College of Agricultural, Guizhou University, Guiyang 550025, China.
Institute of New Rural Development, West Campus, Guizhou University, Guiyang 550025, China.
Int J Mol Sci. 2022 Feb 3;23(3):1734. doi: 10.3390/ijms23031734.
Cadmium (Cd) pollution in cultivated land is caused by irresistible geological factors and human activities; intense diffusion and migration have seriously affected the safety of food crops. Plants have evolved mechanisms to control excessive influx of Cd in the environment, such as directional transport, chelation and detoxification. This is done by some specific metalloproteins, whose key amino acid motifs have been investigated by scientists one by one. The application of powerful cell biology, crystal structure science, and molecular probe targeted labeling technology has identified a series of protein families involved in the influx, transport and detoxification of the heavy metal Cd. This review summarizes them as influx proteins (NRAMP, ZIP), chelating proteins (MT, PDF), vacuolar proteins (CAX, ABCC, MTP), long-distance transport proteins (OPT, HMA) and efflux proteins (PCR, ABCG). We selected representative proteins from each family, and compared their amino acid sequence, motif structure, subcellular location, tissue specific distribution and other characteristics of differences and common points, so as to summarize the key residues of the Cd binding target. Then, we explain its special mechanism of action from the molecular structure. In conclusion, this review is expected to provide a reference for the exploration of key amino acid targets of Cd, and lay a foundation for the intelligent design and breeding of crops with high/low Cd accumulation.
农田镉污染是由不可抗拒的地质因素和人类活动引起的;其强烈的扩散和迁移严重影响了食用作物的安全。植物已经进化出了控制环境中过量镉流入的机制,例如定向运输、螯合和解毒。这是通过一些特定的金属蛋白来完成的,科学家们已经逐一研究了这些金属蛋白关键氨基酸模体。强大的细胞生物学、晶体结构科学和分子探针靶向标记技术的应用已经确定了一系列与重金属镉的流入、运输和解毒有关的蛋白质家族。本综述将它们总结为流入蛋白(NRAMP、ZIP)、螯合蛋白(MT、PDF)、液泡蛋白(CAX、ABCC、MTP)、长距离运输蛋白(OPT、HMA)和外排蛋白(PCR、ABCG)。我们从每个家族中选择了代表性蛋白,并比较了它们的氨基酸序列、模体结构、亚细胞定位、组织特异性分布和其他差异和共同点的特征,以总结 Cd 结合靶标的关键残基。然后,我们从分子结构上解释其特殊的作用机制。总之,本综述有望为探索 Cd 的关键氨基酸靶标提供参考,并为高/低 Cd 积累作物的智能设计和培育奠定基础。