| Literature DB >> 35425451 |
Yifang Gao1, Xueting Liu1, Wenqing Yang1, Xixi Li1, Mengru Li1, Fengjuan Li1.
Abstract
In order to explore novel blood pressure-regulating substances and fulfill the high-value utilization of various edible flowers, the inhibitory activities of aqueous solutions of 22 edible flower petals extracts on renin and angiotensin converting enzyme (ACE) were investigated. The results showed that almost all the aqueous sample extracts demonstrated an inhibition of renin and/or ACE. The Rosa rugosa Thunb. (IC50 = 25.13 and 60.00 μg mL-1) and Paeonia suffruticosa Andr. (IC50 = 50.54 and 292.47 μg mL-1) extracts showed prominent dual inhibitory activity against renin and ACE. The antioxidant activities and content of total phenols and flavonoids of the aqueous sample extracts were tested, because the oxidative damage of blood vessels is closely related to the occurrence and development of hypertension. The correlation between the contents of total phenolic substances and flavonoids, and the functional activities was analyzed. Renin and ACE inhibitory activities, DPPH and ABTS free radical scavenging capacity, and iron reduction ability of different sample extracts were significantly positively correlated with the total phenolic content (p <0.01), whereby the correlation coefficients were 0.87, 0.83, 0.93, 0.95, and 0.93 respectively. It was indicated that the aqueous phenolic compounds in Rosa rugosa Thunb and Paeonia suffruticosa Andr extracts tended to show stronger renin and ACE inhibitory activities, and exhibited a potential prospect for auxiliary blood pressure control. This journal is © The Royal Society of Chemistry.Entities:
Year: 2022 PMID: 35425451 PMCID: PMC8981010 DOI: 10.1039/d1ra08978a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
The number and manufacturer of the experimental materials
| Number | Name | Manufacturer |
|---|---|---|
| 1 |
| Fujian Zhifu Ecological Agriculture Development Co., Ltd. (sub packaging) |
| 2 |
| Fujian Zhifu Ecological Agriculture Development Co., Ltd. (sub packaging) |
| 3 |
| Wuhu Dongfang Tea Co., Ltd |
| 4 |
| Fujian Zhifu Ecological Agriculture Development Co., Ltd. (sub packaging) |
| 5 |
| Wuhu Dongfang Tea Co., Ltd |
| 6 |
| Wuhu Dongfang Tea Co., Ltd |
| 7 |
| Hangzhou yifutang Tea Co., Ltd |
| 8 |
| Mingyuan bee Technology Co., Ltd |
| 9 |
| Mingyuan bee Technology Co., Ltd |
| 10 |
| Mingyuan bee Technology Co., Ltd |
| 11 |
| Mingyuan bee Technology Co., Ltd |
| 12 |
| Mingyuan bee Technology Co., Ltd |
| 13 |
| Mingyuan bee Technology Co., Ltd |
| 14 |
| Mingyuan bee Technology Co., Ltd |
| 15 |
| Mingyuan bee Technology Co., Ltd |
| 16 |
| Mingyuan bee Technology Co., Ltd |
| 17 |
| Mingyuan bee Technology Co., Ltd |
| 18 | Flower of | Mingyuan bee Technology Co., Ltd |
| 19 |
| Mingyuan bee Technology Co., Ltd |
| 20 |
| Mingyuan bee Technology Co., Ltd |
| 21 |
| Fujian Anxi YIZUN Tea Co., Ltd |
| 22 | Flower of | Fujian Anxi YIZUN Tea Co., Ltd |
Fig. 1Inhibition of renin and ACE by different aqueous sample extracts (the flowers represented by numbers are shown in Table 1).
Fig. 2Inhibition of renin and ACE by aqueous sample extracts at different concentrations.
Fig. 3Antioxidant capacity of different aqueous sample extracts (the flowers represented by numbers are shown in Table 1).
Correlation analysis between the activities and contents of total phenols and flavonoids of different aqueous samples extracts
| Pearson correlation | Renin | ACE | DPPH | ABTS | FRAP | TPC | TF |
|---|---|---|---|---|---|---|---|
| Renin | 1 | ||||||
| ACE | 0.78(**) | 1 | |||||
| DPPH | 0.85(**) | 0.76(**) | 1 | ||||
| ABTS | 0.90(**) | 0.79(**) | 0.99(**) | 1 | |||
| FRAP | 0.72(**) | 0.64 | 0.93(**) | 0.94(**) | 1 | ||
| TPC | 0.87(**) | 0.83(**) | 0.93(**) | 0.95(**) | 0.93(**) | 1 | |
| TF | 0.000 | 0.016 | 0.43(*) | 0.35 | 0.57(**) | 0.391 | 1 |
Fig. 4Contents of total phenols and flavonoids in different aqueous sample extracts (The flowers represented by numbers are shown in Table 1).