Volume 12 Issue 2
May  2022
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Abir Chamandy, Minjie Zhao, Hassan Rammal, Saïd Ennahar. Hyphenated LC-ABTS·+ and LC-DAD-HRMS for simultaneous analysis and identification of antioxidant compounds in Astragalus emarginatus Labill. Extracts[J]. Journal of Pharmaceutical Analysis, 2022, 12(2): 253-262. doi: 10.1016/j.jpha.2021.09.008
Citation: Abir Chamandy, Minjie Zhao, Hassan Rammal, Saïd Ennahar. Hyphenated LC-ABTS·+ and LC-DAD-HRMS for simultaneous analysis and identification of antioxidant compounds in Astragalus emarginatus Labill. Extracts[J]. Journal of Pharmaceutical Analysis, 2022, 12(2): 253-262. doi: 10.1016/j.jpha.2021.09.008

Hyphenated LC-ABTS·+ and LC-DAD-HRMS for simultaneous analysis and identification of antioxidant compounds in Astragalus emarginatus Labill. Extracts

doi: 10.1016/j.jpha.2021.09.008
Funds:

(CNRS, Lebanon) for the identification of the plant specimens and to the Shouf Biosphere Reserve for granting permission for plant collection and facilitating the research work within the reserve.

The authors are grateful to Professor Georges Tohmé

  • Received Date: Mar. 15, 2021
  • Accepted Date: Sep. 15, 2021
  • Rev Recd Date: Aug. 30, 2021
  • Publish Date: Sep. 16, 2021
  • The compounds in leaf and stem extracts of Astragalus emarginatus Labill. (AEL), a plant species used in traditional Lebanese medicine, were investigated for antioxidant properties. First, the activity of various extracts was assessed using the Trolox equivalent antioxidant capacity, oxygen radical absorption capacity, and 2,2-diphenyl-1-picryl-hydrazyl-hydrate assays. The extract obtained using 30% ethanol showed the greatest activity. The antioxidant compounds in this extract were screened using a hyphenated high-performance liquid chromatography-2,2-azinobis-(3-ethylbenzothiazoline-6-sulfonate) radical (ABTS·+) system before being separated by ultra-high-performance liquid chromatography and identified using high-resolution mass spectrometry and ultra-violet-visible diode array detection. Approximately 40 compounds were identified. Hydroxycinnamates (caffeic, ferulic, and p-coumaric acid derivatives) and flavonoids (quercetin, luteolin, apigenin, and isorhamnetin derivatives) were the two main categories of the identified compounds. The active compounds were identified as caffeic acid derivatives and quercetin glycosides. In addition, the catechol moiety was shown to be key to antioxidant activity. This study showed that AEL is a source of natural antioxidants, which may explain its medicinal use.
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