scholarly journals Auxin Acts Downstream of Ethylene and Nitric Oxide to Regulate Magnesium Deficiency-Induced Root Hair Development in Arabidopsis thaliana

Author(s):  
Miao Liu ◽  
Haihua Zhang ◽  
Xianzhi Fang ◽  
Yongsong Zhang ◽  
Chongwei Jin
2016 ◽  
Vol 213 (3) ◽  
pp. 1242-1256 ◽  
Author(s):  
Miao Liu ◽  
Xing Xing Liu ◽  
Xiao Lin He ◽  
Li Juan Liu ◽  
Hao Wu ◽  
...  

2006 ◽  
Vol 1 (1) ◽  
pp. 28-33 ◽  
Author(s):  
María Cristina Lombardo ◽  
Magdalena Graziano ◽  
Joseph C. Polacco ◽  
Lorenzo Lamattina

2007 ◽  
Vol 121 (1) ◽  
pp. 87-96 ◽  
Author(s):  
Youning Wang ◽  
Wensheng Zhang ◽  
Kexue Li ◽  
Feifei Sun ◽  
Chunyu Han ◽  
...  

2021 ◽  
Vol 11 ◽  
Author(s):  
Yanyu Xu ◽  
Xiangmei Jiao ◽  
Xi Wang ◽  
Haonan Zhang ◽  
Baoshan Wang ◽  
...  

AimsTo elucidate the genetics underlying salt tolerance in recretohalophytes and assess its relevance to non-halophytes, we cloned the Limonium bicolor homolog of Arabidopsis thaliana (Arabidopsis) SUPER SENSITIVE TO ABA AND DROUGHT2 (AtSAD2) and named it LbSAD2, an importin-β gene associated with trichome initiation and reduced abscisic acid (ABA) sensitivity, and then we assessed the heterologously expressed LbSAD2 in Arabidopsis.MethodsWe examined LbSAD2 expression and assessed the effect of heterologous LbSAD2 expression in Arabidopsis on root hair/trichome induction; the expression levels of possible related genes in trichome/root hair development; some physiological parameters involved in salt tolerance including germination rate, root length, and contents of Na+, proline, and malondialdehyde; and the response of ABA at the germination stage.ResultsThe LbSAD2 gene is highly expressed in the salt gland development stage and salt treatment, especially located in the salt gland by in situ hybridization, and the LbSAD2 protein contains some special domains compared with AtSAD2, which may suggest the involvement of LbSAD2 in salt tolerance. Compared with the SAD2/GL1 mutant CS65878, which lacks trichomes, CS65878-35S:LbSAD2 had higher trichome abundance but lower root hair abundance. Under 100 mM NaCl treatment, CS65878-35S:LbSAD2 showed enhanced germination and root lengths; improved physiological parameters, including high proline and low contents of Na+ and malondialdehyde; higher expression of the salt-tolerance genes Δ1-PYRROLINE-5-CARBOXYLATE SYNTHETASE 1 (P5CS1) and GST CLASS TAU 5 (GSTU5); reduced ABA sensitivity; and increased expression of the ABA signaling genes RESPONSIVE TO ABA 18 (RAB18) and SNF1-RELATED PROTEIN KINASE 2 (SRK2E), but not of the ABA biosynthesis gene 9-CIS-EPOXYCAROTENOID DIOXYGENASE 3 (NCED3).ConclusionLbSAD2 enhances salt tolerance in Arabidopsis by specifically reducing root hair development, Na+ accumulation, and ABA sensitivity.


2020 ◽  
Vol 21 (23) ◽  
pp. 9109
Author(s):  
Gan Zhao ◽  
Yingying Zhao ◽  
Wang Lou ◽  
Dyaaaldin Abdalmegeed ◽  
Rongzhan Guan ◽  
...  

Here, we report that multi-walled carbon nanotubes (MWCNTs) can promote plant root hair growth in the species analyzed in this study; however, low and excessive concentrations of MWCNTs had no significant effect or even an inhibiting influence. Further results show that MWCNTs can enter rapeseed root cells. Meanwhile, nitrate reductase (NR)-dependent nitric oxide (NO) and ethylene syntheses, as well as root hair formation, were significantly stimulated by MWCNTs. Transcription of root hair growth-related genes were also modulated. The above responses were sensitive to the removal of endogenous NO or ethylene with a scavenger of NO or NO/ethylene synthesis inhibitors. Pharmacological and molecular evidence suggested that ethylene might act downstream of NR-dependent NO in MWCNTs-induced root hair morphogenesis. Genetic evidence in Arabidopsis further revealed that MWCNTs-triggered root hair growth was abolished in ethylene-insensitive mutants ein2-5 and ein3-1, and NR mutant nia1/2, but not in noa1 mutant. Further data placed NO synthesis linearly before ethylene production in root hair development triggered by MWCNTs. The above findings thus provide some insights into the molecular mechanism underlying MWCNTs control of root hair morphogenesis.


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