| Literature DB >> 22853321 |
Hweiyan Tsai1, Hweiwen Deng, Shangheng Tsai, Yahsien Hsu.
Abstract
BACKGROUND: Buckwheat flour and buckwheat sprouts possess antioxidant properties, and previous studies have reported on buckwheat flour displaying an inhibitory activity for angiotensin-I converting enzyme (ACE). Information is lacking on the bioactivity of other parts of the buckwheat, such as the seed hulls and plant stalks. This study investigates the ACE inhibitory activity and antioxidant activity of various parts of 2 types of buckwheat, namely, common buckwheat (Fagopyrum esculentum Moench) and tartary buckwheat (Fagopyrum tataricum Gaertn).Entities:
Year: 2012 PMID: 22853321 PMCID: PMC3485629 DOI: 10.1186/1752-153X-6-78
Source DB: PubMed Journal: Chem Cent J ISSN: 1752-153X Impact factor: 4.215
The ICof varied extracts for ACE inhibition
| 1 | Groats, common | Deionized water | 283 (±20) | 0.30 |
| 2 | Groats, Tartary | Deionized water | 320 (±17) | 0.27 |
| 3 | Groats, common | 20%(v/v) ethanol | 218 (±11) | 0.39 |
| 4 | Groats, Tartary | 20%(v/v) ethanol | 237 (±35) | 0.36 |
| 5 | Groats, common | 50%(v/v) ethanol | 286 (±1) | 0.30 |
| 6 | Groats, Tatary | 50%(v/v) ethanol | 185 (±5) | 0.46 |
| 7 | Plants, common | Deionized water | 629 (±71) | 0.14 |
| 8 | Plants, Tatary | Deionized water | 989a | 0.09 |
| 9 | Plants, common | 20%(v/v) ethanol | 646 (±71) | 0.13 |
| 10 | Plants, Tatary | 20%(v/v) ethanol | 895a | 0.10 |
| 11 | Plants, common | 50%(v/v) ethanol | 331 (±3) | 0.26 |
| 12 | Plants, Tatary | 50%(v/v) ethanol | 313 (±18) | 0.27 |
| 13 | Hulls, common | Deionized water | 424 (±35) | 0.20 |
| 14 | Hulls, Tatary | Deionized water | 393 (±40) | 0.22 |
| 15 | Hulls, common | 20%(v/v) ethanol | 117 (±2) | 0.74 |
| 16 | Hulls, Tatary | 20%(v/v) ethanol | 168 (±19) | 0.51 |
| 17 | Hulls, common | 50%(v/v) ethanol | 30 (±2) | 2.87 |
| 18 | Hulls, Tatary | 50%(v/v) ethanol | 141 (±13) | 0.61 |
| control | captopril | | 0.0019 | 45263 |
| | quercetin | | 39 | 2.21 |
| rutin | 86 | 1 |
a: The concentration of IC50 is greater than the maximum dissoluble amount. Data were calculated from the linear regression analysis of logarithmic plots.
Figure 1Dose–response lines for rutin (△) and quercetin (○) solutions. Three replicates (n = 3) were performed for each concentration.
Figure 2The equivalent antioxidant activity of various extracts (n = 3). GC0 is groats of common buckwheat extracted with deionized water. GT0 is groats of tartary buckwheat extracted with deionized water. GC2 is groats of common buckwheat extracted with 20% ethanol. GT2 is groats of tartary buckwheat extracted with 20% ethanol. GC5 is groats of common buckwheat extracted with 50% ethanol. GT5 is groats of tartary buckwheat extracted with 50% ethanol. PC0 is plants of common buckwheat extracted with deionized water. PT0 is plants of tartary buckwheat extracted with deionized water. PC2 is plants of common buckwheat extracted with 20% ethanol. PT2 is plants of tartary buckwheat extracted with 20% ethanol. PC5 is plants of common buckwheat extracted with 50% ethanol. PT5 is plants of tartary buckwheat extracted with 50% ethanol. HC0 is hulls of common buckwheat extracted with deionized water. HT0 is hulls of tartary buckwheat extracted with deionized water. HC2 is hulls of common buckwheat extracted with 20% ethanol. HT2 is hulls of tartary buckwheat extracted with 20% ethanol. HC5 is hulls of common buckwheat extracted with 50% ethanol. HT5 is hulls of tartary buckwheat extracted with 50% ethanol.
Figure 3Correlation plots of equivalent antioxidant activity and ACE inhibitory activity of 18 samples. The equivalent activities were based on the activity of pure rutin.