0309[M − H − C6H10O6]−, 273.0416[M − H − C8H10O8]− | Syringetin-3- |
| 41 | 12.98 | 447.0951 | 447.0953 | −0.4 | C21H20O11 | 285.0481[M − H − hexose]−, 284.0339[M − H − C6H11O5]−, 227.0361[M − H − C8H12O7]− | Kaempferol-3- |
| 43 | 13.25 | 431.1000 | 431.0980 | 3.7 | C21H20O10 | 431.0983[M − H]−, | Apigenin-7- |
| 44 | 13.38 | 461.1095 | 461.1089 | 1.2 | C22H22O11 | 446.0876[M − H − CH3]−, 299.0553[M − H − hexoside]−, 298.0487[M − H − C6H11O5]−, 283.0249[M − H − C6H10O6]−, 255.0305[M − H − C8H10O7]− | Chrysoeriol- |
| 45 | 13.60 | 433.1157 | 433.1140 | 3.8 | C21H22O10 | 271.0622[M − H − glucose]−, 151.0029[M − H − C14H18O6], 119.0493[M − H − C13H14O9]− | Naringenin-7- |
| 46 | 13.84 | 477.0959 | 477.0960 | −0.1 | C21H20O11 | 285.0412[M − H − hexoside]− | Kaempferol-3- |
| 48 | 14.02 | 463.0918 | 463.0908 | 2.2 | C21H20O12 | 301.0363[M − H − hexoside]− | Quercetin-3- |
| 50 | 15.34 | 301.0367 | 301.0354 | 4.6 | C15H10O7 | 301.0363[M − H]−, 151.0027[M − H − C8H8O3]−, 149.0240[M − H − C8H10O3]− | Quercetin |
| 51 | 16.08 | 287.0565 | 287.0561 | 1.2 | C15H12O6 | 259.0611[M − H − CO]−, 177.0553[M − H − C5H4O3]−, 151.0028[M − H − C8H8O2]−, 125.0239[M − H − C9H6O3]− | Dihydrokaempferol |
| 54 | 17.56 | 285.0417 | 285.0415 | 0.8 | C15H10O6 | 285.0414[M − H]−, | Luteolin |
| 58 | 19.82 | 269.0466 | 269.0456 | 4.0 | C15H10O5 | 269.0455[M − H]−, | Apigenin |
| 59 | 20.11 | 271.0624 | 271.0612 | 4.5 | C15H12O5 | 151.0030[M − H − C8H8O]−, 119.0499[M − H − C7H4O4]− | Naringenin |
| Fatty acids | |||||||
| 55 | 18.08 | 327.2186 | 327.2183 | −1.3 | C18H32O5 | 291.1957[M − H − 2H2O]−, | Trihydroxy octadecadienoic acid |
| 56 | 18.29 | 327.2177 | 327.2181 | 4.5 | C18H32O5 | 291.1971[M − H − 2H2O]−, 229.1442[M − H − 3H2O − CO2]−, | Trihydroxy octadecadienoic acid |
| 57 | 19.25 | 329.2353 | 329.2351 | 0.7 | C18H34O5 | 211.1345[M − H − C6H14O2]−, 171.1029[M − H − C8H14O3]− | Trihydroxy octadecenoic acid |
| 60 | 22.09 | 309.2075 | 309.2071 | 1.2 | C18H30O4 | 291.1973[M − H − H2O]−, 265.2159[M − H − C3H8]−, | Hydroxy octadecatrienoic acid |
| 64 | 26.29 | 309.2075 | 309.2071 | 1.2 | C18H30O4 | 291.1973[M − H − H2O]−, 185.1188[M − H − C8H12O]−, 171.1031[M − H − C9H14O]− | Hydroxy octadecatrienoic acid |
| 65 | 26.80 | 309.2077 | 309.2071 | 1.8 | C18H30O4 | 209.1554[M − H − C6H12O]−, 197.1187[M − H − C7H12O]− | 11-Hydroperoxy octadecatrienoic acid |
| 66 | 27.08 | 309.2083 | 309.2071 | 4.0 | C18H30O4 | 291.1962[M − H − H2O]−, 185.1183[M − H − C8H12O]−, 171.1028[M − H − C9H14O]− | Hydroxy octadecatrienoic acid |
| 67 | 27.27 | 311.2240 | 311.2228 | 3.8 | C18H32O4 | 293.2107[M − H − H2O]−, 185.1172[M − H − C8H14O]−, 171.1023[M − H − C9H16O]− | 9-Hydroperoxy-octadecadienoic acid |
| 68 | 27.37 | 309.2086 | 309.2071 | 4.6 | C18H30O4 | 211.1333[M − H − C6H12O]−, 197.1180[M − H − C7H11 − H2O]− | 11-Hydroperoxy octadecatrienoic acid |
| 69 | 28.35 | 311.2241 | 311.2228 | 4.1 | C18H32O4 | 293.2138[M − H − H2O]−, 185.1181[M − H − C8H14O]−, 171.1030[M − H − C9H16O]− | 9-Hydroperoxy-octadecadienoic acid |
| 70 | 28.89 | 329.2234 | 329.2333 | 0.3 | C18H34O5 | 211.1351[M − H − C6H14O2]−, 171.1025[M − H − C8H14O3]− | Trihydroxy octadecenoic acid |
| 71 | 29.27 | 311.2239 | 311.2228 | 3.6 | C18H32O4 | 293.2133[M − H − H2O]−, 185.1183[M − H − C8H14O]−, 171.1029[M − H − C9H16O]− | 9-Hydroperoxy-octadecadienoic acid |
| 72 | 30.29 | 291.1980 | 291.1966 | 5.0 | C18H28O3 | 273.1857[M − H − H2O]−, 247.2078[M − H − H2O − CO2]− | 12-Oxo-phytodienoic acid |
| 73 | 30.56 | 559.3142 | 559.3124 | 3.3 | C28H48O11 | 277.2186[M − H − C10H18O9]− | Dirhamosyl linolenic acid |
| 74 | 30.85 | 293.2135 | 293.2122 | 4.3 | C18H30O3 | 275.2031[M − H − H2O]−, 183.1390[M − H − C7H10O]−, 171.1032[M − H − C9H14]−, | Hydroxy octadecatrienoic acid |
| 75 | 31.29 | 293.2135 | 293.2122 | 4.3 | C18H30O3 | 275.2016[M − H − H2O]−, 223.1335[M − H − C5H10]−, 195.1387[M − H − C6H10O]− | Hydroxy octadecatrienoic acid |
| 76 | 32.80 | 291.1977 | 291.1966 | 4.0 | C18H28O3 | 211.1334[M − H − C6H8]−, 197.1183[M − H − C7H10]−, 185.1177[M − H − C8H10]−, | Oxo-octadecatrienoic acid |
| 77 | 33.62 | 295.2283 | 295.2279 | 1.5 | C18H32O3 | 277.2158[M − H − H2O]−, 195.1387[M − H − C6H12O]−, 171.1026[M − H − C9H16]− | 9-Hydroxy-10, 12-octadecadienoic acid |
| 78 | 34.81 | 293.2135 | 293.2122 | 4.3 | C18H30O3 | 249.2215[M − H − CO2]−, 195.1385[M − H − C6H10O]−, 179.1071[M − H − C6H10O2]−, 113.0965[M − H − C11H16O2]− | Oxo-octadecadienoic acid |
| 79 | 35.48 | 293.3133 | 293.2122 | 3.6 | C18H30O3 | 185.1179[M − H − C8H12]−, 125.0961[M − H − C9H12O3]− | Oxo-octadecadienoic acid |
| 80 | 36.00 | 293.2123 | 293.2122 | 0.2 | C18H30O3 | 185.1157[M − H − C8H12]−, 125.0963[M − H − C9H12O3]− | Oxo-octadecadienoic acid |
| Others | |||||||
| 1 | 3.06 | 341.1101 | 341.1089 | 3.4 | C12H22O11 | 179.0595[M − H − C6H10O5]−, 161.0470[M − H − C6H12O6]−, 113.0229[M − H − C7H16O8]− | Sucrose |
| 2 | 3.06 | 179.0566 | 179.0561 | 2.6 | C6H12O6 | 113.0234[M − 2H2O − CH2OH]−, | Monose |
| 4 | 5.40 | 305.1598 | 305.1606 | −2.6 | C14H26O7 | 175.0250, 161.0230, 133.0296 | Unidentified |
| 6 | 5.80 | 137.0247 | 137.0244 | 2.0 | C7H6O3 | - | Protocatechualdehyde |
| 7 | 5.80 | 299.0783 | 299.0772 | 3.5 | C13H16O7 | 137.0270 | Unidentified |
| 8 | 6.31 | 305.1616 | 305.1606 | 3.4 | C14H26O7 | 289.1306, 272.1043, 247.1083, 148.0521, 134.0375 | Unidentified |
| 12 | 8.02 | 391.0828 | 391.0823 | 1.3 | C22H16O7 | 193.0513, 178.0272, 149.0605, 134.0374 | Unidentified |
| 29 | 10.85 | 177.0204 | 177.0201 | 1.8 | C9H6O4 | 177.0180[M − H]−, 149.0234[M − H − CO]−, 133.0285[M − H − CO2]−, 105.0336[M − H − C2O3]− | Dihydroxycoumarin |
| 31 | 11.12 | 431.1938 | 431.1935 | 0.6 | C20H32O10 | 385.1837, 223.1382, 205.1203, 163.1131, 119.0333, 113.0281, 101.0234 | Hydroxy-2,4,4-trimethyl-3-(3-oxobutyl)-2-cyclohexen-1-one glucoside |
| 39 | 12.46 | 723.5092 | 723.5089 | 0.4 | C41H72O10 | 677.5014, 659.4905, 550.4370, 451.3300, 433.316, 367.2732, 341.2932, 309.2213, 225.1609, 207.1497, 143.0814, 125.0709, | Unidentified |
| 52 | 16.62 | 193.0513 | 193.0508 | 2.4 | C10H10O4 | 161.0244, 133.0296 | Unidentified |
| 53 | 17.18 | 201.1145 | 201.1144 | 0.2 | C10H18O4 | 183.1026[M − H − H2O]−, 139.1128[M − H − H2O − CO2]− | Dibutyl oxalate |
| 61 | 23.00 | 307.1928 | 307.1915 | 4.4 | C18H28O4 | 235.1346[M − H − C5H12]−, 211.1343, 185.1188, 137.0966 | Dihydrocapsiate |
| 62 | 24.18 | 311.1878 | 311.1878 | −0.2 | C17H28O5 | 293.1750[M − H − H2O]−, 267.1966[M − H − CO2]− | Dihydroartemisinin ethyl ether |
| 63 | 25.37 | 305.1770 | 305.1758 | 4.0 | C18H26O4 | 249.1499, 135.0809 | Unidentified |
Figure 5Possible fragmentation pattern of coumaroyl hexose (a), sinapinic acid (b), catechin (c), quercetin-3-O-hexoside (d), apigenin (e), 11-hydroperoxy octadecatrienoic acid (f), 12-oxo-phytodienoic acid (g), and dihydroxycoumarin (h).
Independent variables and their levels used for Box—Behnken design.
| Factors | Coded Symbols | Levels | ||
|---|---|---|---|---|
| − 1 | 0 | 1 | ||
| Liquid-to-solid ratio (mL/g) | X1 | 30 | 40 | 50 |
| Power (W) | X2 | 40 | 60 | 80 |
| Time (min) | X3 | 300 | 350 | 400 |