Liu Jiawei, Du Jie, Wu Di, Ji Xiang, Zhao Xiujuan
College of Life Sciences, Inner Mongolia Agricultural University, Hohhot 010010, China.
Bayannur Center for Disease Control and Prevention, Bayannaoer 015000, China.
Biology (Basel). 2024 Dec 15;13(12):1049. doi: 10.3390/biology13121049.
exhibits high tolerance to arsenic; however, the mechanisms underlying its response to the arsenic stress have not been fully elucidated. This study investigated the growth and resistance mechanisms of under As stress by measuring physiological and biochemical indices, conducting transcriptome sequencing, and validating the results through qPCR. The findings show that arsenic stress affected the antioxidant system and photosynthetic pigment synthesis in . The algae mitigated arsenic-induced oxidative stress by increasing cellular metabolic rates, enhancing cell wall stability, and reducing membrane lipid peroxidation. Transcriptome analysis revealed that pathways related to oxidative phosphorylation and chlorophyll degradation were upregulated under arsenic stress, while the expression of membrane transporters was significantly downregulated. Additionally, the algae alleviated arsenic stress by producing hydrogen and polyamine compounds. This study provides insights into the mechanisms of response to arsenic stress and elucidates the molecular pathways involved in the stress response to As.
对砷具有高耐受性;然而,其对砷胁迫响应的潜在机制尚未完全阐明。本研究通过测量生理生化指标、进行转录组测序并通过qPCR验证结果,研究了在砷胁迫下[具体藻类名称未给出]的生长和抗性机制。研究结果表明,砷胁迫影响了[具体藻类名称未给出]中的抗氧化系统和光合色素合成。藻类通过提高细胞代谢速率、增强细胞壁稳定性和减少膜脂过氧化来减轻砷诱导的氧化应激。转录组分析显示,在砷胁迫下,与氧化磷酸化和叶绿素降解相关的途径上调,而膜转运蛋白的表达显著下调。此外,藻类通过产生氢气和多胺化合物来缓解砷胁迫。本研究为[具体藻类名称未给出]对砷胁迫的响应机制提供了见解,并阐明了参与对砷胁迫响应的分子途径。