| Literature DB >> 30486412 |
Luis Alberto Anguiano-Sevilla1, Eugenia Lugo-Cervantes2, Cynthia Ordaz-Pichardo3, Jorge Luis Rosas-Trigueros4, María Eugenia Jaramillo-Flores5.
Abstract
In this study, an ethanol extract of Agave lechuguilla was evaluated against six carcinogenic cell lines (HCT-15, MCF-7, PC-3, U-251, SK-LU-1 and K-562) with an inhibition of 75.7 ± 2.3% against the SK-LU-1 line. Based on the previous result, the extract was hydrolyzed and fractionated, to which the IC50 was determined; the cell line was more sensitive to the fractionated extract with an IC50 6.96 ± 0.15 µg/mL. Characterization by mass spectrometry showed the presence of kaempferol, quercetin and a flavonoid dimer formed by afzelechin-4β-8-quercetin, according to the generated fragmentation pattern. The fractionated extract presented cell death by apoptosis with 39.8% at 24 h. Molecular docking was performed with the molecules found to try to describe cell death by apoptosis through death receptors such as FasCD95, TNF-R1, DR4/5 and blocking signaling on the EGFR and K-Ras MAPK/ERK pathway, as well as through the intrinsic pathway activating tBID, which promotes the amplification of the apoptotic signal due to the activation of caspase-3, and consequently caspase-7. In addition to the activation of the IIb complex associated with cell death due to necroptosis.Entities:
Keywords: Agave lechuguilla; apoptosis; cytotoxic activity; mass spectrometry; molecular docking
Mesh:
Substances:
Year: 2018 PMID: 30486412 PMCID: PMC6321503 DOI: 10.3390/ijms19123765
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Concentrations of total polyphenols, total flavonoids and antioxidant capacity.
| Extract of | Total Polyphenols 1 | Total Flavonoids 2 | TEAC 3 | ORAC 3 |
|---|---|---|---|---|
| Ethanolic | 23.44 ± 1.47 | 19.62 ± 1.23 | 87.36 ± 3.57 | 1962.99 ± 211.86 |
| Hydrolyzed | 37.45 ± 3.57 | 3.08 ± 0.00 | 46.53 ± 0.72 | 1216.83 ± 4.88 |
| Fraction | 2.69 ± 0.12 | 1.47 ± 0.00 | 6.12 ± 0.91 | 49.20 ± 0.80 |
1 µg Eq gallic acid mg extract−1, 2 µg Eq quercetin mg extract−1, 3 µM Eq Trolox mg extract−1. Mean values ± SD of replicate samples analyzed in triplicate.
Ion assignation and formula condensed of metabolities in extracts from A. lechuguilla.
| Possible Molecule | Rt 1 | Ions Assignation | CF 2 | |
|---|---|---|---|---|
|
| ||||
| Tigogenin-glycoside or | 0.42 | 417.339 | [M + H] | C56H92O27 |
| Hecogenin-glycoside or | 0.56 | 431.336 | [M + H] | C56H90O28 |
| Kaempferol | 5.06 | 245.082 | [M − C2H2O + H] | C15H10O6 |
| Quercetin | 5.44 | 257.082 | [M − H2O − CO +H] | C15H10O7 |
| Diosgenin-glycoside or | 6.09 | 415.325 | [M + H] | C50H80O22 |
| Tigogenin-glycoside or | 6.34 | 417.342 | [M + H] | C56H92O27 |
| Tigogenin-glycoside or | 6.57 | 417.341 | [M + H] | C50H82O22 |
|
| ||||
| Unknow | 0.54 | 701.503 | ND | ND |
| Unknow | 0.68 | 701.503 | ND | ND |
| Kaempferol | 4.97 | 245.082 | [M − C2H2O + H] | C15H10O6 |
| Quercetin | 5.34 | 245.082 | [M − C2H2O2 + H] | C15H10O7 |
| Diosgenin or | 5.36 | 415.155 | [M + H] | C27H42O3 |
| Tigogenin or | 6.92 | 417.342 | [M + H] | C27H44O3 |
| Unknow | 7.12 | 449.326 | ND | ND |
| Biflavonoid (isomer) | 8.37 | 230.251 | [Quercetin − 2CO − H2O + H] | C30H22O12 |
| Biflavonoid (isomer) | 8.56 | 230.251 | [Quercetin − 2CO − H2O + H] | C30H22O12 |
| Hecogenin or | 10.01 | 431.296 | [M + H] | C27H42O4 |
|
| ||||
| Kaempferol | 4.99 | 245.082 | [M − C2H2O + H] | C15H10O6 |
| Quercetin | 5.33 | 257.085 | [M − H2O − CO + H] | C15H10O7 |
| Unknow | 6.48 | 269.086 | ND | ND |
| Biflavonoid (isomer) | 8.54 | 245.083 | [Quercetin − C2H2O2 + H] | C30H22O12 |
| Biflavonoid (isomer) | 8.88 | 245.083 | [Quercetin − C2H2O2 + H] | C30H22O12 |
1 Retention time in minutes; 2 CF, condensed formula; Afzelequin: 274 m/z; Hex: C6H10O5 Hexose 162 m/z; Pent: C5H8O4 Pentose 132 m/z; ND, Not determined. Supplementary materials (Figure S1–S22) show the interpretation of the mass spectra.
Figure 1Structure of flavonoids and biflavonoid dimer with numbers associated to in silico results. (a) Kaempferol 287 g/mol (b) Quercetin 302 g/mol, and (c) Biflavonoid (afzelequin 4β-8 quercetin), 574 g/mol.
Percentage of cellular inhibition of ethanolic extract of A. lechuguilla.
| Grow Inhibition 1 [%] | ||||||
|---|---|---|---|---|---|---|
| Control | HCT-15 | MCF-7 | PC-3 | U-251 | SK-LU-1 | K-562 |
| 1.2 ± 0.5 | 33.4 ± 3.6 | 10.5 ± 4.0 | 11.5 ± 1.8 | 24.0 ± 2.6 | 75.7 ± 2.3 | 17.1 ± 1.0 |
1 Concentration of treatment of 50 µg A. lechuguilla extract/mL; Control, Cos-7 monkey kidney cells; Mean values ± SD of replicate samples analyzed in duplicate.
Figure 2Translocation of phosphatidylserine by flow cytometry (Annexin V-FITC/7-AAD staining). Representative plots of SK-LU-1 cells cultured in the presence fractioned extract of A. lechuguilla with an IC50 = 6.96 μg/mL, are shown (total apoptosis-time of exposure).
Cells of SK-LU-1 response to treatment with fraction extract of A. lechuguilla.
| Treatment [h] | Live Cells | Early Apoptotic Cells | Late Apoptotic Cells | Necrosis Cells | Total Apoptosis |
|---|---|---|---|---|---|
| [%] | |||||
| Control | 87.00 | 3.19 | 6.72 | 3.13 | 9.91 |
| 6 | 79.50 | 3.56 | 11.00 | 5.96 | 14.56 |
| 12 | 66.20 | 8.11 | 12.00 | 13.70 | 20.11 |
| 24 | 59.30 | 17.30 | 22.5 | 0.99 | 39.80 |
Summary of free energy, inhibition constant (Ki) and molecular interactions from metabolites determinate in fraction extract of A. lechuguilla.
| Molecular Docking | Hydrogen Bonds | Polar Interactions | Hydrophobic Interactions | |||||
|---|---|---|---|---|---|---|---|---|
| Protein/Enzyme | Free Energy a/ | Ligand | Atom/aa | DST c | Atom/aa | DST c | Atom/aa | DST c |
|
| ||||||||
| Fas/CD95 | +0.38/--- | Docetaxel | --- | --- | --- | --- | --- | --- |
| TNF-R1 | −6.35/245.01 | Docetaxel | O8/T89 | 3.11 | O12/T89 | 3.71 | --- | --- |
| DR4 | −4.29/712.86 | Docetaxel | O6/R158 | 3.33 | H4/T129 | 3.51 | --- | --- |
| DR5 | −1.73/53.64 × 103 | Docetaxel | O7/S22 | 3.15 | --- | --- | --- | --- |
|
| ||||||||
| tBID | −3.24/4.21 × 103 | Docetaxel | O10/R84 | 2.57 | --- | --- | --- | --- |
| Bax | +0.02/--- | Docetaxel | --- | --- | --- | --- | --- | --- |
| Bak | +0.14/--- | Docetaxel | --- | --- | --- | --- | --- | --- |
| Bcl-2 | +0.04/--- | Docetaxel | --- | --- | --- | --- | --- | --- |
|
| ||||||||
| Casp-3 | −6.79/10.47 | Docetaxel | O6/Y204 | 3.40 | O4/T62 | 3.83 | C26/H121 | 3.71 |
| Casp-8 | −1.94/38.07 × 103 | Docetaxel | --- | --- | --- | --- | C39/K224 | 3.55 |
|
| ||||||||
| RIP1 | ND | Docetaxel | ND | ND | ND | ND | ND | ND |
| MLKL | ND | Docetaxel | ND | ND | ND | ND | ND | ND |
| FADD | ND | Docetaxel | ND | ND | ND | ND | ND | ND |
|
| ||||||||
| EGFR | ND | Docetaxel | ND | ND | ND | ND | ND | ND |
| TGFβ receptor | ND | Docetaxel | ND | ND | ND | ND | ND | ND |
| K-Ras | ND | Docetaxel | ND | ND | ND | ND | ND | ND |
| ALK | ND | Docetaxel | ND | ND | ND | ND | ND | ND |
| MEK | ND | Docetaxel | ND | ND | ND | ND | ND | ND |
| MAPK | ND | Docetaxel | ND | ND | ND | ND | ND | ND |
| MRP1 | ND | Docetaxel | ND | ND | ND | ND | ND | ND |
a Kcal/mol; b µM; c Distance [Å]; ND: Not determined; ---: No result generated; Å: angstroms; Atom: C—carbon; H—hydrogen, O—oxygen; aa—amino acids; amino acid nomenclature: C—cysteine, H—histidine, I—isoleucine, M—methionine, S—serine, V—valine, A—alanine, G—glycine, L—leucine, P—proline, T—threonine, F—phenylalanine, R—arginine, Y—tyrosine, W—tryptophan, D—aspartic acid, N—asparagine, E—glutamic acid, Q—glutamine, and K—lysine.
Figure 3Binds of biflavonoid, kaempferol and quercetin with death receptor. The box indicates the binding region. (a) Biflavonoid binds to TNF-R1, (b) Biflavonoid binds to DR4, (c) Kaempferol binds to Fas/CD95, (d) Kaempferol binds to DR5 (e) Quercetin binds to TNF-R1, (f) Quercetin binds to DR4, (g) Biflavonoid binds to EGFR, and (h) Biflavonoid binds to K-Ras.