Strawberry and Achenes Hydroalcoholic Extracts and Their Digested Fractions Efficiently Counteract the AAPH-Induced Oxidative Damage in HepG2 Cells
Abstract
:1. Introduction
2. Results
2.1. Effects of Strawberry Fractions on Cell Viability
2.2. Effects of Strawberry and Achenes Fractions on Intracellular ROS Production
2.3. Effects of Strawberry and Achenes Fractions on Apoptosis
3. Discussion
4. Materials and Methods
4.1. Preparation of the Strawberry and Achenes Extracts
- (i)
- Raw fruit (RF), corresponding to the hydroalcoholic extract of complete strawberries;
- (ii)
- Fruit after gastric digestion (GF), corresponding to the fraction obtained after the gastric digestion of the complete fruits;
- (iii)
- Fruit after intestinal digestion (IF), corresponding to the fraction obtained after the intestinal digestion of the complete fruits;
- (iv)
- Achene (AC), corresponding to the hydroalcoholic extract of achenes;
- (v)
- Achene after gastric digestion (GAC), corresponding to the fraction obtained after the gastric digestion of achenes;
- (vi)
- Achene after intestinal digestion (IAC), corresponding to the fraction obtained after the intestinal digestion of achenes.
4.2. Culture of HepG2 Cells
4.3. Determination of Cell Viability
4.4. Evaluation of Intracellular ROS Production
4.5. Apoptosis Quantification
4.6. Statistical Analysis
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
ROS | Reactive oxygen species |
AOx | Antioxidant defenses |
HepG2 | Human hepatocellular carcinoma cells |
RF | Raw strawberry extract |
AC | Achenes hydroalcoholic extract |
GF | Fraction obtained after the gastric digestion of the complete fruits |
IF | Fraction obtained after the intestinal digestion of the complete fruits |
GAC | Fraction obtained after the gastric digestion of the achenes |
IAC | Fraction obtained after the intestinal digestion of the achenes |
AAPH | 2,2′-Azobis(2-amidinopropane) dihydrochloride |
MTT | 3-(4,5-Dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide |
H2O2 | Hydrogen peroxide |
SD | Standard deviation |
ABB | Annexin binding buffer |
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Ariza, M.T.; Forbes-Hernández, T.Y.; Reboredo-Rodríguez, P.; Afrin, S.; Gasparrini, M.; Cervantes, L.; Soria, C.; Martínez-Ferri, E.; Battino, M.; Giampieri, F. Strawberry and Achenes Hydroalcoholic Extracts and Their Digested Fractions Efficiently Counteract the AAPH-Induced Oxidative Damage in HepG2 Cells. Int. J. Mol. Sci. 2018, 19, 2180. https://doi.org/10.3390/ijms19082180
Ariza MT, Forbes-Hernández TY, Reboredo-Rodríguez P, Afrin S, Gasparrini M, Cervantes L, Soria C, Martínez-Ferri E, Battino M, Giampieri F. Strawberry and Achenes Hydroalcoholic Extracts and Their Digested Fractions Efficiently Counteract the AAPH-Induced Oxidative Damage in HepG2 Cells. International Journal of Molecular Sciences. 2018; 19(8):2180. https://doi.org/10.3390/ijms19082180
Chicago/Turabian StyleAriza, María Teresa, Tamara Y. Forbes-Hernández, Patricia Reboredo-Rodríguez, Sadia Afrin, Massimiliano Gasparrini, Lucía Cervantes, Carmen Soria, Elsa Martínez-Ferri, Maurizio Battino, and Francesca Giampieri. 2018. "Strawberry and Achenes Hydroalcoholic Extracts and Their Digested Fractions Efficiently Counteract the AAPH-Induced Oxidative Damage in HepG2 Cells" International Journal of Molecular Sciences 19, no. 8: 2180. https://doi.org/10.3390/ijms19082180
APA StyleAriza, M. T., Forbes-Hernández, T. Y., Reboredo-Rodríguez, P., Afrin, S., Gasparrini, M., Cervantes, L., Soria, C., Martínez-Ferri, E., Battino, M., & Giampieri, F. (2018). Strawberry and Achenes Hydroalcoholic Extracts and Their Digested Fractions Efficiently Counteract the AAPH-Induced Oxidative Damage in HepG2 Cells. International Journal of Molecular Sciences, 19(8), 2180. https://doi.org/10.3390/ijms19082180