核苷转运体在人脉络膜丛中的表达和功能活性。

Zoran B Redzic, Slava A Malatiali, Danica Grujicic, Aleksandra J Isakovic
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引用次数: 17

摘要

背景:人脉络膜丛(hCP)中的人平衡核苷转运体(hENTs) 1-3和人浓缩核苷转运体(hCNTs) 1-3在大脑中腺苷和其他天然核苷的稳态中发挥作用;此外,hENT1、hENT2和hCNT3介导可用于治疗HIV感染的核苷类逆转录酶抑制剂3'-叠氮-3'-脱氧胸苷、2'3'-二脱氧胞苷和2'3'-二脱氧肌苷的膜转运。本研究旨在探讨hCNTs 1-3和hCNTs 1-3在人脉络膜丛中的表达水平和功能活性。方法:经当地伦理委员会批准,在神经外科手术中因各种临床原因切除的新鲜侧脑室hCP片。通过基于水解探针的逆转录实时聚合酶链反应(RT-qPCR)对编码hENTs和hCNTs的mrna进行定量;对每个目标基因和作为内源对照的18s核糖体RNA,计算PCR反应效率(E)和定量周期(Cq)。研究了脉络膜丛片对[(3)H]肌苷的摄取,以探讨hENTs和hCNTs在hCP中的功能活性。结果:RT-qPCR结果显示,细胞内定位转运体hENT3的mRNA编码量最多,其E(-Cq)值仅比18s核糖体RNA的E(-Cq)值少约40倍;编码hENT1、hENT2和hCNT3的mRNA丰度远低于编码hENT3的mRNA,而编码hCNT1和hCNT2的mRNA丰度非常低,无法检测到。CP样品对[(3)H]肌苷的摄取呈线性,由Na(+)依赖性组分(可能由hCNT3介导)和Na(+)非依赖性组分(可能由hENTs介导)组成。当使用浓度为0.5 muM时,后一组分对S-(4-硝基苄基)-6-硫代氨基甘氨酸(NBMPR)的抑制不敏感,这一发现排除了hENT1的参与,但它被10 muM NBMPR非常明显地抑制,这一发现表明hENT2参与摄取。结论:hENT1-3和hCNT3在人CP中检测到转录本;细胞内核苷转运蛋白hENT3的mRNA含量最高。人CP通过浓缩和平衡两种过程吸收放射性标记肌苷。集中摄取可能是由hCNT3介导的;平衡摄取仅由hENT2介导。hENT1转运活性缺失,这可能表明该蛋白在CP细胞中缺失或局限于CP上皮的基底外侧。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Expression and functional activity of nucleoside transporters in human choroid plexus.

Expression and functional activity of nucleoside transporters in human choroid plexus.

Expression and functional activity of nucleoside transporters in human choroid plexus.

Expression and functional activity of nucleoside transporters in human choroid plexus.

Background: Human equilibrative nucleoside transporters (hENTs) 1-3 and human concentrative nucleoside transporters (hCNTs) 1-3 in the human choroid plexus (hCP) play a role in the homeostasis of adenosine and other naturally occurring nucleosides in the brain; in addition, hENT1, hENT2 and hCNT3 mediate membrane transport of nucleoside reverse transcriptase inhibitors that could be used to treat HIV infection, 3'-azido-3'-deoxythymidine, 2'3'-dideoxycytidine and 2'3'-dideoxyinosine. This study aimed to explore the expression levels and functional activities of hENTs 1-3 and hCNTs 1-3 in human choroid plexus.

Methods: Freshly-isolated pieces of lateral ventricle hCP, removed for various clinical reasons during neurosurgery, were obtained under Local Ethics Committee approval. Quantification of mRNAs that encoded hENTs and hCNTs was performed by the hydrolysis probes-based reverse transcription real time-polymerase chain reaction (RT-qPCR); for each gene of interest and for 18 S ribosomal RNA, which was an endogenous control, the efficiency of PCR reaction (E) and the quantification cycle (Cq) were calculated. The uptake of [(3)H]inosine by the choroid plexus pieces was investigated to explore the functional activity of hENTs and hCNTs in the hCP.

Results: RT-qPCR revealed that the mRNA encoding the intracellularly located transporter hENT3 was the most abundant, with E(-Cq )value being only about 40 fold less that the E(-Cq )value for 18 S ribosomal RNA; mRNAs encoding hENT1, hENT2 and hCNT3 were much less abundant than mRNA for the hENT3, while mRNAs encoding hCNT1 and hCNT2 were of very low abundance and not detectable. Uptake of [(3)H]inosine by the CP samples was linear and consisted of an Na(+)-dependent component, which was probably mediated by hCNT3, and Na(+)-independent component, mediated by hENTs. The latter component was not sensitive to inhibition by S-(4-nitrobenzyl)-6-thioinosine (NBMPR), when used at a concentration of 0.5 muM, a finding that excluded the involvement of hENT1, but it was very substantially inhibited by 10 muM NBMPR, a finding that suggested the involvement of hENT2 in uptake.

Conclusion: Transcripts for hENT1-3 and hCNT3 were detected in human CP; mRNA for hENT3, an intracellularly located nucleoside transporter, was the most abundant. Human CP took up radiolabelled inosine by both concentrative and equilibrative processes. Concentrative uptake was probably mediated by hCNT3; the equilibrative uptake was mediated only by hENT2. The hENT1 transport activity was absent, which could suggest either that this protein was absent in the CP cells or that it was confined to the basolateral side of the CP epithelium.

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