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比较镉摄取和分布过程中的基因表达:未处理的与经口服镉处理的野生型和ZIP14基因敲除小鼠。

Comparing gene expression during cadmium uptake and distribution: untreated versus oral Cd-treated wild-type and ZIP14 knockout mice.

作者信息

Jorge-Nebert Lucia F, Gálvez-Peralta Marina, Landero Figueroa Julio, Somarathna Maheshika, Hojyo Shintaro, Fukada Toshiyuki, Nebert Daniel W

机构信息

*Department of Environmental Health and Center for Environmental Genetics, University of Cincinnati Medical Center, Cincinnati, Ohio 45267-0056, Department of Chemistry, University of Cincinnati, Cincinnati, Ohio 45221-0172, Laboratory for Homeostatic Network, RIKEN Center for Integrative Medical Sciences, Tsurumi, Yokohama, Kanagawa 230-0045, Japan, Deutsches Rheuma-Forschungszentrum, Berlin, Osteoimmunology, 10117 Berlin, Germany and Division of Pathology, Department of Oral Diagnostic Sciences, School of Dentistry, Showa University, Shinagawa, Tokyo 142-8555, Japan.

*Department of Environmental Health and Center for Environmental Genetics, University of Cincinnati Medical Center, Cincinnati, Ohio 45267-0056, Department of Chemistry, University of Cincinnati, Cincinnati, Ohio 45221-0172, Laboratory for Homeostatic Network, RIKEN Center for Integrative Medical Sciences, Tsurumi, Yokohama, Kanagawa 230-0045, Japan, Deutsches Rheuma-Forschungszentrum, Berlin, Osteoimmunology, 10117 Berlin, Germany and Division of Pathology, Department of Oral Diagnostic Sciences, School of Dentistry, Showa University, Shinagawa, Tokyo 142-8555, Japan *Department of Environmental Health and Center for Environmental Genetics, University of Cincinnati Medical Center, Cincinnati, Ohio 45267-0056, Department of Chemistry, University of Cincinnati, Cincinnati, Ohio 45221-0172, Laboratory for Homeostatic Network, RIKEN Center for Integrative Medical Sciences, Tsurumi, Yokohama, Kanagawa 230-0045, Japan, Deutsches Rheuma-Forschungszentrum, Berlin, Osteoimmunology, 10117 Berlin, Germany and Division of Pathology, Department of Oral Diagnostic Sciences, School of Dentistry, Showa University, Shinagawa, Tokyo 142-8555, Japan.

出版信息

Toxicol Sci. 2015 Jan;143(1):26-35. doi: 10.1093/toxsci/kfu204. Epub 2014 Oct 7.


DOI:10.1093/toxsci/kfu204
PMID:25294218
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4274379/
Abstract

The nonessential metal cadmium (Cd) is toxic only after entering the cell. Proteins possibly relevant to intracellular Cd accumulation include the divalent metal transporter-1 (DMT1) and all 14 zinc-like iron-like protein (ZIP) importers, 10 zinc transporter (ZnT) exporters, and metallothionein chaperones MT1 and MT2. Comparing oral Cd-treated ZIP14 knockout (KO) with wild-type (WT) mice, we predicted Cd uptake and distribution would be diminished in the KO-because ZIP14 is very highly expressed in GI tract and liver; this was indeed observed for Cd content in liver. However, the reverse was found in kidney and lung from 6 or 12 h through 10 days of Cd exposure; at these times, Cd accumulation was unexpectedly greater in KO than WT mice; mRNA levels of the 27 above-mentioned genes were thus examined in proximal small intestine (PSI) versus kidney to see if these paradoxical effects could be explained by substantial alterations in any of the other 26 genes. PSI genes highly expressed in untreated WT animals included seven ZIP and five ZnT transporters, DMT1, MT1, and MT2; kidney genes included 11 ZIP and 7 ZnT transporters, DMT1, MT1, and MT2. Over 10 days of oral Cd, a bimodal response was seen for Cd content in PSI and for various mRNAs; initially, acute effects caused by the toxic metal; subsequently, the up- or down-regulation of important genes presumably to combat the sustained adversity. These data underscore the complex interplay between the gastrointestinal tract and renal proteins that might be relevant to Cd uptake and distribution in animals exposed to oral Cd.

摘要

非必需金属镉(Cd)只有进入细胞后才具有毒性。可能与细胞内镉积累相关的蛋白质包括二价金属转运蛋白1(DMT1)、所有14种锌样铁样蛋白(ZIP)导入蛋白、10种锌转运蛋白(ZnT)输出蛋白以及金属硫蛋白伴侣MT1和MT2。通过比较经口给予镉处理的ZIP14基因敲除(KO)小鼠和野生型(WT)小鼠,我们预测基因敲除小鼠体内镉的摄取和分布会减少,因为ZIP14在胃肠道和肝脏中高度表达;肝脏中的镉含量确实如此。然而,在镉暴露6或12小时至10天期间,在肾脏和肺中发现了相反的情况;此时,基因敲除小鼠体内的镉积累出乎意料地高于野生型小鼠;因此,检测了上述27个基因在近端小肠(PSI)和肾脏中的mRNA水平,以确定这些矛盾的效应是否可以用其他26个基因中的任何一个的显著变化来解释。在未处理的野生型动物中高表达的PSI基因包括7种ZIP和5种ZnT转运蛋白、DMT1、MT1和MT2;肾脏基因包括11种ZIP和7种ZnT转运蛋白、DMT1、MT1和MT2。在经口给予镉的10天期间,PSI中的镉含量和各种mRNA呈现双峰反应;最初,由有毒金属引起急性效应;随后,重要基因上调或下调,可能是为了应对持续的逆境。这些数据强调了胃肠道和肾脏蛋白质之间复杂的相互作用,这可能与经口接触镉的动物体内镉的摄取和分布有关。

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本文引用的文献

[1]
Integrated redox proteomics and metabolomics of mitochondria to identify mechanisms of cd toxicity.

Toxicol Sci. 2014-2-4

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Oral cadmium in mice carrying 5 versus 2 copies of the Slc39a8 gene: comparison of uptake, distribution, metal content, and toxicity.

Int J Toxicol. 2014

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Oral benzo[a]pyrene: understanding pharmacokinetics, detoxication, and consequences--Cyp1 knockout mouse lines as a paradigm.

Mol Pharmacol. 2013-6-12

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