Physiological responses of maca (Lepidium meyenii Walp.) plants to UV radiation in its high-altitude mountain ecosystem

Sci Rep. 2020 Feb 14;10(1):2654. doi: 10.1038/s41598-020-59638-4.

Abstract

Ultraviolet (UV) radiation is a small fraction of the solar spectrum, which acts as a key environmental modulator of plant function affecting metabolic regulation and growth. Plant species endemic to the Andes are well adapted to the harsh features of high-altitude climate, including high UV radiation. Maca (Lepidium meyenii Walpers) is a member of Brassicaceae family native to the central Andes of Peru, which grows between 3500 and 4500 m of altitude, where only highland grasses and few hardy bushes can survive. Even though maca has been the focus of recent researches, mainly due to its nutraceutical properties, knowledge regarding its adaptation mechanisms to these particular natural environmental conditions is scarce. In this study, we manipulated solar UV radiation by using UV-transmitting (Control) or blocking (UV-block) filters under field conditions (4138 m above the sea level) in order to understand the impact of UV on morphological and physiological parameters of maca crops over a complete growing season. Compared to the UV-blocking filter, under control condition a significant increase of hypocotyl weight was observed during the vegetative phase together with a marked leaf turnover. Although parameters conferring photosynthetic performance were not altered by UV, carbohydrate allocation between above and underground organs was affected. Control condition did not influence the content of secondary metabolites such as glucosinolates and phenolic compounds in hypocotyls, while some differences were observed in the rosettes. These differences were mainly related to leaf turnover and the protection of new young leaves in control plants. Altogether, the data suggest that maca plants respond to strong UV radiation at high altitudes by a coordinated remobilization and relocation of metabolites between source and sink organs via a possible UV signaling pathway.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Altitude*
  • Chlorophyll A / metabolism
  • Ecosystem*
  • Fluorescence
  • Gases / metabolism
  • Lepidium / growth & development
  • Lepidium / physiology*
  • Lepidium / radiation effects*
  • Photosynthesis / radiation effects
  • Pigments, Biological / metabolism
  • Plant Leaves / metabolism
  • Plant Leaves / radiation effects
  • Secondary Metabolism
  • Solubility
  • Starch / analysis
  • Sugars / analysis
  • Ultraviolet Rays*

Substances

  • Gases
  • Pigments, Biological
  • Sugars
  • Starch
  • Chlorophyll A