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MRP2 与无机汞半胱氨酸结合物的转运动力学。

MRP2 and the Transport Kinetics of Cysteine Conjugates of Inorganic Mercury.

机构信息

Department of Biomedical Sciences, Mercer University School of Medicine, 1501 College St., Macon, GA, 31207, USA.

Federal University of Santa Maria, Santa Maria, RS, Brazil.

出版信息

Biol Trace Elem Res. 2018 Jul;184(1):279-286. doi: 10.1007/s12011-017-1163-3. Epub 2017 Oct 4.

Abstract

Human exposure to mercuric species occurs regularly throughout the world. Mercuric ions may accumulate in target cells and subsequently lead to cellular intoxication and death. Therefore, it is important to have a thorough understanding of how transportable species of mercury are handled by specific membrane transporters. The purpose of the current study was to characterize the transport kinetics of cysteine (Cys)-S-conjugates of inorganic mercury (Cys-S-Hg-S-Cys) at the site of the multidrug resistance-associated transporter 2 (MRP2). In order to estimate the maximum velocity (V ) and Michaelis constant (K ) for the uptake of Cys-S-Hg-S-Cys mediated by MRP2, in vitro studies were carried out using radioactive Cys-S-Hg-S-Cys (5 μM) and inside-out membrane vesicles made from Sf9 cells transfected with MRP2. The V was estimated to be 74.3 ± 10.1 nmol mg protein 30 s while the K was calculated to be 63.4 ± 27.3 μM. In addition, in vivo studies were utilized to measure the disposition of inorganic mercury (administered dose 0.5 μmol kg in 2 mL normal saline) over time in Wistar and TR¯ (Mrp2-deficient) rats. These studies measured the disposition of mercuric ions in the kidney, liver, and blood. In general, the data suggest that the initial uptake of mercuric conjugates into select target cells is rapid followed by a period of slower uptake and accumulation. Overall, the data indicate that MRP2 transports Cys-S-Hg-S-Cys in a manner that is similar to that of other MRP2 substrates.

摘要

人类在全球范围内经常接触汞的各种化合物。汞离子可能在靶细胞中积累,并随后导致细胞中毒和死亡。因此,深入了解汞的可传输物种如何被特定的膜转运蛋白处理非常重要。本研究的目的是表征多药耐药相关转运蛋白 2 (MRP2) 所在位置的无机汞 (Cys-S-Hg-S-Cys) 的半胱氨酸 (Cys) -S- 缀合物的转运动力学。为了估计 MRP2 介导的 Cys-S-Hg-S-Cys 摄取的最大速度 (V) 和米氏常数 (K),使用放射性 Cys-S-Hg-S-Cys (5 μM) 和 Sf9 细胞转染的 MRP2 的外翻膜囊泡进行了体外研究。V 估计为 74.3 ± 10.1 nmol mg 蛋白 30 s,而 K 计算为 63.4 ± 27.3 μM。此外,还利用体内研究来测量在 Wistar 和 TR¯(Mrp2 缺陷)大鼠中随时间推移无机汞(在 2 mL 生理盐水中小鼠中注射剂量为 0.5 μmol/kg)的处置情况。这些研究测量了肾脏、肝脏和血液中汞离子的处置情况。总的来说,数据表明,汞缀合物最初快速进入选定的靶细胞,然后是一段较慢的摄取和积累期。总体而言,数据表明 MRP2 以类似于其他 MRP2 底物的方式转运 Cys-S-Hg-S-Cys。

相似文献

1
MRP2 and the Transport Kinetics of Cysteine Conjugates of Inorganic Mercury.MRP2 与无机汞半胱氨酸结合物的转运动力学。
Biol Trace Elem Res. 2018 Jul;184(1):279-286. doi: 10.1007/s12011-017-1163-3. Epub 2017 Oct 4.

本文引用的文献

1
Mechanisms involved in the transport of mercuric ions in target tissues.汞离子在靶组织中的转运机制。
Arch Toxicol. 2017 Jan;91(1):63-81. doi: 10.1007/s00204-016-1803-y. Epub 2016 Jul 15.

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