| Literature DB >> 31728660 |
Jianping Liu1, Xinjiao Sun1, Wencheng Liao1, Jianhua Zhang2, Jiansheng Liang3, Weifeng Xu4.
Abstract
BACKGROUND: Drought stress is one of the major abiotic stresses that restrict plant growth and development. 14-3-3 proteins have been validated to regulate many biological processes in plants. Previous research demonstrated that OsGF14b plays different roles in panicle and leaf blast resistance. In this study, we researched the function of OsGF14b in drought resistance in rice.Entities:
Keywords: 14–3-3; ABA; Drought resistance; OsGF14b; Rice
Year: 2019 PMID: 31728660 PMCID: PMC6856252 DOI: 10.1186/s12284-019-0346-2
Source DB: PubMed Journal: Rice (N Y) ISSN: 1939-8425 Impact factor: 4.783
Fig. 1Phenotypes of the osgf14b mutant, complementation and OsGF14b-OE lines under drought stress treatment at the seedling stage. a Expression analysis of OsGF14b in the osgf14b mutant, complementation and OsGF14b-OE lines. The rice Actin1 gene was used as the internal control. Error bars represent the SE of three biological replicates. b The osgf14b mutant showed increased drought resistance. The 5.5- to 6.5-leaf stage seedlings of DJ, osgf14b and complementation lines (about 20 seedlings for each genotype) were subjected to drought stress without water for 12 d and then recovered for 7 d. The seedlings with newly growing leaf blades were counted as surviving plants and the survival rates were recorded. Error bars represent the SE of three biological replicates (**, P < 0.01, by Student’s t-test). c The OsGF14b-OE lines were more sensitive to drought stress treatment. The 5.5- to 6.5-leaf stage seedlings of Nip and OsGF14b-OE lines (about 10 seedlings for each genotype) were subjected to drought stress without water for 8 d and then recovered for 7 d. The seedlings with newly growing leaf blades were counted as surviving plants and the survival rates were recorded. Error bars represent the SE of three replicates (*, P < 0.05, by Student’s t-test). d-g The H2O2, MDA, proline and soluble sugar content in the WT and transgenic plants (mutant and OE) under normal growth and drought stress conditions. Error bars represent the SE of three biological replicates. Statistical differences are labeled with different letters according to the LSD test (P < 0.05, one-way ANOVA)
Fig. 2Osmotic resistance and ABA sensitivity assay of the osgf14b mutant and the OsGF14b-OE lines. a-c The mutant and OE lines were treated with 200 mM mannitol, under normal conditions (no addition of mannitol) as control. d-f The mutant and OE lines were treated with 5 μM ABA, under normal conditions (no addition of ABA) as control. Shoot length was measured to estimate the resistance and sensitivity of the WT, osgf14b and OsGF14b-OE lines. Error bars represent the SE of three biological replicates. Statistical differences are labeled with different letters according to the LSD test (P < 0.05, one-way ANOVA)
Fig. 3The expression of abiotic stress-responsive genes in the WT and transgenic plants (mutant and OE) under normal growth and drought stress conditions. The rice Actin1 gene was used as the internal control. Error bars represent the SE of three biological replicates. Statistical differences are labeled with different letters according to the LSD test (P < 0.05, one-way ANOVA)