Overexpression of ThSAP30BP from Tamarix hispida improves salt tolerance

Histone deacetylases (HDACs) play an important regulatory role in plant response to biotic and abiotic stresses. They improve plant stress resistance by increasing the degree of histone acetylation associated with stress-responsive genes. SAP30BP, a human transcriptional regulatory protein, can incr...

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Veröffentlicht in:Plant physiology and biochemistry 2020-01, Vol.146, p.124-132
Hauptverfasser: Liu, Zhongyuan, Lei, Xiaojin, Wang, Peilong, Wang, Yuanyuan, Lv, Jiaxin, Li, Xinpin, Gao, Caiqiu
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Sprache:eng
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Zusammenfassung:Histone deacetylases (HDACs) play an important regulatory role in plant response to biotic and abiotic stresses. They improve plant stress resistance by increasing the degree of histone acetylation associated with stress-responsive genes. SAP30BP, a human transcriptional regulatory protein, can increase histone deacetylase activity by regulating the deacetylation levels of lysines 9 and 14 in histone H3. In this study, a ThSAP30BP gene was cloned and characterized from Tamarix hispida (a kind of woody halophyte). The expression patterns of ThSAP30BP under different abiotic stresses and hormone treatments were detected by qRT-PCR. The results showed that ThSAP30BP was significantly upregulated at most time points under various stress treatments, suggesting that ThSAP30BP may be related to the abiotic stress response of T. hispida. To further analyze the salt stress resistance function of the ThSAP30BP gene, the plant overexpression vector pROKII-ThSAP30BP was instantaneously constructed and transformed into T. hispida. Meanwhile, the empty vector pROKII was also transformed as a control. The activities of SOD and POD, the contents of H2O2 and MDA, the relative conductance and the staining of NBT, DAB and Evans blue were analyzed and compared under salt stress. The results showed that the overexpression of ThSAP30BP in T. hispida reduced the accumulation of ROS in plants and the cell death rate under salt stress. These results suggested that ThSAP30BP may play an important physiological role in salt tolerance of T. hispida. •ThSAP30BP was localized in the nucleus and has transactivation activity.•ThSAP30BP gene can respond to three abiotic stresses and two hormone treatments.•ThSAP30BP overexpression increased ROS-scavenging capability and decreasing lipid peroxidation in cell membrane.•ThSAP30BP could effectively enhance the tolerance of transgenic T. hispida to salt stress.
ISSN:0981-9428
1873-2690
DOI:10.1016/j.plaphy.2019.11.020