| Literature DB >> 29048336 |
Mirtha Navarro1, Ileana Moreira2, Elizabeth Arnaez3, Silvia Quesada4, Gabriela Azofeifa5, Diego Alvarado6, Maria J Monagas7.
Abstract
The phenolic composition of aerial parts from Petiveria alliaceae L., Phyllanthus niruri L. and Senna reticulata Willd., species commonly used in Costa Rica as traditional medicines, was studied using UPLC-ESI-TQ-MS on enriched-phenolic extracts. Comparatively, higher values of total phenolic content (TPC), as measured by the Folin-Ciocalteau method, were observed for P. niruri extracts (328.8 gallic acid equivalents/g) than for S. reticulata (79.30 gallic acid equivalents/g) whereas P. alliaceae extract showed the lowest value (13.45 gallic acid equivalents/g). A total of 20 phenolic acids and proanthocyanidins were identified in the extracts, including hydroxybenzoic acids (benzoic, 4-hydroxybenzoic, gallic, prochatechuic, salicylic, syringic and vanillic acids); hydroxycinnamic acids (caffeic, ferulic, and p-coumaric acids); and flavan-3-ols monomers [(+)-catechin and (-)-epicatechin)]. Regarding proanthocyanidin oligomers, five procyanidin dimers (B1, B2, B3, B4, and B5) and one trimer (T2) are reported for the first time in P. niruri, as well as two propelargonidin dimers in S. reticulata. Additionally, P. niruri showed the highest antioxidant DPPH and ORAC values (IC50 of 6.4 μg/mL and 6.5 mmol TE/g respectively), followed by S. reticulata (IC50 of 72.9 μg/mL and 2.68 mmol TE/g respectively) and P. alliaceae extract (IC50 >1000 μg/mL and 1.32 mmol TE/g respectively). Finally, cytotoxicity and selectivity on gastric AGS and colon SW20 adenocarcinoma cell lines were evaluated and the best values were also found for P. niruri (SI = 2.8), followed by S. reticulata (SI = 2.5). Therefore, these results suggest that extracts containing higher proanthocyanidin content also show higher bioactivities. Significant positive correlation was found between TPC and ORAC (R² = 0.996) as well as between phenolic content as measured by UPLC-DAD and ORAC (R² = 0.990). These findings show evidence for the first time of the diversity of phenolic acids in P. alliaceae and S. reticulata, and the presence of proanthocyanidins as minor components in latter species. Of particular relevance is the occurrence of proanthocyanidin oligomers in phenolic extracts from P. niruri and their potential bioactivity.Entities:
Keywords: P. alliaceae; P. niruri; S. reticulata; TQ-ESI-MS; UPLC; antioxidant; cytotoxicity; mass spectrometry; proanthocyanidins
Year: 2017 PMID: 29048336 PMCID: PMC5750626 DOI: 10.3390/plants6040050
Source DB: PubMed Journal: Plants (Basel) ISSN: 2223-7747
Extraction yield and total phenolic content.
| Sample | Extraction Yield (%) 1 | Total Phenolic Content (TPC) (mg/g) 2,5 | Total Proanthocyanidin Contents (PRO) (mg/g) 3,5 |
|---|---|---|---|
| 5.03 | 13.45 a ± 0.46 | nd 4 | |
| 5.58 | 328.80 b ± 13.41 | 322.93 a ± 11.12 | |
| 6.53 | 79.30 c ± 4.09 | 22.35 b ± 1.64 |
1 g of extract/g of dry material expressed as %. 2 mg of gallic acid equivalent (GAE)/g extract. 3 mg of cyanidin chloride equivalent (CCE)/g extract. 4 nd = not detected. 5 Different superscript letters in the same column indicate differences are significant at p < 0.05.
Phenolic composition of P. alliaceae, P. niruri and S. reticulata extracts.
| Compounds | |||
|---|---|---|---|
| Concentration (µg/g Extract) | |||
| Benzoic acid | 158.4 ± 7.5 | nd | nd |
| Salicylic acid | 175.9 ± 2.4 | 61.2 ± 1.3 | 16.7 ± 0.1 |
| 4-Hydroxybenzoic acid | 28.1 ± 0.2 | 14.3 ± 0.1 | 80.9 ± 1.2 |
| Protocatechuic acid | 6.3 ± 0.2 | 192.4 ± 0.9 | 36.3 ± 0.3 |
| Gallic acid | 2.4 ± 0.0 | 763.3 ± 8.1 | 7.5 ± 0.3 |
| Vanillic acid | 12.1 ± 0.1 | 10.7 ± 0.2 | 49.6 ± 1.7 |
| Syringic acid | 9.2 ± 0.4 | nd | 25.0 ± 0.8 |
| 392.4 | 1041.9 | 216.0 | |
| 31.6 ± 0.4 | 13.5 ± 0.8 | 39.0 ± 0.9 | |
| Caffeic acid | 1.6 ± 0.0 | 25.0 ± 0.8 | 52.8 ± 0.6 |
| Ferulic acid | 47.5 ± 1.1 | 34.7 ± 1.1 | 372.5 ± 9.5 |
| 80.7 | 73.2 | 464.3 | |
| (+)-Catechin | nd | 186.6 ± 6.4 | 3.7 ± 0.1 |
| (−)-Epicatechin | nd | 331.7 ± 8.3 | 14.0 ± 0.1 |
| nd | 518.3 | 17.7 | |
| Procyanidin B1 | nd | 44.2 ± 1.5 | nd |
| Procyanidin B2 | nd | 73.0 ± 3.2 | nd |
| Procyanidin B3 | nd | 45.8 ± 1.6 | nd |
| Procyanidin B4 | nd | 74.0 ± 1.5 | nd |
| Procyanidin B5 | nd | 13.2 ± 0.3 | nd |
| nd | 250.2 | nd | |
| Propelargonidin dimer (5.03 min) | nd | nd | 4.9 ± 0.1 |
| Propelargonidin dimer (5.63 min) | nd | nd | 5.9 ± 0.2 |
| nd | nd | 10.8 | |
| Trimer T2 | 26.0 ± 0.6 | nd | |
| 26.0 | nd | ||
nd—not detected.
Figure 1General chemical structure of B-type proanthocyanidins: procyanidins (composed by (epi) catechin units) and propelargonidins (composed by (epi) afzelechin units).
Total phenolic contents (UPLC-DAD-ESI-TQ-MS analysis) and antioxidant activity.
| Sample | Total Phenolics UPLC 1 (µg/g Extract) | DPPH 2 IC50 (μg/mL) | ORAC 2 (mmol TE/mg Extract) |
|---|---|---|---|
| 473.0 | >1000 a | 1.32 a ± 0.11 | |
| 1909.6 | 6.40 b ± 0.10 | 6.50 b ± 0.15 | |
| 708.8 | 72.90 c ± 1.10 | 2.68 c ± 0.28 |
1 Σ = [hydroxybenzoic acids + hydroxycinnamic acids + flavan-3-ols monomers + procyanidin dimers + propelargonidin dimers + procyanidin trimers] contents (µg/g extract) (Table 2). 2 Different superscript letters in the same column indicate differences are significant at p < 0.05.
Cytotoxicity of extracts to gastric (AGS) and colon (SW620) adenocarcinoma cells as well as to control Vero cells.
| Sample | IC50 (µg/mL) | ||
|---|---|---|---|
| AGS 1 | SW620 1 | Vero 1 | |
| 106.5 a,* ± 7.9 (SI = 1.4) | 108.4 a,* ± 4.7 (SI = 1.4) | 151.5 a,+ ± 3.3 | |
| 145.2 b,* ± 8.2 (SI = 2.2) | 113.2 a,+ ± 4.3 (SI = 2.8) | 311.9 b,◊ ± 24 | |
| 208.4 c,* ± 8.9 (SI = 2.4) | 202.5 b,* ± 9.1 (SI = 2.5) | >500 c,+ | |
1 Different superscript letters in the same column indicate differences are significant at p < 0.05. 2 Different superscript signs in the same row indicate differences are significant at p < 0.05.
Figure 2Cytotoxicity dose-response curves of extract treatment on tumoral cell lines. (a) Petiveria alliacea, (b) P. niruri, (c) S. reticulate. Results represent the mean ± SE of triplicates of one representative experiment of each cell line.