Department of Basic Medical Sciences, National Institute for Minamata Disease, 4058-18 Hama, Minamata, Kumamoto, 867-0008, Japan.
Division of Neuroimmunology, Joint Research Center for Human Retrovirus Infection, Kagoshima University, Kagoshima, 890-8544, Japan.
Sci Rep. 2024 Sep 18;14(1):21832. doi: 10.1038/s41598-024-72788-z.
Methylmercury (MeHg) is a well-known neurotoxicant that induces various cellular functions depending on cellular- and developmental-specific vulnerabilities. MeHg has a high affinity for selenol and thiol groups, thus impairing the antioxidant system. Such affinity characteristics of MeHg led us to develop sensor vectors to assess MeHg toxicity. In this study, MeHg-mediated defects in selenocysteine (Sec) incorporation were demonstrated using thioredoxin reductase 1 cDNA fused with the hemagglutinin tag sequence at the C-terminus. Taking advantage of such MeHg-mediated defects in Sec incorporation, a cDNA encoding luciferase with a Sec substituted for cysteine-491 was constructed. This construct showed MeHg-induced decreases in signaling in a dose-dependent manner. To directly detect truncated luciferase under MeHg exposure, we further constructed a new sensor vector fused with a target for proteasomal degradation. However, this construct was inadequate because of the low rate of Sec insertion, even in the absence of MeHg. Finally, a Krab transcriptional suppressor fused with Sec was constructed and assessed to demonstrate MeHg-dependent increases in signal intensity. We confirmed that the vector responded specifically and in a dose-dependent manner to MeHg in cultured cerebellar granule cells. This vector is expected to allow monitoring of MeHg-specific toxicity via spatial and temporal imaging.
甲基汞(MeHg)是一种众所周知的神经毒素,根据细胞和发育的特异性脆弱性,诱导各种细胞功能。MeHg 对硒醇和巯基具有高亲和力,从而破坏抗氧化系统。MeHg 的这种亲和特性使我们开发了用于评估 MeHg 毒性的传感器载体。在这项研究中,使用在 C 末端融合了血凝素标签序列的硫氧还蛋白还原酶 1 cDNA 证明了 MeHg 介导的硒代半胱氨酸(Sec)掺入缺陷。利用 MeHg 介导的 Sec 掺入缺陷,构建了编码带有 Sec 取代半胱氨酸 491 的荧光素酶的 cDNA。该构建体显示出剂量依赖性的信号降低。为了在 MeHg 暴露下直接检测截短的荧光素酶,我们进一步构建了一种与蛋白酶体降解靶标融合的新型传感器载体。然而,由于即使在没有 MeHg 的情况下 Sec 插入率也很低,因此该构建体不够充分。最后,构建了一个与 Sec 融合的 Krab 转录抑制剂,并对其进行了评估,以证明 MeHg 依赖性信号强度增加。我们证实该载体在培养的小脑颗粒细胞中特异性且剂量依赖性地对 MeHg 做出反应。该载体有望通过空间和时间成像来监测 MeHg 特异性毒性。