| Literature DB >> 28085103 |
Norma Elizabeth Moreno-Anzúrez1, Silvia Marquina2, Laura Alvarez3, Alejandro Zamilpa4, Patricia Castillo-España5, Irene Perea-Arango6, Pilar Nicasio Torres7, Maribel Herrera-Ruiz8, Edgar Rolando Díaz García9, Jaime Tortoriello García10, Jesús Arellano-García11.
Abstract
The genetically transformed hairy root line LRT 7.31 obtained by infecting leaf explants of Lopezia racemosa Cav with the Agrobacterium rhizogenes strain ATCC15834/pTDT, was evaluated to identify the anti-inflammatory and cytotoxic compounds reported previously for the wild plant. After several subcultures of the LRT 7.31 line, the bio-guided fractionation of the dichloromethane-methanol (1:1) extract obtained from dry biomass afforded a fraction that showed important in vivo anti-inflammatory, and in vitro cytotoxic activities. Chemical separation of the active fraction allowed us to identify the triterpenes ursolic (1) and oleanolic (2) acids, and (23R)-2α,3β,23,28-tetrahydroxy-14,15-dehydrocampesterol (3) as the anti-inflammatory principles of the active fraction. A new molecule 3 was characterized by spectroscopic analysis of its tetraacetate derivative 3a. This compound was not described in previous reports of callus cultures, in vitro germinated seedlings and wild plant extracts of whole L. racemosa plants. The anti-inflammatory and cytotoxic activities displayed by the fraction are associated to the presence of compounds 1-3. The present study reports the obtaining of the transformed hairy roots, the bioguided isolation of the new molecule 3, and its structure characterization.Entities:
Keywords: Agrobacterium rhizogenes; Lopezia racemosa; anti-inflammatory; cytotoxic; genetic transformation; hairy roots
Mesh:
Substances:
Year: 2017 PMID: 28085103 PMCID: PMC6155711 DOI: 10.3390/molecules22010118
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Photomicrographs (5×) of genetically transformed hairy roots of Lopezia racemosa. The same field observed under epifluorescence microscopy: (a) observed under white light; (b) observed under green light (550 nm). On the left upper part (arrows) non-fluorescent hairy roots derived from the same explant can be observed; (c) Lopezia racemosa wild plant. Scale bars: a and b: 1.0 mm; c: 1.0 cm.
Figure 2PCR products of transformed hairy roots derived from L. racemosa. (a) Amplifying a 490 bp fragment of the rolC gen of A. rhizogenes ATCC 15834. Lane 1: 1 Kb DNA marker; lane 2: Positive control, PCR product from total DNA of A. rhizogenes ATCC 15834; Lane 3: Negative control, PCR product from total DNA of non-transformed roots of L. racemosa; lanes 4–8: PCR products from total DNA of 5 hairy root lines derived from L. racemosa, (lines 7.31, 6.14, 6.4, 3.1 and 17.6, respectively); (b) Amplifying a 338 bp fragment of the virD gen of A. rhizogenes ATCC 15834. Lane 1: 1 Kb DNA marker; lane 2: Positive control, PCR product from total DNA of A. rhizogenes ATCC 15834; lane 3: Negative control, PCR product from total DNA of non-transformed roots of L. racemosa; lanes 4–8: PCR products from total DNA of 5 hairy root lines derived from L. racemosa.
Cytotoxicity (IC50) of CH2Cl2:CH3OH crude extract and fraction C1F3 from hairy root line LRT 7.31 and wild plant extract of L. racemosa.
| Sample Origin | Cancer Cell Lines | |||
|---|---|---|---|---|
| HeLa (μg/mL) | HCT-15 (μg/mL) | OVCAR (μg/mL) | KB (μg/mL) | |
| Crude extract | 63.97 ± 0.09 | 3.14 ± 0.03 | 0.57 ± 0.01 | >100 |
| C1F3 | 0.00089 ± 0.000098 | 3.32 ± 0.03 | 3.069 ± 0.01 | 5.39 ± 0.12 |
| Wild plants | >100 | 5.6 ± 0.11 | 0.08 ± 0.03 | >100 |
HeLa: Cervical carcinoma; HCT-15: Colon adenocarcinoma; OVCAR: Ovary carcinoma; KB: Laryngeal carcinoma.
Figure 3HPLC profiles of (a) CH2Cl2:CH3OH extract and (b) Fraction C1F3 obtained from hairy root line LRT 7.31.
Figure 4Chemical structure of compounds 1, 1a, 2, 2a, 3 and 3a isolated from line LRT 7.31 hairy roots of L. racemosa.
1H (400 MHz) and 13C (100 MHz) NMR data for compound 3a (acetone-d).
| Position | δH | δC | Type |
|---|---|---|---|
| 1 | 1.31, 2H, m | 39.92 | CH2 |
| 2 | 5.14, 1H, ddd (4.4, 10.4, 11.6) | 70.29 | CH |
| 3 | 5.05, 1H, ddd (3.2, 10.4) | 75.55 | CH |
| 4 | 1.76, 2H, m | 31.43 | CH2 |
| 5 | ------------ | 139.52 | C |
| 6 | 5.24, 1H, t (6.8) | 122.72 | CH |
| 7 | 1.74, 2H, m | 28.83 | CH2 |
| 8 | 1.82, 1H, m | 38.63 | CH |
| 9 | 1.68, 1H, m | 48.45 | CH |
| 10 | ------------ | 31.38 | C |
| 11 | 1.38, 2H, m | 23.86 | CH2 |
| 12 | 1.32, 2H,m | 34.53 | CH2 |
| 13 | ---------- | 46.84 | C |
| 14 | ---------- | 145.19 | C |
| 15 | 5.22, 1H,t (7.2) | 125.89 | CH |
| 16 | 1.72, 2H, m | 33.46 | CH2 |
| 17 | 1.72, 1H, m | 53.96 | CH |
| 18 | 1.16, 3H, s | 24.14 | CH3 |
| 19 | 1.21, 3H, s | 24.24 | CH3 |
| 20 | 1.44, 1H, c | 33.14 | CH |
| 21 | 0.81, 3H, d (6.4) | 17.72 | CH3 |
| 22 | 1.38, 2H, m | 37.65 | CH2 |
| 23 | 5.05, 1H, ddd (3.2, 10.4) | 75.55 | CH |
| 24 | 1.24, 1H, m | 44.41 | CH |
| 25 | 1.76, 1H, m | 23.79 | CH |
| 26 | 0.87, 3H, d, (7.6) | 17.43 | CH3 |
| 27 | 0.87, 3H, d (7.6) | 17.58 | CH3 |
| 28 | 3.80, 1H, dd, (3.6, 11.6) 3.55, 1H, dd, (1.2, 12) | 65.93 | CH2 |
| CH3-CO- | 1.93, 3H, s | 20.77 | CH3 |
| 1.93, 3H, s | 20.80 | CH3 | |
| 1.99, 3H, s | 21.02 | CH3 | |
| 2.02, 3H, s | 21.53 | CH3 | |
| CH3-CO- | 170.42 | C | |
| 170.54 | C | ||
| 170.54 | C | ||
| 170.72 | C |
Figure 5Key HMBC correlations of derivative 3a.