Skip to content
Open access

The brassinosteroid-responsive transcription factor CmBEEL1 through integrating ICE1 cascade and ROS homeostasis enhances cold tolerance in Chrysanthemum.

Aug 2026 · Plant physiology and biochemistry : PPB · Vol 238, pp. 111643 · 0 citations · 55 references
Medicine

TL;DR

It is concluded that overexpression of CmBEEL1 is sufficient to enhance cold tolerance in chrysanthemum via the ICE1 cascade and ROS homeostasis via the ICE1 cascade and ROS homeostasis.

Abstract

Cold stress ranks among the notable abiotic stresses that significantly hinder plant growth and geographical distribution. Brassinosteroids (BRs) have been proven to enhance the cold tolerance of plants across multiple species. However, the involvement of BR and its regulatory mechanism underlying cold tolerance in chrysanthemum has not yet been fully elucidated. In this study, we found that BR treatment alleviated cold stress-induced growth inhibition in chrysanthemum. Based on the transcriptome database of Chrysanthemum in response to cold stress, CmBEEL1, a member of the bHLH family genes, was identified and characterized. Both cold stress and BR treatments upregulated the expression of CmBEEL1. We further generated CmBEEL1-overexpressing (CmBEEL1-OX) lines, and found that CmBEEL1-OX lines exhibited enhanced cold tolerance, characterized by reduced electrolyte leakage and lower reactive oxygen species (ROS) accumulation. Weighted gene co-expression network analysis (WGCNA) and downstream gene analysis indicated that CmBEEL1 primarily modulates cold tolerance by inducing alterations in the expression of the ICE - DREB - COR pathway and ROS metabolism. Moreover, CmBEEL1 was shown to directly bind to the promoter of CmICE1, to activate ICE - DREB - COR cascade. It is concluded that overexpression of CmBEEL1 is sufficient to enhance cold tolerance in chrysanthemum via the ICE1 cascade and ROS homeostasis.

Read PDF

Similar papers

Open access Aug 2026

The CmABF1-CmBt/CmBr Module Regulates Cucurbitacin B Biosynthesis to Promote Cold Tolerance of Oriental Melon Seedlings.

Exogenous spraying of CuB can alleviate the low-temperature stress injury of melon and tomato seedlings and is explored a new way to alleviate the abiotic stress injury of seedlings, which is of great significance for the early seedling development of oriental melons.

Yushan Huang, Haoxiong Tang, Fei Luo et al. · 0 citations
Open access Jul 2026

OsMYBAS1 Coordinates ABA/JA Signaling and ROS Homeostasis for Seedling Cold Tolerance of Rice (Oryza sativa L.).

Seedling cold stress is a major abiotic constraint to rice production, and mining elite cold-tolerant genes from wild rice represents a pivotal strategy to enhance cold tolerance in cultivated rice (Oryza sativa L.). Dongxiang wild rice (DXWR, Oryza rufipogon Griff.) is a valuable genetic resource with robust cold tolerance. However, the underlying molecular regulatory mechanisms remain poorly characterized, and the identification of its elite cold-tolerant genes is still limited. In this study, by integrating high-density gene chip, comparative transcriptomic and functional correlation analyses, we identified OsMYBAS1, an R2R3-MYB transcription factor, as a key regulator conferring cold tolerance of DXWR. The Osmybas1 mutants exhibited drastically reduced survival rate under cold stress, accompanied by excessive reactive oxygen species (ROS) accumulation and significant decreases in antioxidant enzyme activity. Comparative transcriptome analysis of the mutants identified 545 cold-induced differentially expressed genes. Functional enrichment analysis indicated that pathways involved in hormone metabolism and signaling were among the most significantly enriched categories, highlighting their key roles in the cold response. Further detection revealed that endogenous abscisic acid (ABA) and jasmonic acid (JA) levels were markedly down-regulated in Osmybas1 mutants after cold treatment, while exogenous ABA or methyl jasmonate (MeJA) application rescued the cold-sensitive phenotype and reversed the abnormal expression of cold-responsive genes. This study suggested that OsMYBAS1 positively regulated seedling cold tolerance by mediating the coordinated modulation of ABA/JA signaling and ROS homeostasis. These findings elucidated an important molecular mechanism underlying DXWR cold tolerance and provided a novel gene target and theoretical foundation for cold-tolerant rice molecular breeding.

Xinjian Zou, Hong-Guang Xie, Juan Ye et al. · 0 citations
Open access Sep 2026

Enhancing cold tolerance through HubZIP6-mediated CBF activation and salicylic acid signaling in pitaya

Cold stress severely limits the yield and quality of fruit crops, yet its regulatory mechanisms in pitaya remain poorly understood. Here, we identified a cold-inducible bZIP transcription factor, HubZIP6, that plays a central role in enhancing cold tolerance in pitaya. HubZIP6 is a nuclear-localized protein with transcriptional activation activity, and its overexpression in Arabidopsis and tomato significantly improved cold tolerance, as reflected by higher survival rates, reduced ion leakage, and lower reactive oxygen species accumulation. Mechanistically, HubZIP6 directly binds to ACGT motifs in the promoters of HuCBF1 and HuCBF3, thereby activating their expression under cold stress. In addition, HubZIP6 physically interacts with the salicylic acid-binding protein HuSABP2, which synergistically enhances the transcriptional activation of HuCBF genes. Notably, HubZIP6 also directly activates HuSABP2, forming a regulatory loop that connects CBF transcriptional control with salicylic acid signaling. Consistently, overexpression of HuSABP2 further enhances cold tolerance in transgenic plants. Collectively, these findings demonstrate that cold tolerance is enhanced through HubZIP6-mediated integration of CBF activation and salicylic acid signaling, providing a promising genetic target for improving stress resilience in fruit crops.

Xinglong Hu, Irfan Ali Sabir, Ze-Liu Xu et al. · 0 citations
Open access Jul 2026

The PavbHLH162‐Like‐PavbHLH106 Module Positively Regulates Cold Tolerance in Sweet Cherry (Prunus avium L.)

bHLH transcription factors serve as crucial regulators of plant growth, development, and responses to abiotic stress. However, their specific functions in the cold resistance of sweet cherry remain elusive. In this study, we cloned PavbHLH162‐like and performed gain‐ and loss‐of‐function assays to explore its role under cold stress. PavbHLH162‐like was upregulated by cold stress, and its encoded protein was localized in the nucleus and possessed transcriptional activation activity. Overexpression of PavbHLH162‐like in tobacco significantly enhanced cold tolerance, as evidenced by reduced malondialdehyde (MDA) content and reactive oxygen species (ROS) accumulation, along with increased levels of soluble sugars, soluble proteins, and antioxidant enzyme activities compared to the wild‐type (WT) plants. Conversely, silencing PavbHLH162‐like increased cold sensitivity, leading to elevated MDA and ROS levels, and decreased contents of soluble compounds and antioxidant enzyme activities. Additionally, overexpression of PavbHLH162‐like enhances seed germination and root growth in tobacco. Both overexpression and silencing affected the expression of cold‐related genes. Yeast two‐hybrid and luciferase assays demonstrated that PavbHLH162‐like interacts with PavbHLH106. Furthermore, PavbHLH162‐like binds to the promoter of PavNAC29‐like and activates its transcription. This activation was strengthened by the PavbHLH162‐like‐PavbHLH106 complex. Collectively, our findings indicate that PavbHLH162‐like acts as a positive regulator of cold tolerance in sweet cherry, which provides insights into the molecular mechanisms of cold resistance in this species.

Jin Tang, Qiandong Hou, Yu-Lin Shao et al. · 0 citations
Aug 2026

Brassinosteroid regulates thermotolerance through affecting the antioxidant capacity and the auxin pathway under heat stress in Brassica rapa ssp. pekinensis.

Heat stress threatens the yield and quality of plants. Brassinosteroid (BR) is widely used in agricultural production and plays important roles in regulating plant growth and stress response, but it is rarely reported on its function in thermotolerance in Chinese cabbage. In this study, we found that BR improves thermotolerance by alleviating the inhibition of leaf growth, and the BR biosynthesis inhibitor brassinazole (BRZ) treatment significantly reduced thermotolerance and plant growth in Chinese cabbage. Under heat stress, the accumulation of malondialdehyde and H2O2 was inhibited, and antioxidant-related enzyme activities and the contents of soluble protein and free proline were increased under BR treatment. Multiple transcriptome assays showed that BR may affect the expression levels of some BrSAUR genes in the auxin pathway, and ABA biosynthesis and metabolism genes to improve heat tolerance. Dual-luciferase reporter assay and VIGS assay showed that BrBZR1 can activate BrSAUR9 expression and the BrSAUR9-silenced plants inhibit plant growth. Furthermore, BR alleviated photosynthetic system damage and increased the fresh weight under heat stress. Our results provide new insights about the function of BR in conferring thermotolerance and biomass increase under heat stress in Chinese cabbage.

Yunshuai Huang, Mei-Na Zheng, Yan-Bing Wang et al. · 0 citations
Open access Aug 2026

Abscisic acid–regulated stability of CmABF1 and CmBRM modulates salt tolerance in chrysanthemum via epigenetic regulation of CmHSFA4

It is shown that salt stress–induced ABA accumulation up-regulates Heat Shock Factor 4 (CmHSFA4), a gene that is known to enhance chrysanthemum salt tolerance, and an ABA-SnRK2.2-ABF1/BRM signaling module that integrates phosphorylation-dependent protein stabilization and degradation with histone methylation dynamics to fine-tune salt stress–responsive gene expression in chrysanthemum is revealed.

Xinhui Wang, Han Wang, Hong-Yu Wei et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.