Li Jiawen, Zhu Yuanjing, Ma Guangyao, Li Haoling, Yang Yun, Meng Hui, Wei Jianhe
Key Laboratory of Resources Conservation and Development of Southern Medicine of Hainan Province & Hainan Branch of the Institute of Medicinal Plant Development, Chinese Academy of Medical Sciences and Peking Union Medical College, Haikou 570311, China.
Key Laboratory of Bioactive Substances and Resources Utilization of Chinese Herbal Medicine, Ministry of Education & National Engineering Laboratory for Breeding of Endangered Medicinal Materials, Institute of Medicinal Plant Development Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing 100193, China.
Int J Mol Sci. 2025 May 12;26(10):4629. doi: 10.3390/ijms26104629.
The heartwood of T. Chen has garnered significant attraction due to its high medicinal, aromatic and timber values; however, its formation mechanism remains unexplored. This study utilized the sapwood (N-B), transition zone (N-T), and heartwood (N-H) of the xylem of 15-year-old, naturally heartwood-forming to observe the nuclei of parenchyma cells, revealing that no living cells were specialized in synthesizing the secondary metabolites of heartwood in the N-H. Additionally, analysis of gene expression patterns across different compartments indicated that differentially expressed genes (DEGs) involved in the synthesis of secondary metabolites of heartwood were primarily up-regulated in the N-T, suggesting that the pattern of heartwood formation in follows the Type-I (Robinia-Type) model, wherein secondary metabolites are synthesized in situ in the ray parenchyma cells of the N-T, followed by programmed cell death (PCD) leading to heartwood formation. Furthermore, DEGs related to ethylene biosynthesis and signaling pathways were up-regulated in the N-T, suggesting that ethylene signaling may play a critical role in regulating the heartwood formation process of . Treatment of suspension cells with polyethylene glycol (PEG) and an ethylene synthesis inhibitor (AVG) further confirmed that ethylene acts as a key signaling molecule in the formation of heartwood-like material in . This study provides initial insights into the molecular mechanisms underlying heartwood formation in and offers a foundation for developing heartwood formation and promotion technologies.
陈木的心材因其高药用、芳香和木材价值而备受关注;然而,其形成机制仍未得到探索。本研究利用15年生自然形成心材的木质部的边材(N-B)、过渡区(N-T)和心材(N-H)来观察薄壁细胞的细胞核,结果表明在N-H中没有活细胞专门用于合成心材的次生代谢产物。此外,对不同区域基因表达模式的分析表明,参与心材次生代谢产物合成的差异表达基因(DEGs)主要在N-T中上调,这表明陈木的心材形成模式遵循I型(刺槐型)模型,即次生代谢产物在N-T的射线薄壁细胞中原位合成,随后发生程序性细胞死亡(PCD)导致心材形成。此外,与乙烯生物合成和信号通路相关的DEGs在N-T中上调,这表明乙烯信号可能在调节陈木的心材形成过程中起关键作用。用聚乙二醇(PEG)和乙烯合成抑制剂(AVG)处理悬浮细胞进一步证实,乙烯在陈木中的心材状物质形成中作为关键信号分子起作用。本研究为陈木心材形成的分子机制提供了初步见解,并为开发心材形成和促进技术提供了基础。