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本文引用的文献

1
Key Role for the Organic Anion Transporters, OAT1 and OAT3, in the in vivo Handling of Uremic Toxins and Solutes.有机阴离子转运体 OAT1 和 OAT3 在体内处理尿毒症毒素和溶质中的关键作用。
Sci Rep. 2017 Jul 10;7(1):4939. doi: 10.1038/s41598-017-04949-2.
2
Kynurenine Pathway of Tryptophan Metabolism: Regulatory and Functional Aspects.色氨酸代谢的犬尿氨酸途径:调节与功能方面
Int J Tryptophan Res. 2017 Mar 15;10:1178646917691938. doi: 10.1177/1178646917691938. eCollection 2017.
3
Metabolite-Sensing G Protein-Coupled Receptors-Facilitators of Diet-Related Immune Regulation.代谢物感应 G 蛋白偶联受体——饮食相关免疫调节的促进剂。
Annu Rev Immunol. 2017 Apr 26;35:371-402. doi: 10.1146/annurev-immunol-051116-052235.
4
GPCR-Mediated Signaling of Metabolites.代谢物的 G 蛋白偶联受体介导的信号转导。
Cell Metab. 2017 Apr 4;25(4):777-796. doi: 10.1016/j.cmet.2017.03.008.
5
Bile acids and their receptors.胆汁酸及其受体。
Mol Aspects Med. 2017 Aug;56:2-9. doi: 10.1016/j.mam.2017.01.006. Epub 2017 Jan 30.
6
TGR5, Not Only a Metabolic Regulator.TGR5,不仅仅是一种代谢调节因子。
Front Physiol. 2016 Dec 26;7:646. doi: 10.3389/fphys.2016.00646. eCollection 2016.
7
Molecular Properties of Drugs Interacting with SLC22 Transporters OAT1, OAT3, OCT1, and OCT2: A Machine-Learning Approach.与SLC22转运蛋白OAT1、OAT3、OCT1和OCT2相互作用的药物的分子特性:一种机器学习方法
J Pharmacol Exp Ther. 2016 Oct;359(1):215-29. doi: 10.1124/jpet.116.232660. Epub 2016 Aug 3.
8
An Organic Anion Transporter 1 (OAT1)-centered Metabolic Network.一个以有机阴离子转运体1(OAT1)为中心的代谢网络。
J Biol Chem. 2016 Sep 9;291(37):19474-86. doi: 10.1074/jbc.M116.745216. Epub 2016 Jul 20.
9
Analysis of ABCG2 and other urate transporters in uric acid homeostasis in chronic kidney disease: potential role of remote sensing and signaling.慢性肾脏病尿酸稳态中ABCG2及其他尿酸转运体的分析:遥感与信号传导的潜在作用
Clin Kidney J. 2016 Jun;9(3):444-53. doi: 10.1093/ckj/sfw010. Epub 2016 Apr 5.
10
Kidney versus Liver Specification of SLC and ABC Drug Transporters, Tight Junction Molecules, and Biomarkers.SLC和ABC药物转运体、紧密连接分子及生物标志物在肾脏与肝脏中的特异性
Drug Metab Dispos. 2016 Jul;44(7):1050-60. doi: 10.1124/dmd.115.068254. Epub 2016 Apr 4.

药物转运体OAT3(SLC22A8)与通过肠-肝-肾轴的内源性代谢物通讯。

The drug transporter OAT3 (SLC22A8) and endogenous metabolite communication via the gut-liver-kidney axis.

作者信息

Bush Kevin T, Wu Wei, Lun Christina, Nigam Sanjay K

机构信息

From the Departments of Pediatrics.

Medicine, and.

出版信息

J Biol Chem. 2017 Sep 22;292(38):15789-15803. doi: 10.1074/jbc.M117.796516. Epub 2017 Aug 1.

DOI:10.1074/jbc.M117.796516
PMID:28765282
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5612110/
Abstract

The organic anion transporters OAT1 (SLC22A6) and OAT3 (SLC22A8) have similar substrate specificity for drugs, but it is far from clear whether this holds for endogenous substrates. By analysis of more than 600 metabolites in the (Oat3 knockout) by LC/MS, we demonstrate OAT3 involvement in the movement of gut microbiome products, key metabolites, and signaling molecules, including those flowing through the gut-liver-kidney axis. Major pathways affected included those involved in metabolism of bile acids, flavonoids, nutrients, amino acids (including tryptophan-derivatives that are uremic toxins), and lipids. OAT3 is also critical in elimination of liver-derived phase II metabolites, particularly those undergoing glucuronidation. Analysis of physicochemical features revealed nine distinct metabolite groups; at least one member of most clusters has been previously validated in transport assays. In contrast to drugs interacting with the OATs, endogenous metabolites accumulating in the (Oat1 knockout) have distinct differences in their physicochemical properties; they are very different in size, number of rings, hydrophobicity, and molecular complexity. Consistent with the Remote Sensing and Signaling Hypothesis, the data support the importance of the OAT transporters in inter-organ and inter-organismal remote communication via transporter-mediated movement of key metabolites and signaling molecules ( gut microbiome-to-intestine-to-blood-to-liver-to-kidney-to-urine). We discuss the possibility of an intimate connection between OATs and metabolite sensing and signaling pathways ( bile acids). Furthermore, the metabolomics and pathway analysis support the view that OAT1 plays a greater role in kidney proximal tubule metabolism and OAT3 appears relatively more important in systemic metabolism, modulating levels of metabolites flowing through intestine, liver, and kidney.

摘要

有机阴离子转运体OAT1(SLC22A6)和OAT3(SLC22A8)对药物具有相似的底物特异性,但对于内源性底物是否如此尚远不清楚。通过液相色谱/质谱分析Oat3基因敲除小鼠体内的600多种代谢物,我们证明了OAT3参与肠道微生物群产物、关键代谢物和信号分子的转运,包括那些流经肠-肝-肾轴的物质。受影响的主要途径包括参与胆汁酸、类黄酮、营养物质、氨基酸(包括作为尿毒症毒素的色氨酸衍生物)和脂质代谢的途径。OAT3在肝脏衍生的II相代谢物的清除中也至关重要,尤其是那些经过葡萄糖醛酸化的代谢物。对物理化学特征的分析揭示了九个不同的代谢物组;大多数簇中至少有一个成员先前已在转运试验中得到验证。与与OATs相互作用的药物不同,Oat1基因敲除小鼠体内积累的内源性代谢物在物理化学性质上有明显差异;它们在大小、环数、疏水性和分子复杂性方面有很大不同。与遥感和信号假说一致,数据支持OAT转运体在通过转运体介导的关键代谢物和信号分子(肠道微生物群-肠-血-肝-肾-尿)的移动进行器官间和生物间远程通讯中的重要性。我们讨论了OATs与代谢物传感和信号通路(胆汁酸)之间密切联系的可能性。此外,代谢组学和途径分析支持这样的观点,即OAT1在肾近端小管代谢中起更大作用,而OAT3在全身代谢中似乎相对更重要,调节流经肠道、肝脏和肾脏的代谢物水平。