Physiological responses of Lepidium meyenii plants to ultraviolet-B radiation challenge
Language English Country England, Great Britain Media electronic
Document type Journal Article
Grant support
"Faculty for the Future" (2015-2017)
Schlumberger Foundation
Project no. LQ1605
National Program of Sustainability II (MEYS CR)
PubMed
31064341
PubMed Central
PMC6505108
DOI
10.1186/s12870-019-1755-5
PII: 10.1186/s12870-019-1755-5
Knihovny.cz E-resources
- Keywords
- Chlorophyll fluorescence, Gas exchanges, Maca, Multiple factorial analyses, Stress, Ultraviolet-B,
- MeSH
- Chlorophyll A chemistry MeSH
- Fluorescence MeSH
- Photosystem II Protein Complex metabolism MeSH
- Lepidium physiology radiation effects MeSH
- Plant Leaves physiology radiation effects MeSH
- Carbohydrate Metabolism radiation effects MeSH
- Starch radiation effects MeSH
- Ultraviolet Rays MeSH
- Publication type
- Journal Article MeSH
- Names of Substances
- Chlorophyll A MeSH
- Photosystem II Protein Complex MeSH
- Starch MeSH
BACKGROUND: Ultraviolet-B (UV-B) radiation can affect several aspects ranging from plant growth to metabolic regulation. Maca is a Brassicaceae crop native to the Andes growing in above 3500 m of altitude. Although maca has been the focus mainly due to its nutraceutical properties, it remains unknown how maca plants tolerate to harsh environments, such as strong UV-B. Here, we present the first study that reports the physiological responses of maca plants to counteract and recover to repeated acute UV-B irradiation. RESULTS: In detail, plants were daily exposed to acute UV-B irradiation followed by a recovery period under controlled conditions. The results showed that repeated acute UV-B exposures reduced biomass and photosynthetic parameters, with gradual senescence induction in exposed leaves, reduction of young leaves expansion and root growth inhibition. Negative correlation between increased UV-B and recovery was observed, with marked production of new biomass in plants treated one week or more. CONCLUSIONS: A differential UV-B response was observed: stress response was mainly controlled by a coordinated source-sink carbon allocation, while acclimation process may require UV-B-specific systemic defense response reflected on the phenotypic plasticity of maca plants. Moreover, these differential UV-B responses were also suggested by multifactorial analysis based on biometric and physiological data.
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