Genome-wide analysis of the TsBLH gene family reveals TsBLH4 involved the regulation of abiotic stresses by interacting with KNOX6 in Toona sinensis

IF 6.8 Q1 PLANT SCIENCES Plant Stress Pub Date : 2025-03-01 Epub Date: 2024-12-22 DOI:10.1016/j.stress.2024.100721
Shuxin Chen , Yuhan Jia , Yuying Yang , Huan Liu , Huiling Chen , Jun Liu , Hengfu Yin , Renying Zhuo , Xiaojiao Han
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Abstract

BLH1-like homeobox (BLH) transcription factors are widely distributed in plants and are a subfamily of the three-amino-acid loop extension (TALE) family. They play pivotal roles in plant growth and development processes and mediate plant responses to abiotic stress. However, recent studies on the function of BLHs have primarily focused on model plants or crops. Here, we identified 21 BLH members in the genome of Toona sinensis. The BLH gene family was divided into five subfamilies, each exhibiting variations in exon-intron distribution and motif composition. TsBLH genes exhibited tissue-specific expression, with all genes responding to salt or osmotic stresses. Notably, TsBLH4 was highly expressed in xylem and leaves and was strongly induced by both salt and osmotic stresses in leaves. Additionally, TsBLH4 is a nuclear protein that physically interacts with TsKNOX6, which is localized in the nucleus and the cytomembrane. The transient expression of TsBLH4 and TsKNOX6 genes in leaves of T. sinensis resulted in increased sensitivity to salt and enhanced tolerance to osmotic stress. These results provide a theoretical basis for the involvement of the BLH gene family in abiotic stress responses in plants.
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TsBLH基因家族的全基因组分析表明,TsBLH4通过与KNOX6相互作用参与香椿非生物胁迫的调控
BLH1-like homeobox (BLH)转录因子广泛分布于植物中,是三氨基酸环延伸(TALE)家族的一个亚家族。它们在植物生长发育过程中起关键作用,介导植物对非生物胁迫的反应。然而,最近对BLHs功能的研究主要集中在模式植物或作物上。本研究在香椿基因组中鉴定了21个BLH成员。BLH基因家族被划分为5个亚家族,每个亚家族在外显子-内含子分布和基序组成上都有差异。TsBLH基因表现出组织特异性表达,所有基因都对盐胁迫或渗透胁迫有反应。值得一提的是,TsBLH4在木质部和叶片中高表达,在叶片中受到盐胁迫和渗透胁迫的强烈诱导。此外,TsBLH4是一种与TsKNOX6物理相互作用的核蛋白,TsKNOX6定位于细胞核和细胞膜。TsBLH4和TsKNOX6基因在中华赤杨叶片中的瞬时表达使赤杨对盐的敏感性增强,对渗透胁迫的耐受性增强。这些结果为BLH基因家族参与植物非生物胁迫应答提供了理论依据。
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来源期刊
Plant Stress
Plant Stress PLANT SCIENCES-
CiteScore
5.20
自引率
8.00%
发文量
76
审稿时长
63 days
期刊介绍: The journal Plant Stress deals with plant (or other photoautotrophs, such as algae, cyanobacteria and lichens) responses to abiotic and biotic stress factors that can result in limited growth and productivity. Such responses can be analyzed and described at a physiological, biochemical and molecular level. Experimental approaches/technologies aiming to improve growth and productivity with a potential for downstream validation under stress conditions will also be considered. Both fundamental and applied research manuscripts are welcome, provided that clear mechanistic hypotheses are made and descriptive approaches are avoided. In addition, high-quality review articles will also be considered, provided they follow a critical approach and stimulate thought for future research avenues. Plant Stress welcomes high-quality manuscripts related (but not limited) to interactions between plants and: Lack of water (drought) and excess (flooding), Salinity stress, Elevated temperature and/or low temperature (chilling and freezing), Hypoxia and/or anoxia, Mineral nutrient excess and/or deficiency, Heavy metals and/or metalloids, Plant priming (chemical, biological, physiological, nanomaterial, biostimulant) approaches for improved stress protection, Viral, phytoplasma, bacterial and fungal plant-pathogen interactions. The journal welcomes basic and applied research articles, as well as review articles and short communications. All submitted manuscripts will be subject to a thorough peer-reviewing process.
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