Zhang Cheng, Tong Chenchen, Cao Lei, Zheng Pengpeng, Tang Xiaofeng, Wang Lihuan, Miao Min, Liu Yongsheng, Cao Shuqing
School of Food and Biological Engineering, Hefei University of Technology, Hefei, Anhui, China.
School of Horticulture, Anhui Agricultural University, Hefei, China.
Plant Cell Environ. 2023 May;46(5):1653-1670. doi: 10.1111/pce.14558. Epub 2023 Feb 14.
Cadmium (Cd) is one of the most dangerous environmental pollutants among heavy metals, and threatens food safety and human health by accumulating in plant sink tissues. Here, we report a novel regulatory cascade that profoundly influences Cd tolerance in Arabidopsis. Phenotypic analysis showed that an insertional knockdown mutation at the Arabidopsis Tóxicos en Levadura 31 (ATL31) locus resulted in hypersensitivity to Cd stress, most likely due to a significant increase in Cd accumulation. Consistently, ATL31-overexpressing lines exhibited enhanced Cd stress tolerance and reduced Cd accumulation. Further, IRON-REGULATED TRANSPORTER 1 (IRT1) was identified, and yeast two-hybrid, co-immunoprecipitation and bimolecular fluorescence complementation assays demonstrated its interaction with ATL31. Biochemical, molecular, and genetic analyses showed that IRT1 is targeted by ATL31 for ubiquitin-conjugated degradation in response to Cd stress. Intriguingly, transcription of ATL31 was strongly induced by Cd stress. In addition, transgenic and molecular analyses showed that WRKY33 directly activated the transcription of ATL31 in response to Cd stress and positively regulated Cd tolerance. Genetic analysis indicated that ATL31 acts upstream of IRT1 and downstream of WRKY33 to regulate Cd tolerance. Our study revealed that the WRKY33-ATL31-IRT1 module plays a crucial role in timely blocking Cd absorption to prevent metal toxicity in Arabidopsis.
镉(Cd)是重金属中最危险的环境污染物之一,通过在植物库组织中积累威胁食品安全和人类健康。在此,我们报道了一种对拟南芥镉耐受性有深远影响的新型调控级联反应。表型分析表明,拟南芥酵母毒性31(ATL31)基因座处的插入敲除突变导致对镉胁迫超敏感,这很可能是由于镉积累显著增加所致。一致地,过表达ATL31的株系表现出增强的镉胁迫耐受性和减少的镉积累。此外,还鉴定出了铁调节转运蛋白1(IRT1),酵母双杂交、免疫共沉淀和双分子荧光互补分析证明了它与ATL31相互作用。生化、分子和遗传分析表明,在镉胁迫下,IRT1被ATL31靶向进行泛素化共轭降解。有趣的是,镉胁迫强烈诱导ATL31的转录。此外,转基因和分子分析表明,WRKY33在镉胁迫下直接激活ATL31的转录并正向调节镉耐受性。遗传分析表明,ATL31在IRT1的上游和WRKY33的下游发挥作用以调节镉耐受性。我们的研究表明,WRKY33-ATL31-IRT1模块在及时阻断镉吸收以防止拟南芥中金属毒性方面起着关键作用。