<p>The aim of this research was to evaluate the combined effects of light intensity, light color, and CO<sub>2</sub> concentration on chlorophyll <i>a</i>, chlorophyll <i>b</i>, and total chlorophyll and carotenoid production in <i>Chlorella sorokiniana</i> and their relationships with cell growth at the photobioreactor scale. A Taguchi L<sub>4</sub> design was applied to assess the impact of these variables systematically. Chlorophylls were quantified via spectrophotometric solvent extraction, and carotenoids were measured on the basis of their absorbance spectra. The highest cell growth (5.89 log<sub>10</sub> cells/mL) occurred under violet light, 1.8 × 10<sup>− 4</sup> W/nm, and moderate CO<sub>2</sub> (0.078&#xa0;L). The maximum chlorophyll production (0.3049&#xa0;µg/mL) was observed under violet light, 1.8 × 10<sup>− 4</sup> W/nm, and high CO<sub>2</sub> (0.15&#xa0;L), whereas the highest carotenoid concentration (0.0487&#xa0;µg/mL) coincided with the conditions promoting maximum growth. These findings indicate that pigment biosynthesis is differentially regulated: chlorophylls respond mainly to the light spectrum, whereas carotenoids are correlated more with metabolic activity than with stress responses. This study provides insights for optimizing light and CO<sub>2</sub> to increase <i>C. sorokiniana</i> biomass and pigment yields for biotechnological applications.</p>

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Physiological responses of microalgae to light and CO2: insights into pigment production

  • Frizek Nathaniel Morales-Rivera,
  • Sofia Torres-Momber,
  • Julio César Jacuinde-Ruíz,
  • Juan Carlos González-Hernández

摘要

The aim of this research was to evaluate the combined effects of light intensity, light color, and CO2 concentration on chlorophyll a, chlorophyll b, and total chlorophyll and carotenoid production in Chlorella sorokiniana and their relationships with cell growth at the photobioreactor scale. A Taguchi L4 design was applied to assess the impact of these variables systematically. Chlorophylls were quantified via spectrophotometric solvent extraction, and carotenoids were measured on the basis of their absorbance spectra. The highest cell growth (5.89 log10 cells/mL) occurred under violet light, 1.8 × 10− 4 W/nm, and moderate CO2 (0.078 L). The maximum chlorophyll production (0.3049 µg/mL) was observed under violet light, 1.8 × 10− 4 W/nm, and high CO2 (0.15 L), whereas the highest carotenoid concentration (0.0487 µg/mL) coincided with the conditions promoting maximum growth. These findings indicate that pigment biosynthesis is differentially regulated: chlorophylls respond mainly to the light spectrum, whereas carotenoids are correlated more with metabolic activity than with stress responses. This study provides insights for optimizing light and CO2 to increase C. sorokiniana biomass and pigment yields for biotechnological applications.