Impact of Light Intensity on Antioxidant Activity of Tropical Microalgae

Noémie Coulombier1, Elodie Nicolau2, Loïc Le Déan3

  • 1ADECAL Technopole, 1 bis rue Berthelot, 98846 Noumea, New Caledonia.

Marine Drugs
|February 23, 2020
PubMed

Insights

Microalgae from New Caledonia show antioxidant potential, particularly against peroxyl radicals and lipid peroxidation. Light intensity significantly influences antioxidant capacity, with high light favoring ORAC activity and low light favoring TBARS inhibition.

Area of Science:

  • Marine Biology
  • Biotechnology
  • Natural Products Chemistry

Background:

  • Microalgae are recognized for their diverse bioactive compounds.
  • Antioxidants are crucial for combating oxidative stress.
  • Tropical microalgae represent an underexplored source of novel antioxidants.

Purpose of the Study:

  • To screen New Caledonian microalgae for antioxidant properties.
  • To investigate the impact of light intensity on microalgal antioxidant capacity.
  • To correlate antioxidant activity with pigment composition, particularly carotenoids.

Main Methods:

  • Cultivation of twelve microalgae species under varying light intensities.
  • Assessment of antioxidant activity using DPPH, ABTS, ORAC, and TBARS assays.
  • Analysis of pigment profiles, focusing on carotenoids like siphonaxanthin.

Main Results:

  • Microalgae demonstrated efficacy in scavenging peroxyl radicals (ORAC) and inhibiting lipid peroxidation (TBARS), but not DPPH or ABTS radicals.
  • Nephroselmis sp. showed significant siphonaxanthin content.
  • Xanthophylls contributed to ORAC activity, while carotenoids did not correlate with TBARS inhibition.
  • High light intensity enhanced ORAC activity, whereas low light intensity favored TBARS inhibition.

Conclusions:

  • Selected microalgae species are promising sources of antioxidants, particularly for peroxyl radical scavenging and lipid peroxidation inhibition.
  • Light intensity is a critical factor modulating the production of different types of antioxidant compounds in microalgae.
  • The findings suggest a targeted approach to microalgal cultivation for specific antioxidant applications.

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