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March 4, 2014Philosophical Transactions of the Royal Society B Biological Sciences444 citations

Photosynthesis under artificial light: the shift in primary and secondary metabolism

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ÉDÉva DarkóPHParisa HeydarizadehBSBenoı̂t Schoefs

Key Points

  • To review how artificial light-emitting diode (LED) systems mimic natural light and modify plant metabolic pathways in controlled agricultural environments.
  • Synthesized findings on LED technologies used in controlled indoor crop production systems.
  • Evaluated the impact of varying light spectral quality, intensity, and wavelengths on plant growth and primary and secondary metabolism.
  • LED systems successfully simulate sunlight to maintain photosynthetic efficiency, vegetative growth, and plant development.
  • Adjusting specific light wavelengths and intensity selectively shifts metabolic pathways, enabling the targeted accumulation of secondary metabolites to create functionalized foods.

Abstract

Providing an adequate quantity and quality of food for the escalating human population under changing climatic conditions is currently a great challenge. In outdoor cultures, sunlight provides energy (through photosynthesis) for photosynthetic organisms. They also use light quality to sense and respond to their environment. To increase the production capacity, controlled growing systems using artificial lighting have been taken into consideration. Recent development of light-emitting diode (LED) technologies presents an enormous potential for improving plant growth and making systems more sustainable. This review uses selected examples to show how LED can mimic natural light to ensure the growth and development of photosynthetic organisms, and how changes in intensity and wavelength can manipulate the plant metabolism with the aim to produce functionalized foods.

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Cite This Study

Darkó et al. (2014) studied this question.

synapsesocial.com/papers/69da57dfa6045d71bfa3c94ehttps://doi.org/10.1098/rstb.2013.0243
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