Original ArticlePharmacognosy MagazineVol. 12 | Issue 46s | 2016 | pp. S181–S194Open access
High Performance Liquid Chromatography‑mass Spectrometry Analysis of High Antioxidant Australian Fruits with Antiproliferative Activity Against Cancer Cells
- 2,
- ,
- 2,
- ,
- 2*
- 1 Environmental Futures Research Institute, Nathan Campus, Griffith University, 2 School of Natural Sciences, Nathan Campus, Griffith University, Nathan, 4111 Queensland, Australia.
- 2 Smart Water Research Centre, Griffith University, Gold Coast, 4222 Queensland, Australia.
Published in Pharmacognosy Magazine
Correspondence: Ian Edwin Cock
Smart Water Research Centre, Griffith University, Gold Coast, 4222 Queensland, Australia.
Email: i.cock@griffith.edu.au
Copyright: © 2016 Manuscript Technomedia. This is an open access article.
- Published:
- May 11, 2016
- Received:
- Nov 18, 2014
How to cite
Sirdaarta, J., Maen, A., Rayan, P., Matthews, B., & Cock, I. E. (2016). High Performance Liquid Chromatography‑mass Spectrometry Analysis of High Antioxidant Australian Fruits with Antiproliferative Activity Against Cancer Cells. Pharmacognosy Magazine, 12(46s), S181–S194. https://doi.org/10.4103/0973-1296.182178
Abstract
Background: High antioxidant capacities have been linked to the treatment and prevention of several cancers. Recent reports have identified several native Australian fruits with high antioxidant capacities. Despite this, several of these species are yet to be tested for anticancer activity. Materials and Methods: Solvent extracts prepared from high antioxidant native Australian fruits were analyzed for antioxidant capacity by the di (phenyl)‑(2,4,6‑trinitrophenyl) iminoazanium free radical scavenging assay. Antiproliferative activities against CaCo2 and HeLa cancer cells were determined by a multicellular tumor spheroid‑based cell proliferation assay. Toxicity was determined by Artemia franciscana bioassay. Results: Methanolic extracts of all plant species displayed high antioxidant contents (equivalent to approximately 7–16 mg of vitamin C per gram of fruit extracted). Most aqueous extracts also contained relatively high antioxidant capacities. In contrast, the ethyl acetate, chloroform, and hexane extracts of most species (except lemon aspen and bush tomato) had lower antioxidant contents (below 1.5 mg of vitamin C equivalents per gram of plant material extracted). The antioxidant contents correlated with the ability of the extracts to inhibit proliferation of CaCo2 and HeLa cancer cell lines. The high antioxidant methanolic extracts of all species were potent inhibitors of cell proliferation. The methanolic lemon aspen extract was particularly effective, with IC50 values of 480 and 769 µg/mL against HeLa and CaCo2 cells, respectively. In contrast, the lower antioxidant ethyl acetate and hexane extracts (except the lemon aspen ethyl acetate extract) generally did not inhibit cancer cell proliferation or inhibited to only a minor degree. Indeed, most of the ethyl acetate and hexane extracts induced potent cell proliferation. The native tamarind ethyl acetate extract displayed low‑moderate toxicity in the A. franciscana bioassay (LC50 values below 1000 µg/mL). All other extracts were nontoxic. A total of 145 unique mass signals were detected in the lemon aspen methanolic and aqueous extracts by nonbiased high‑performance liquid chromatography‑mass spectrometry analysis. Of these, 20 compounds were identified as being of particular interest due to their reported antioxidant and/or anticancer activities. Conclusions: The lack of toxicity and antiproliferative activity of the high antioxidant plant extracts against HeLa and CaCo2 cancer cell lines indicates their potential in the treatment and prevention of some cancers.
Keywords
Subject
Article metadata
| Title | High Performance Liquid Chromatography‑mass Spectrometry Analysis of High Antioxidant Australian Fruits with Antiproliferative Activity Against Cancer Cells |
|---|---|
| Authors | Joseph Sirdaarta; Anton Maen; Paran Rayan; Ben Matthews; Ian Edwin Cock |
| Affiliations | Environmental Futures Research Institute, Nathan Campus, Griffith University, 2 School of Natural Sciences, Nathan Campus, Griffith University, Nathan, 4111 Queensland, Australia.; Smart Water Research Centre, Griffith University, Gold Coast, 4222 Queensland, Australia. |
| Corresponding author | i.cock@griffith.edu.au |
| Journal | Pharmacognosy Magazine |
| Volume / Issue | Vol. 12, Issue 46s (2016) |
Also in this issue
- In vitro Metabolism of Sodium 9‑dehydro‑17‑hydro‑ andrographolide‑19‑yl Sulfate in Rat Liver S9 by Liquid Chromatography–Mass Spectrometry Methodpp. S102–S108
- Effect of Procyanidin‑rich Extract from Natural Cocoa Powder on Cellular Viability, Cell Cycle Progression, and Chemoresistance in Human Epithelial Ovarian Carcinoma Cell Linespp. S109–S115
- Kinetics of Inhibition of Monoamine Oxidase Using Curcumin and Ellagic Acidpp. S116–20
- Effect of Withinia Somnifera and Shilajit on Alcohol Addiction in Micepp. S121–S128
- Flavonoids Derived from Abelmoschus esculentus Attenuates UV-B Induced Cell Damage in Human Dermal Fibroblasts Through Nrf2-ARE Pathwaypp. S129–S138
Readers Also Viewed
Development and Validation of UV/visible Spectrophotometric Method for Estimation of Piroxicam from Bulk and Formulation
Sandip Mohan Honmane, Kunal Rajaram Yadav, Yuvraj Dilip Dange
Apr 23, 2025
Effects of Artificial Intelligence on Academic Performance of Library and Information Science University Students: A Meta-Analysis (2023-2025)
Kayode Sunday John Dada
Aug 6, 2026
Bridging Innovation and Impact: A Multidisciplinary Approach to Contemporary Research Challenges
Mueen Ahmed KK
Aug 11, 2026