The Heat Stress Transcription Factor LlHsfA4 Enhanced Basic Thermotolerance through Regulating ROS Metabolism in Lilies ( Lilium Longiflorum ).
Chengpeng WangYunzhuan ZhouXi YangBing ZhangFuxiang XuYue WangCunxu SongMingfang YiNan MaXiaofeng ZhouJunna HePublished in: International journal of molecular sciences (2022)
Heat stress severely affects the annual agricultural production. Heat stress transcription factors (HSFs) represent a critical regulatory juncture in the heat stress response (HSR) of plants. The HsfA1-dependent pathway has been explored well, but the regulatory mechanism of the HsfA1-independent pathway is still under-investigated. In the present research, HsfA4, an important gene of the HsfA1-independent pathway, was isolated from lilies ( Lilium longiflorum ) using the RACE method, which encodes 435 amino acids. LlHsfA4 contains a typical domain of HSFs and belongs to the HSF A4 family, according to homology comparisons and phylogenetic analysis. LlHsfA4 was mainly expressed in leaves and was induced by heat stress and H 2 O 2 using qRT-PCR and GUS staining in transgenic Arabidopsis . LlHsfA4 had transactivation activity and was located in the nucleus and cytoplasm through a yeast one hybrid system and through transient expression in lily protoplasts. Over expressing LlHsfA4 in Arabidopsis enhanced its basic thermotolerance, but acquired thermotolerance was not achieved. Further research found that heat stress could increase H 2 O 2 content in lily leaves and reduced H 2 O 2 accumulation in transgenic plants, which was consistent with the up-regulation of HSR downstream genes such as Heat stress proteins ( HSPs ), Galactinol synthase1 ( GolS1 ), WRKY DNA binding protein 30 ( WRKY30 ), Zinc finger of Arabidopsis thaliana 6 ( ZAT6 ) and the ROS-scavenging enzyme Ascorbate peroxidase 2 ( APX2 ). In conclusion, these results indicate that LlHsfA4 plays important roles in heat stress response through regulating the ROS metabolism in lilies.
Keyphrases
- heat stress
- transcription factor
- heat shock
- genome wide identification
- dna binding
- binding protein
- arabidopsis thaliana
- cell death
- dna damage
- amino acid
- poor prognosis
- gene expression
- hydrogen peroxide
- risk assessment
- oxidative stress
- dna methylation
- high resolution
- genome wide analysis
- atomic force microscopy
- heat shock protein
- cell wall
- copy number
- brain injury