A novel gene LbHLH from the halophyte Limonium bicolor enhances salt tolerance via reducing root hair development and enhancing osmotic resistance

Abstract Background Identifying genes involved in salt tolerance in the recretohalophyte Limonium bicolor could facilitate the breeding of crops with enhanced salt tolerance. Here we cloned the previously uncharacterized gene LbHLH and explored its role in salt tolerance. Results The 2,067-bp open r...

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Main Authors: Xi Wang, Yingli Zhou, Yanyu Xu, Baoshan Wang, Fang Yuan
Format: Article
Language:English
Published: BMC 2021-06-01
Series:BMC Plant Biology
Subjects:
Online Access:https://doi.org/10.1186/s12870-021-03094-3
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spelling doaj-1f43a5d0309240ffa54b69273ec5061a2021-06-27T11:17:00ZengBMCBMC Plant Biology1471-22292021-06-0121111610.1186/s12870-021-03094-3A novel gene LbHLH from the halophyte Limonium bicolor enhances salt tolerance via reducing root hair development and enhancing osmotic resistanceXi Wang0Yingli Zhou1Yanyu Xu2Baoshan Wang3Fang Yuan4Shandong Provincial Key Laboratory of Plant Stress, College of Life Sciences, Shandong Normal UniversityShandong Provincial Key Laboratory of Plant Stress, College of Life Sciences, Shandong Normal UniversityShandong Provincial Key Laboratory of Plant Stress, College of Life Sciences, Shandong Normal UniversityShandong Provincial Key Laboratory of Plant Stress, College of Life Sciences, Shandong Normal UniversityShandong Provincial Key Laboratory of Plant Stress, College of Life Sciences, Shandong Normal UniversityAbstract Background Identifying genes involved in salt tolerance in the recretohalophyte Limonium bicolor could facilitate the breeding of crops with enhanced salt tolerance. Here we cloned the previously uncharacterized gene LbHLH and explored its role in salt tolerance. Results The 2,067-bp open reading frame of LbHLH encodes a 688-amino-acid protein with a typical helix-loop-helix (HLH) domain. In situ hybridization showed that LbHLH is expressed in salt glands of L. bicolor. LbHLH localizes to the nucleus, and LbHLH is highly expressed during salt gland development and in response to NaCl treatment. To further explore its function, we heterologously expressed LbHLH in Arabidopsis thaliana under the 35S promoter. The overexpression lines showed significantly increased trichome number and reduced root hair number. LbHLH might interact with GLABRA1 to influence trichome and root hair development, as revealed by yeast two-hybrid analysis. The transgenic lines showed higher germination percentages and longer roots than the wild type under NaCl treatment. Analysis of seedlings grown on medium containing sorbitol with the same osmotic pressure as 100 mM NaCl demonstrated that overexpressing LbHLH enhanced osmotic resistance. Conclusion These results indicate that LbHLH enhances salt tolerance by reducing root hair development and enhancing osmotic resistance under NaCl stress.https://doi.org/10.1186/s12870-021-03094-3Heterologous expressionLimonium bicolorOsmotic stressRoot hairTrichomeSalt resistance
collection DOAJ
language English
format Article
sources DOAJ
author Xi Wang
Yingli Zhou
Yanyu Xu
Baoshan Wang
Fang Yuan
spellingShingle Xi Wang
Yingli Zhou
Yanyu Xu
Baoshan Wang
Fang Yuan
A novel gene LbHLH from the halophyte Limonium bicolor enhances salt tolerance via reducing root hair development and enhancing osmotic resistance
BMC Plant Biology
Heterologous expression
Limonium bicolor
Osmotic stress
Root hair
Trichome
Salt resistance
author_facet Xi Wang
Yingli Zhou
Yanyu Xu
Baoshan Wang
Fang Yuan
author_sort Xi Wang
title A novel gene LbHLH from the halophyte Limonium bicolor enhances salt tolerance via reducing root hair development and enhancing osmotic resistance
title_short A novel gene LbHLH from the halophyte Limonium bicolor enhances salt tolerance via reducing root hair development and enhancing osmotic resistance
title_full A novel gene LbHLH from the halophyte Limonium bicolor enhances salt tolerance via reducing root hair development and enhancing osmotic resistance
title_fullStr A novel gene LbHLH from the halophyte Limonium bicolor enhances salt tolerance via reducing root hair development and enhancing osmotic resistance
title_full_unstemmed A novel gene LbHLH from the halophyte Limonium bicolor enhances salt tolerance via reducing root hair development and enhancing osmotic resistance
title_sort novel gene lbhlh from the halophyte limonium bicolor enhances salt tolerance via reducing root hair development and enhancing osmotic resistance
publisher BMC
series BMC Plant Biology
issn 1471-2229
publishDate 2021-06-01
description Abstract Background Identifying genes involved in salt tolerance in the recretohalophyte Limonium bicolor could facilitate the breeding of crops with enhanced salt tolerance. Here we cloned the previously uncharacterized gene LbHLH and explored its role in salt tolerance. Results The 2,067-bp open reading frame of LbHLH encodes a 688-amino-acid protein with a typical helix-loop-helix (HLH) domain. In situ hybridization showed that LbHLH is expressed in salt glands of L. bicolor. LbHLH localizes to the nucleus, and LbHLH is highly expressed during salt gland development and in response to NaCl treatment. To further explore its function, we heterologously expressed LbHLH in Arabidopsis thaliana under the 35S promoter. The overexpression lines showed significantly increased trichome number and reduced root hair number. LbHLH might interact with GLABRA1 to influence trichome and root hair development, as revealed by yeast two-hybrid analysis. The transgenic lines showed higher germination percentages and longer roots than the wild type under NaCl treatment. Analysis of seedlings grown on medium containing sorbitol with the same osmotic pressure as 100 mM NaCl demonstrated that overexpressing LbHLH enhanced osmotic resistance. Conclusion These results indicate that LbHLH enhances salt tolerance by reducing root hair development and enhancing osmotic resistance under NaCl stress.
topic Heterologous expression
Limonium bicolor
Osmotic stress
Root hair
Trichome
Salt resistance
url https://doi.org/10.1186/s12870-021-03094-3
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