Lin Kaina, Xu Kewen, Chen Yiqing, Lu Yifan, Zhou Meixue, Cao Fangbin
Department of Agronomy, College of Agriculture and Biotechnology, Zijingang Campus, Zhejiang University, Hangzhou, China.
Tasmanian Institute of Agriculture, University of Tasmania, Tasmania, Australia.
Plant Cell Environ. 2025 Feb;48(2):1705-1716. doi: 10.1111/pce.15244. Epub 2024 Nov 1.
The increasing contamination of agricultural soils with cadmium (Cd) poses a significant threat to human health and global food security. Plants initiate a series of mechanisms to reduce Cd toxicity. However, the response of maize to Cd toxicity remains poorly understood. In this study, we identified that ZmHMT3, which encodes a homocysteine S-methyltransferases family protein, acted as a regulator of Cd tolerance in maize. Subcellular localization and in situ PCR exhibited that ZmHMT3 was localized in the cytoplasm and predominantly expressed in the phloem. Overexpression of ZmHMT3 enhanced Cd tolerance and reduced Cd concentration in both shoots and roots. In contrast, ZmHMT3 mutants attenuated Cd tolerance but did not change shoot Cd concentration. Heterologous overexpression of ZmHMT3 in rice enhanced Cd tolerance and reduced grain Cd concentration. Transcriptome analysis revealed that ZmHMT3 upregulated the expression of stress-responsive genes, especially glutathione S-transferases (GSTs) and transcription factors, including MYBs, NACs and WRKYs, and modulates the expression of different ATP-binding cassette (ABC) transporters, thereby enhancing Cd tolerance. Collectively, these findings highlight the pivotal role of ZmHMT3 in Cd tolerance and as a candidate gene for improving Cd tolerance in elite maize varieties.
农业土壤中镉(Cd)污染的日益加剧对人类健康和全球粮食安全构成了重大威胁。植物启动了一系列机制来降低镉的毒性。然而,玉米对镉毒性的反应仍知之甚少。在本研究中,我们鉴定出编码同型半胱氨酸S-甲基转移酶家族蛋白的ZmHMT3在玉米中作为镉耐受性的调节因子发挥作用。亚细胞定位和原位PCR显示ZmHMT3定位于细胞质中,且主要在韧皮部表达。ZmHMT3的过表达增强了镉耐受性,并降低了地上部和根部的镉浓度。相反,ZmHMT3突变体减弱了镉耐受性,但未改变地上部镉浓度。ZmHMT3在水稻中的异源过表达增强了镉耐受性并降低了籽粒镉浓度。转录组分析表明,ZmHMT3上调了胁迫响应基因的表达,尤其是谷胱甘肽S-转移酶(GSTs)和转录因子,包括MYBs、NACs和WRKYs,并调节不同ATP结合盒(ABC)转运蛋白的表达,从而增强镉耐受性。总的来说,这些发现突出了ZmHMT3在镉耐受性中的关键作用,并作为改良优良玉米品种镉耐受性的候选基因。