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首页> 外文期刊>Ecotoxicology and Environmental Safety >In vivo and in vitro studies on inactivation of selenium containing protein-glutathione peroxidase 3 in mice nephrocytes caused by lead
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In vivo and in vitro studies on inactivation of selenium containing protein-glutathione peroxidase 3 in mice nephrocytes caused by lead

机译:体内和体外研究关于铅癌小鼠肾上氧化酶3含硒 - 谷胱甘肽过氧化物酶3的体外研究

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摘要

Glutathione peroxidases (Gpxs) play vital roles in elimination of hydroperoxide and other reactive oxygen species through catalyzing reduced glutathione to protect from oxidative stress caused by heavy metals such as lead. Among the family of Gpxs, Gpx3 is the only extracellular enzyme synthesized in the kidney and actively secreted into the plasma. This study investigated mechanisms of lead-induced GPx3 inactivation both at the animal and molecular levels. Six-week-old mice were randomly divided into 4 groups, and exposed to different lead concentrations (0, 1, 2 and 4 g/L) in their drinking water for 4 weeks. Contents of GPx3 in blood serum were tested by enzyme-linked immunosorbent assay (ELISA) and the mRNA levels of Gpx3 in mice nephrocytes were determined by quantitative real-time PCR (qPCR), both of which showed significantly inhibited at higher lead concentrations accompanied by the decreased Gpx3 activities and the elevated levels of malondialdehyde (MDA) in nephrocytes, which indicated that lead could induce strongly oxidative stress through affecting Gpx3 function. So we further investigated molecular mechanisms of GPx3 inactivation caused by lead with multiple spectroscopic techniques, isothermal titration calorimetry (ITC) and molecular docking studies in vitro. Results showed that lead statically quenched GPx3 fluorescence by tightly binding to the structural domain of GPx3 in a 3:1 ratio with high binding affinity (K 1= 3.1(+/- 0.087) x 10(7) mol(-1)). Further investigation of the conformation of GPx3 by UV-visible spectroscopy and circular dichroism (CD) spectroscopy indicated that lead changed the secondary structure of GPx3 by loosening the GPx3 skeleton and decreasing the hydrophobicity around tryptophan residues. This work proved in vivo and in vitro experiments that lead could induce oxidative stress in mice nephrocytes by interacting with GPx3.
机译:谷胱甘肽过氧化物酶(GPXS)通过催化降低的谷胱甘肽来消除氢过氧化物和其他活性氧物质的致力作用,以保护由重金属如铅如重金属引起的氧化应激。在GPX的家族中,GPX3是肾脏中唯一合成的细胞外酶,并主动地分泌到血浆中。本研究研究了在动物和分子水平下铅诱导的GPX3失活机制。将六周的小鼠随机分为4组,并在其饮用水中暴露于不同的铅浓度(0,1,2和4g / L)4周。通过酶联免疫吸附试验(ELISA)测试血液血清中的GPX3含量,并通过定量实时PCR(QPCR)测定小鼠肾细胞中GPX3的mRNA水平,两者在伴随的较高铅浓度下显着抑制降低GPX3活性和肾红细胞中丙醛(MDA)的升高,表明铅可以通过影响GPX3功能来诱导强氧化胁迫。因此,我们进一步研究了具有多种光谱技术引起的GPX3失活的分子机制,具有多种光谱技术,等温滴定热量(ITC)和体外分子对接研究。结果表明,通过用高结合亲和力的3:1的比例紧密结合GPX3的结构结构域来静猝灭的GPX3荧光(K 1 = 3.1(+/- 0.087)×10(7)摩尔(-1))。进一步调查通过UV可见光光谱和圆形二色性(CD)光谱表明,通过松动GPX3骨架并降低色氨酸残留物的疏水性,引入铅改变了GPX3的二次结构。本工作证明了体内和体外实验,通过与GPX3相互作用,铅可以诱导小鼠肾细胞中的氧化应激。

著录项

  • 来源
    《Ecotoxicology and Environmental Safety》 |2020年第10期|111008.1-111008.7|共7页
  • 作者单位

    Qilu Univ Technol Shandong Acad Sci Lab Immunol Environm & Hlth Sch Pharmaceut Sci Shandong Anal & Test Ctr Jinan 250014 Peoples R China|Hubei Minzu Univ Minda Hosp Hubei Prov Key Lab Occurrence & Intervent Rheumat Enshi 445000 Peoples R China;

    Qilu Univ Technol Shandong Acad Sci Lab Immunol Environm & Hlth Sch Pharmaceut Sci Shandong Anal & Test Ctr Jinan 250014 Peoples R China;

    Shandong Univ Sch Environm Sci & Engn China Amer CRC Environm & Hlth Qingdao 266237 Peoples R China;

    Shandong Univ Sch Environm Sci & Engn China Amer CRC Environm & Hlth Qingdao 266237 Peoples R China;

    Hubei Minzu Univ Minda Hosp Hubei Prov Key Lab Occurrence & Intervent Rheumat Enshi 445000 Peoples R China;

    Hubei Minzu Univ Minda Hosp Hubei Prov Key Lab Occurrence & Intervent Rheumat Enshi 445000 Peoples R China;

    Shandong Univ Sch Environm Sci & Engn China Amer CRC Environm & Hlth Qingdao 266237 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Lead toxicity; Gpx3; Selenoprotein; Kidney toxicity; Oxidative stress; Binding interactions;

    机译:致毒性;GPX3;硒蛋白;肾毒性;氧化应激;结合相互作用;

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