Literature DB >> 33661984

The effect of light quality on plant physiology, photosynthetic, and stress response in Arabidopsis thaliana leaves.

Nafiseh Yavari1, Rajiv Tripathi2, Bo-Sen Wu1, Sarah MacPherson1, Jaswinder Singh2, Mark Lefsrud1.   

Abstract

The impacts of wavelengths in 500-600 nm on plant response and their underlying mechanisms remain elusive and required further investigation. Here, we investigated the effect of light quality on leaf area growth, biomass, pigments content, and net photosynthetic rate (Pn) across three Arabidopsis thaliana accessions, along with changes in transcription, photosynthates content, and antioxidative enzyme activity. Eleven-leaves plants were treated with BL; 450 nm, AL; 595 nm, RL; 650 nm, and FL; 400-700 nm as control. RL significantly increased leaf area growth, biomass, and promoted Pn. BL increased leaf area growth, carotenoid and anthocyanin content. AL significantly reduced leaf area growth and biomass, while Pn remained unaffected. Petiole elongation was further observed across accessions under AL. To explore the underlying mechanisms under AL, expression of key marker genes involved in light-responsive photosynthetic reaction, enzymatic activity of antioxidants, and content of photosynthates were monitored in Col-0 under AL, RL (as contrast), and FL (as control). AL induced transcription of GSH2 and PSBA, while downregulated NPQ1 and FNR2. Photosynthates, including proteins and starches, showed lower content under AL. SOD and APX showed enhanced enzymatic activity under AL. These results provide insight into physiological and photosynthetic responses to light quality, in addition to identifying putative protective-mechanisms that may be induced to cope with lighting-stress in order to enhance plant stress tolerance.

Entities:  

Year:  2021        PMID: 33661984      PMCID: PMC7932170          DOI: 10.1371/journal.pone.0247380

Source DB:  PubMed          Journal:  PLoS One        ISSN: 1932-6203            Impact factor:   3.240


  48 in total

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  4 in total

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3.  Light Spectral Composition Modifies Polyamine Metabolism in Young Wheat Plants.

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4.  Filtering Light-Emitting Diodes to Investigate Amber and Red Spectral Effects on Lettuce Growth.

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  4 in total

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