Abstract
AbstractCarotenoids have the potential to improve the human health which leads to an increasing consumer demand for carotenoid-rich vegetables. The implementation of new, less energy-consuming vegetable production systems using artificial light such as light-emitting diodes (LEDs) is essential. In the present study, pak choi (Brassica rapa ssp. chinensis ‘Black Behi’) sprouts were grown under a combination of blue and white LEDs, red and white LEDs or only white LEDs for 7 days. Total carotenoid levels of ~ 700 ng/mg DM were measured under white LEDs. The combination of blue and white LEDs increased the carotenoid levels by ~ 15% in comparison to only white LEDs, while red and white LEDs reduced them. The transcript levels of important carotenoid metabolism-related genes were enhanced under blue and white LEDs. Phytoene measurement after Norflurazon-treatment, a phytoene desaturase inhibitor, revealed that phytoene increased by 38% (37.5 µM Norflurazon) and by 56% (50.0 µM Norflurazon) after growth under blue and white LEDs in comparison to only white LEDs suggesting an up-regulation of the upper carotenoid biosynthetic pathway. Thus, the transcript levels and the enhanced phytoene levels correlated well with the higher accumulation of carotenoids under blue and white LEDs. Furthermore, a comparison to sprouts grown under blue LEDs without additional white LEDs showed that blue light alone does not increase the phytoene levels after Norflurazon-treatment. Overall, this study demonstrated a beneficial effect of a higher blue light percentage in growing carotenoid-rich pak choi sprouts, and implies that an increased biosynthesis within the upper carotenoid biosynthetic pathway is responsible for the enhanced carotenoid accumulation.
Graphical abstract
Funder
Leibniz-Institut für Gemüse- und Zierpflanzenbau Großbeeren/Erfurt e.V.
Publisher
Springer Science and Business Media LLC
Subject
Physical and Theoretical Chemistry
Reference52 articles.
1. Mitchell, C. A., Both, A.-J., Bourget, C. M., Burr, J. F., Kubota, C., Lopez, R. G., et al. (2012). LEDs: The future of greenhouse lighting! Chronica Horticulturae, 52, 5–12.
2. McCree, K. J. (1972). Action spectrum, absorptance and quantum yield of photosynthesis in crop plants. Agricultural Meteorology, 9, 191–216. https://doi.org/10.1016/0002-1571(71)90022-7
3. Hasan, M. M., Bashir, T., Ghosh, R., Lee, S. K., & Bae, H. (2017). An overview of LEDs’ effects on the production of bioactive compounds and crop quality. Molecules, 22(9), E1420. https://doi.org/10.3390/molecules22091420
4. Johkan, M., Shoji, K., Goto, F., Hashida, S.-n., Yoshihara, T. (2010). Blue light-emitting diode light irradiation of seedlings improves seedling quality and growth after transplanting in red leaf lettuce. HortScience, 45(12):1809–1814. https://doi.org/10.21273/HORTSCI.45.12.1809
5. Bantis, F., Ouzounis, T., & Radoglou, K. (2016). Artificial LED lighting enhances growth characteristics and totalphenolic content of Ocimum basilicum, but variably affects transplant success. Scientia Horticulturae, 198, 277–283. https://doi.org/10.1016/j.scienta.2015.11.014
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