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April 23, 2026Plant Physiology and Biochemistry2 citationsOpen Access

Plant responses to UV-B radiation: physiology, transcription, epigenetics, and secondary metabolism

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ZLZhaogeng LuHBHongyan Bao任任世雄

Key Points

  • The aim is to explore how plants sense and respond to UV-B radiation through various physiological and molecular mechanisms.
  • Review of existing literature on plant responses to UV-B stress.
  • Analysis of regulatory networks involving photoreceptors and transcription factors.
  • Examination of epigenetic modifications and their roles in stress adaptation.
  • UV-B exposure leads to varied plant responses based on intensity, from protective to damaging effects.
  • Key signaling pathways involving UVR8 and transcription factors are critical for adapting to UV-B stress.
  • Epigenetic changes such as DNA methylation influence long-term responses and memory in plants.

Abstract

Ultraviolet-B (UV-B) radiation, a biologically active component of sunlight, profoundly influences plant physiology, growth, and metabolism. In this review, we integrate current understanding of how plants perceive and adapt to UV-B stress through multilayered regulatory networks. At the physiological level, UV-B exposure elicits dose-dependent effects ranging from enhanced photoprotection and secondary metabolite accumulation at low doses to oxidative damage and growth inhibition under high-intensity conditions. Central to UV-B perception is the photoreceptor UVR8, which activates signaling cascades involving COP1, HY5, and MYB transcription factors to regulate gene expression and promote photomorphogenesis and flavonoid biosynthesis. Concurrently, plants utilize UVR8-independent pathways, such as MAPK and PIKK cascades, to mitigate DNA damage and activate stress responses. Epigenetic modifications, particularly DNA methylation and histone acetylation, further modulate UV-B-responsive gene expression and contribute to stress memory and transgenerational adaptation. We also elucidate the transcriptional networks and non-coding RNAs involved in secondary metabolite biosynthesis, particularly those enhancing flavonoid production. Finally, we discuss emerging applications of UV-B signaling in crop improvement and outline future directions including multi-omics integration, epigenetic inheritance mechanisms, and real-time UV-B monitoring technologies. Together, these insights reveal the intricate mechanisms by which plants adapt to UV-B radiation and provide a basis for leveraging UV-B responses in agriculture and plant biotechnology. UV-B affects plant physiology, transcription, epigenetics, and secondary metabolism. • UV-B triggers multilayered responses from photoreception to metabolic reprogramming. • Mechanisms of UV-B radiation affecting DNA integrity are illustrated. • Transcriptional and epigenetic regulation under UV-B radiation are discussed. • UV-B-responsive TFs and genes regulating plant secondary metabolism are summarized.

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Cite This Study

Lu et al. (2026) studied this question.

synapsesocial.com/papers/69e9b71b85696592c86eb283https://doi.org/10.1016/j.plaphy.2026.111309
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