Yu Liyang, Tian Yujuan, Wang Xiangyu, Cao Fei, Wang Haifen, Huang Ruimin, Guo Chunlei, Zhang Haie, Zhang Jingzheng
Engineering Research Center of Chestnut Industry Technology, Ministry of Education, Hebei Normal University of Science and Technology, Qinhuangdao, 066004, Hebei, China; Hebei Key Laboratory of Horicultural Germplasm Excavation and Innovative Utilization, College of Horticulture Science and Technology, Hebei Normal University of Science and Technology, Changli, 066600, Hebei, China.
Engineering Research Center of Chestnut Industry Technology, Ministry of Education, Hebei Normal University of Science and Technology, Qinhuangdao, 066004, Hebei, China.
Plant Physiol Biochem. 2025 Feb;219:109450. doi: 10.1016/j.plaphy.2024.109450. Epub 2024 Dec 24.
The ATP-binding cassette (ABC) gene family comprises some of the most critical transporter proteins in plants, playing vital roles in maintaining cellular homeostasis and adapting to environmental changes. While ABC transporters have been extensively characterized in various plant species, their profile in C. mollissima remains less understood. In this study, 164 ABC genes were identified and characterized within the C. mollissima genome, and subsequently classified into eight subfamilies. Collinear analysis suggested that dispersed duplication was the primary mechanism driving the expansion of the CmABC gene family. The study also examined morphological and physiological changes in C. mollissima under temperature stress, highlighting significant decreases in photosynthetic indicators and SOD enzyme activity, while other indicators varied. Transcriptome analysis revealed distinct expression patterns of various CmABC genes under temperature stress, identifying CmABCG29c and CmABCB11e as key candidates for responding to temperature stress. This was based on their expression patterns, correlation with physiological indicators, and WGCNA analysis. The expression levels of CmABC genes measured in RT-qPCR experiments were consistent with those observed in RNA-seq analysis. This research provides a theoretical foundation for understanding the physiological and gene expression responses of C. mollissima to temperature stress.
ATP结合盒(ABC)基因家族包含植物中一些最关键的转运蛋白,在维持细胞内稳态和适应环境变化方面发挥着至关重要的作用。虽然ABC转运蛋白已在各种植物物种中得到广泛表征,但其在麻栎中的情况仍了解较少。在本研究中,在麻栎基因组中鉴定并表征了164个ABC基因,随后将其分为八个亚家族。共线性分析表明,分散重复是驱动CmABC基因家族扩张的主要机制。该研究还考察了温度胁迫下麻栎的形态和生理变化,结果显示光合指标和超氧化物歧化酶(SOD)酶活性显著降低,而其他指标则有所不同。转录组分析揭示了温度胁迫下各种CmABC基因的不同表达模式,确定CmABCG29c和CmABCB11e是响应温度胁迫的关键候选基因。这是基于它们的表达模式、与生理指标的相关性以及加权基因共表达网络分析(WGCNA)得出的。在逆转录定量PCR(RT-qPCR)实验中测得的CmABC基因表达水平与RNA测序(RNA-seq)分析中观察到的结果一致。本研究为理解麻栎对温度胁迫的生理和基因表达反应提供了理论基础。