From genome to gene module: decoding the BsAlfin2-BsTT2 regulatory network controlling low temperature-induced anthocyanin biosynthesis in
Begonia semperflorens
This study assembled a high-quality chromosome-level B. semperflorens genome and elucidates a key molecular module in low temperature-induced anthocyanin biosynthesis regulatory pathway, laying a theoretical and data foundation for future studies on leaf color improvement and stress resistance breeding in Begonia.
Abstract
Begonia semperflorens is an important ornamental plant worldwide, but its practical application is severely limited by low temperature sensitivity. However, the molecular regulatory mechanisms underlying low temperature-induced anthocyanin biosynthesis remain unclear. In this study, we assembled a high-quality chromosome-level B. semperflorens genome. Through genomic and MYB gene family analysis, we identified a key transcription factor BsTT2, which directly binds to the BsDFR promoter and enhances its activity, thereby driving anthocyanin accumulation in B. semperflorens. Furthermore, using BsTT2 as bait, we identified its interacting protein BsAlfin2. Under low temperature-induced reactive oxygen species (ROS) signaling, BsAlfin2 undergoes nuclear translocation and forms a complex with BsTT2, synergistically enhancing the activation of the BsDFR promoter and significantly improving anthocyanin production efficiency. Based on these results, we propose a previously uncharacterized BsAlfin2/BsTT2-BsDFR regulatory module, which reveals a molecular links low-temperature ROS signaling to anthocyanin biosynthesis in B. semperflorens. In summary, this study not only provides chromosome-level genomic resources for B. semperflorens research but also elucidates a key molecular module in low temperature-induced anthocyanin biosynthesis regulatory pathway, laying a theoretical and data foundation for future studies on leaf color improvement and stress resistance breeding in Begonia.
Sucrose non-fermenting-1-related protein kinase (SnRK) is a plant serine/threonine kinase that mediates stress signaling, yet its function in the mangrove Avicennia marina remains unexplored. In this study, we identified 46 SnRK genes in A. marina, classifying them into three subfamilies with high phylogenetic conservation. Family expansion occurred mainly through 20 segmental duplication events under purifying selection (Ka/Ks < 1). Promoter regions were enriched in stress- and hormone-responsive elements, and expression profiling showed distinct tissue-specific and stress-responsive patterns. Our study specifically focused on the functional characterization of AmSnRK2.7. AmSnRK2.7-overexpressed Arabidopsis thaliana increases salt tolerance by altering the expression of ion transport genes and mediating Na+ efflux from the roots. Further investigation revealed that AmSnRK2.7 interacts with and phosphorylates AmENO2 (enolase, a key enzyme in the glycolysis pathway). Meanwhile, measurements of ATP content in wild type, AmSnRK2.7-overexpressed Arabidopsis lines and the atsnrk2.6 (homologous gene of AmSnRK2.7 in A. thaliana) mutant confirm that the AmSnRK2.7-AmENO2 module can affect the energy-driven Na+ efflux. Our findings provide key insights into the role of SnRK gene family in mangrove adaptation to saline intertidal habitat, and suggest AmSnRK2.7-AmENO2 module plays a role in salt tolerance.
Jin-Yu Liu, Yudan Xiang, Lingyu Song et al.· Plant, Cell and Environment· 0 citations
Overexpression of LpbZIP41 in perennial ryegrass enhanced thermotolerance, as evidenced by improved survival, reduced lipid peroxidation, maintained membrane integrity, and global transcriptional reprogramming under heat stress.
Zhengfu Fang, Jie Chen, Simin Wu et al.· The Plant Journal· 0 citations
The genetic and molecular basis underlying anthocyanin accumulation in mei is revealed and a PmbHLH162-PmMYC2 regulatory module in which PmbHLH162 enhances PmMYC2-mediated activation of key anthocyanin biosynthetic genes is identified.
Bo-Da Liu, Zhi-Yuan Ma, Jing Pan et al.· Plant Physiology· 0 citations
Transient overexpression and virus-induced gene silencing in tea plants demonstrated that CsbHLH18 positively regulates theanine biosynthesis by activating CsTSI transcription, elucidate a previously uncharacterized molecular mechanism underlying theanine biosynthesis and provide theoretical insights into molecular breeding and cultivation of high-quality tea varieties.
Yu Fu, Siqing Zhu, Qian-Lan Liu et al.· Journal of Agricultural and...· 0 citations
The identified SlPAE genes were classified phylogenetically into three conserved subfamilies, with branch members sharing domain architectures, motifs, and genomic structure, providing a much-needed framework for future research into their specific biological roles in tomatoes.
Ruizhen Li, Lin Shen, Jianzhong Tie et al.· BMC Plant Biology· 0 citations
This study uncovers a rare case in which a deletion of just two amino acids is sufficient to generate a potent dominant-negative regulator, designated SmMYB1alf-D, which enables reliable prediction of fruit color and provides a breeding strategy to precisely manipulate anthocyanin metabolism.
Yan Li, Yiwen Tian, Wanyue Li et al.· Plant Communications· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.