Quantitative analysis of UV-B radiation interception in 3d plant structures and intraindividual distribution of phenolic contents

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Abstract

Ultraviolet-B (UV-B) acts as a regulatory stimulus, inducing the dose-dependent biosyn-thesis of phenolic compounds such as flavonoids at the leaf level. However, the heterogeneity of biosynthesis activation generated within a whole plant is not fully understood until now and cannot be interpreted without quantification of UV-B radiation interception. In this study, we analyzed the spatial UV-B radiation interception of kales (Brassica oleracea L. var. Acephala) grown under supplemental UV-B LED using ray-tracing simulation with 3-dimension-scanned models and leaf optical properties. The UV-B-induced phenolic compounds and flavonoids accumulated more, with higher UV-B interception and younger leaves. To distinguish the effects of UV-B energy and leaf developmental age, the contents were regressed separately and simultaneously. The effect of intercepted UV-B on flavonoid content was 4.9-fold that of leaf age, but the effects on phenolic compound bio-synthesis were similar. This study confirmed the feasibility and relevance of UV-B radiation interception analysis and paves the way to explore the physical and physiological base determining the intraindividual distribution of phenolic compound in controlled environments.

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Yoon, H. I., Kim, H. Y., Kim, J., Oh, M. M., & Son, J. E. (2021). Quantitative analysis of UV-B radiation interception in 3d plant structures and intraindividual distribution of phenolic contents. International Journal of Molecular Sciences, 22(5), 1–18. https://doi.org/10.3390/ijms22052701

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