Departamento de Bioquímica, Instituto de Química, UFRJ, 21949-900 Rio de Janeiro, RJ, Brazil.
Environ Toxicol Pharmacol. 2005 Nov;20(3):383-9. doi: 10.1016/j.etap.2005.02.009.
In a previous paper, we demonstrated that the cytoplasmic level of glutathione-cadmium complex affects cadmium absorption by Saccharomyces cerevisiae, a usual eukaryotic cell model for studies of stress response. Furthermore, it was also observed that the absorption of this non-essential metal seems to be achieved by Zrt1, a zinc transporter of high affinity. Looking a little further into the control mechanism, we have verified that the deficiency in Ace1 impaired cadmium transport significantly. Ace1 is a transcription factor that activates the expression of CUP1, which encodes the S. cerevisiae metallothionein. On the other hand, the deficiency in the transcription factor Yap1 produced a two-fold increase in cadmium uptake. Cells lacking Yap1 showed low levels of glutathione, which could explain their higher capacity of absorbing cadmium. However, the mutant strain Ace1 deficient exhibited considerable amounts of glutathione. By using RT-PCR analysis, we observed that the lack of Yap1 activates the expression of both CUP1 and ZRT1, while the lack of Ace1 inhibited significantly the expression of these genes. Thus, metallothionein seems also to participate in the regulation of cadmium transport by controlling the expression of ZRT1. We propose that, at low levels of Cup1, the cytoplasmic concentration of essential metals, such as zinc, in free form (not complexated), increases, inhibiting ZRT1 expression. In contrast, at high levels of Cup1, the concentration of these metals falls, inducing ZRT1 expression and favoring cadmium absorption. These results confirm the involvement of zinc transport system with cadmium transport.
在之前的一篇论文中,我们证明了谷胱甘肽-镉复合物的细胞质水平影响了酿酒酵母(一种常用的真核细胞应激反应模型)对镉的吸收。此外,我们还观察到,这种非必需金属的吸收似乎是由高亲和力的锌转运蛋白 Zrt1 实现的。进一步研究控制机制,我们发现 Ace1 缺陷显著影响镉的运输。Ace1 是一种转录因子,可激活编码酿酒酵母金属硫蛋白的 CUP1 的表达。另一方面,转录因子 Yap1 的缺陷导致镉摄取增加了两倍。缺乏 Yap1 的细胞谷胱甘肽水平较低,这可以解释它们吸收镉的能力更高。然而,Ace1 缺陷的突变株表现出相当数量的谷胱甘肽。通过 RT-PCR 分析,我们观察到 Yap1 的缺乏激活了 CUP1 和 ZRT1 的表达,而 Ace1 的缺乏则显著抑制了这些基因的表达。因此,金属硫蛋白似乎也通过控制 ZRT1 的表达参与镉转运的调节。我们提出,在 Cup1 水平较低的情况下,自由形式(未配位)的必需金属(如锌)的细胞质浓度增加,抑制了 ZRT1 的表达。相反,在 Cup1 水平较高的情况下,这些金属的浓度下降,诱导 ZRT1 的表达并促进镉的吸收。这些结果证实了锌转运系统与镉转运的参与。