| Literature DB >> 26516905 |
Fangbo Xia1, Yu Zhong2, Mengqiu Li3, Qi Chang4, Yonghong Liao5, Xinmin Liu6, Ruile Pan7.
Abstract
Okra (Abelmoschus esculentus (L.) Moench), a healthy vegetable, is widely spread in tropical and subtropical areas. Previous studies have proven that okra pods possess anti-fatigue activity, and the aim of this research is to clarify the anti-fatigue constituents. To achieve this, we divided okra pods (OPD) into seeds (OSD) and skins (OSK), and compared the contents of total polysaccharides, total polyphenols, total flavonoids, isoquercitrin, and quercetin-3-O-gentiobiose and the antioxidant activity in vitro and anti-fatigue activity in vivo between OSD and OSK. The contents of total polyphenols and total polysaccharides were 29.5% and 14.8% in OSD and 1.25% and 43.1% in OSK, respectively. Total flavonoids, isoquercitrin and quercetin-3-O-gentiobiose (5.35%, 2.067% and 2.741%, respectively) were only detected in OSD. Antioxidant assays, including 1-diphenyl-2-picrylhydrazyl (DPPH) scavenging, ferric reducing antioxidant power (FRAP) and reducing power test, and weight-loaded swimming test showed OSD possessed significant antioxidant and anti-fatigue effects. Moreover, biochemical determination revealed that that anti-fatigue activity of OSD is caused by reducing the levels of blood lactic acid (BLA) and urea nitrogen (BUN), enhancing hepatic glycogen storage and promoting antioxidant ability by lowering malondialdehyde (MDA) level and increasing superoxide dismutase (SOD) and glutathione peroxidase (GSH-PX) levels. These results proved okra seeds were the anti-fatigue part of okra pods and polyphenols and flavonoids were active constituents.Entities:
Keywords: anti-fatigue; antioxidant; okra; polyphenols.
Mesh:
Substances:
Year: 2015 PMID: 26516905 PMCID: PMC4632455 DOI: 10.3390/nu7105435
Source DB: PubMed Journal: Nutrients ISSN: 2072-6643 Impact factor: 5.717
Contents of total flavonoids (TF), total polyphenols (TP), total polysaccharides (TPS), isoquercitrin and quercetin-3-O-gentiobiose in okra skins (OSK), seeds (OSD) and pods (OPD).
| Sample | OSD | OSK | OPD |
|---|---|---|---|
| TF (%) | 5.35 | ~ | 1.02 |
| TP (%) | 29.5 | 1.25 | 6.73 |
| TPS (%) | 14.8 | 43.06 | 38.65 |
| Isoquercitrin (%) | 2.067 | ~ | 0.395 |
| Quercetin-3-O-gentiobiose (%) | 2.741 | ~ | 0.541 |
All values are the mean of triplicate measurements.
Figure 1HPLC (High performance liquid chromatography) Chromatograms for okra seeds (OSD), pods (OPD) and skins (OSK): (A) chromatogram for OSD; (B) chromatogram for OPD; and (C) chromatogram for OSK; 1: quercetin-3-O-gentiobiose; and 2: isoquercitrin.
In Vitro antioxidant activities of okra pods (OPD), skins (OSK) and seeds (OSD).
| OSD (μmol of TE/g) | OSK *(μmol of TE/g) | OPD (μmol of TE/g) | |
|---|---|---|---|
| DPPH | 1585.48 ± 139.42 | ~ | 95.30 ± 12.02 |
| FRAP | 1429.80 ± 68.53 | ~ | 76.7 ± 5.32 |
| Reducing power | 2678.45 ± 148.55 | 77.98 ± 7.3 | 484.33 ± 29.05 |
Values are expressed as mean ± standard deviations, all the measurements were taken in triplicate; * OSK did not show antioxidant activity in 1-diphenyl-2-picrylhydrazyl (DPPH) and ferric reducing antioxidant power (FRAP).
Figure 2Effects of okra pods (OPD), skins (OSK) and seeds (OSD) on locomotor activities of mice. Values are expressed as mean ± standard error of mean (n = 10–12); ** p < 0.01 compared to control group.
Figure 3Effects of okra pods (OPD), skins (OSK) and seeds (OSD) on the weight-loaded swimming time of mice. Values are expressed as mean ± standard error of mean (n = 11–12); * p < 0.05 and ** p < 0.01 compared to control group; a: p < 0.05 compared to the low dose group; b: p < 0.05 compared to the middle dose group.
Effect of okra seeds (OSD) on blood lactic acid (BLA) and urea nitrogen (BUN) contents in serum and hepatic glycogen (HG) content in liver of mice after weight-loaded swimming test.
| Control Group | OSD Treated Groups | |||
|---|---|---|---|---|
| water | 0.15 (g/kg) | 0.3 (g/kg) | 0.6 (g/kg) | |
| 11.24 ± 0.4 | 9.76 ± 0.5 * | 9.46 ± 0.5 * | 8.13 ± 0.4 ** | |
| 10.72 ± 0.4 | 7.35 ± 0.3 ** | 7.13 ± 0.4 ** | 6.98 ± 0.3 ** | |
| 9.81 ± 0.9 | 17.3 ± 2.56 * | 18.8 ± 2.43 ** | 14.76 ± 2.02 * | |
Values are expressed as mean ± standard error of mean (n = 10–12); * p < 0.05 and ** p < 0.01 compared with the control group in the same row.
Effect of okra seeds (OSD) on malondialdehyde (MDA) content and glutathione peroxidase (GSH-PX), Superoxide Dismutase (SOD) activities in livers of mice after weight-loaded swimming test.
| Control Group | OSD Treated Groups | |||
|---|---|---|---|---|
| water | 0.15 g/kg | 0.3 g/kg | 0.6 g/kg | |
| 0.772 ± 0.10 | 0.501 ± 0.02 ** | 0.487 ± 0.03 ** | 0.451 ± 0.03 ** | |
| 113 ± 3.5 | 128 ± 4.2 ** | 137 ± 3.7 ** | 159 ± 4.0 ** | |
| 63.2 ± 3.6 | 80.4 ± 5.3 * | 86.3 ± 4.8 ** | 98.5 ± 5.6 ** | |
Values are expressed as mean ± standard error of mean (n = 10–12); * p < 0.05 and ** p < 0.01 compared with control group in the same row.