Li Yuanqiu, Qi Xiaoting
Beijing Key Laboratory of Plant Gene Resources and Biotechnology for Carbon Reduction and Environmental Improvement and College of Life Sciences, Capital Normal University, Beijing 100048, China.
Beijing Key Laboratory of Plant Gene Resources and Biotechnology for Carbon Reduction and Environmental Improvement and College of Life Sciences, Capital Normal University, Beijing 100048, China.
J Hazard Mater. 2023 Jun 15;452:131226. doi: 10.1016/j.jhazmat.2023.131226. Epub 2023 Mar 17.
Cadmium (Cd) is highly toxic to all organisms including plants, and recently tryptophan (Trp) pretreatment of plant seedlings is shown to improve Cd tolerance. But the underlying mechanism remains largely unknown. In this study, we used Arabidopsis (Arabidopsis thaliana) to determine the physiological relevance of Trp pretreatment in alleviating Cd toxicity in plants and explore its molecular mechanism with a focus on the metabolic pathways. The results showed that Trp pretreatment maintained the biomass and root lengths, relieved Cd-induced lipid peroxidation, and reduced Cd transport to the shoots, and eventually improved the response against Cd in Arabidopsis seedlings. The integrative analyses of the transcriptome and metabolome further revealed that Trp pretreatment alleviated Cd toxicity not only through a known mechanism of producing a major auxin indole-3-acetic acid and maintaining its levels, but also through two previously unrecognized mechanisms: increasing the area and strength of cell walls by promoting lignification to further reduce Cd entry, and fine-tuning Cd detoxification products derived from sulfur-containing amino acid metabolism. Our findings thereby provide deep mechanical insights into how Trp alleviates Cd toxicity in plants.
镉(Cd)对包括植物在内的所有生物体都具有高毒性,最近研究表明对植物幼苗进行色氨酸(Trp)预处理可提高植物对镉的耐受性。但其潜在机制在很大程度上仍不清楚。在本研究中,我们利用拟南芥(Arabidopsis thaliana)来确定Trp预处理在减轻植物镉毒性方面的生理相关性,并重点围绕代谢途径探索其分子机制。结果表明,Trp预处理可维持生物量和根长,减轻镉诱导的脂质过氧化,并减少镉向地上部的转运,最终改善拟南芥幼苗对镉的响应。转录组和代谢组的综合分析进一步表明,Trp预处理减轻镉毒性不仅通过产生主要生长素吲哚 - 3 - 乙酸并维持其水平这一已知机制,还通过两个先前未被认识的机制:通过促进木质化增加细胞壁面积和强度以进一步减少镉进入,以及微调源自含硫氨基酸代谢的镉解毒产物。因此,我们的研究结果为Trp如何减轻植物镉毒性提供了深入的机制见解。