Literature DB >> 35067299

Overexpression of the Selaginella lepidophylla bHLH transcription factor enhances water-use efficiency, growth, and development in Arabidopsis.

Madhavi A Ariyarathne1, Bernard W M Wone2.   

Abstract

Abiotic stresses have the greatest impact on the growth and productivity of crops, especially under current and future extreme weather events due to climate change. Thus, it is vital to explore novel strategies to improve crop plant abiotic stress tolerance to feed an ever-growing world population. Selaginella lepidophylla is a desiccation-tolerant spike moss with specialized adaptations that allow it to tolerate water loss down to 4% relative water content. A candidate basic helix-loop-helix (bHLH) transcription factor was highly expressed at 4% relative water content in S. lepidophylla (SlbHLH). This SlbHLH gene was codon-optimized (SlbHLHopt) and overexpressed in Arabidopsis for functional characterization. Overexpression of the SlbHLHopt gene not only significantly increased plant growth, development, and integrated water-use efficiency, but also significantly increased seed germination and green cotyledon emergence rates under water-deficit stress and salt stress conditions. Under a 150 mM NaCl salt stress condition, SlbHLHopt-overexpressing lines increased primary root length, the number of lateral roots, and fresh and dry biomass at the seedling stage compared to control lines. Interestingly, SlbHLHopt-overexpressing lines also have significantly higher flavonoid content. Altogether, these results suggest that SlbHLH functions as an important regulator of plant growth, development, abiotic stress tolerance, and water-use efficiency. Published by Elsevier B.V.

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Keywords:  Abiotic stress tolerance; Flavonoid; Plant growth; Selaginella lepidophylla; Water-use efficiency; bHLH

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Year:  2021        PMID: 35067299     DOI: 10.1016/j.plantsci.2021.111129

Source DB:  PubMed          Journal:  Plant Sci        ISSN: 0168-9452            Impact factor:   4.729


  1 in total

1.  Integrative proteomic and physiological analyses of the molecular response to dessication-stress in Auricularia fibrillifera.

Authors:  Hao Guo; Xingwei Xiong; Yiqin Wang; Huaizhi Tian; Suqin Zhang; Guangdong Geng
Journal:  Front Plant Sci       Date:  2022-09-21       Impact factor: 6.627

  1 in total

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