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1
Post mortem degradation of nucleosides in the brain: comparison of human and rat brains for estimation of in vivo concentration of nucleosides.死后大脑中核苷的降解:比较人类和大鼠大脑以估计核苷的体内浓度。
J Neurosci Methods. 2005 Oct 15;148(1):88-93. doi: 10.1016/j.jneumeth.2005.04.012. Epub 2005 Jul 27.
2
Therapeutic potential of adenosine A(2A) receptor antagonists in Parkinson's disease.腺苷A(2A)受体拮抗剂在帕金森病中的治疗潜力
Pharmacol Ther. 2005 Mar;105(3):267-310. doi: 10.1016/j.pharmthera.2004.10.007. Epub 2004 Dec 21.
3
Metabolic regulation of ATP breakdown and of adenosine production in rat brain extracts.大鼠脑提取物中ATP分解和腺苷生成的代谢调节
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The potential impact of drug transporters on nucleoside-analog-based antiviral chemotherapy.药物转运体对基于核苷类似物的抗病毒化疗的潜在影响。
Antiviral Res. 2004 Apr;62(1):1-7. doi: 10.1016/j.antiviral.2003.11.002.
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Differences between rat primary cortical neurons and astrocytes in purine release evoked by ischemic conditions.缺血条件下大鼠原代皮层神经元和星形胶质细胞在嘌呤释放方面的差异。
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Involvement of astrocytes in purine-mediated reparative processes in the brain.星形胶质细胞在大脑嘌呤介导的修复过程中的作用。
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Antiviral guanosine analogs as substrates for deoxyguanosine kinase: implications for chemotherapy.作为脱氧鸟苷激酶底物的抗病毒鸟苷类似物:对化疗的影响。
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Facilitative effects of an adenosine A1/A2 receptor blockade on spatial memory performance of rats: selective enhancement of reference memory retention during the light period.
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人脑大脑皮质、小脑皮质区域及白质中核苷及相关化合物的浓度

Concentration of nucleosides and related compounds in cerebral and cerebellar cortical areas and white matter of the human brain.

作者信息

Kékesi Katalin A, Kovács Zsolt, Szilágyi Nóra, Bobest Mátyás, Szikra Tamás, Dobolyi Arpád, Juhász Gábor, Palkovits Miklós

机构信息

Department of Physiology and Neurobiology, Eötvös Loránd University, Budapest, Hungary.

出版信息

Cell Mol Neurobiol. 2006 Jul-Aug;26(4-6):833-44. doi: 10.1007/s10571-006-9103-3. Epub 2006 Aug 1.

DOI:10.1007/s10571-006-9103-3
PMID:16897364
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11520641/
Abstract
  1. Nucleosides potentially participate in the neuronal functions of the brain. However, their distribution and changes in their concentrations in the human brain is not known. For better understanding of nucleoside functions, changes of nucleoside concentrations by age and a complete map of nucleoside levels in the human brain are actual requirements. 2. We used post mortem human brain samples in the experiments and applied a recently modified HPLC method for the measurement of nucleosides. To estimate concentrations and patterns of nucleosides in alive human brain we used a recently developed reverse extrapolation method and multivariate statistical analyses. 3. We analyzed four nucleosides and three nucleobases in human cerebellar, cerebral cortices and in white matter in young and old adults. Average concentrations of the 308 samples investigated (mean+/-SEM) were the following (pmol/mg wet tissue weight): adenosine 10.3+/-0.6, inosine 69.5+/-1.7, guanosine 13.5+/-0.4, uridine 52.4+/-1.2, uracil 8.4+/-0.3, hypoxanthine 108.6+/-2.0 and xanthine 54.8+/-1.3. We also demonstrated that concentrations of inosine and adenosine in the cerebral cortex and guanosine in the cerebral white matter are age-dependent. 4. Using multivariate statistical analyses and degradation coefficients, we present an uneven regional distribution of nucleosides in the human brain. The methods presented here allow to creation of a nucleoside map of the human brain by measuring the concentration of nucleosides in microdissected tissue samples. Our data support a functional role for nucleosides in the brain.
摘要
  1. 核苷可能参与大脑的神经元功能。然而,它们在人类大脑中的分布及其浓度变化尚不清楚。为了更好地理解核苷的功能,了解核苷浓度随年龄的变化以及绘制人类大脑中核苷水平的完整图谱是实际需求。2. 我们在实验中使用了人类死后的大脑样本,并应用了最近改进的高效液相色谱法来测量核苷。为了估计活人脑中核苷的浓度和模式,我们使用了最近开发的反向外推法和多元统计分析。3. 我们分析了年轻和老年成年人的小脑、大脑皮质及白质中的四种核苷和三种碱基。所研究的308个样本的平均浓度(平均值±标准误)如下(皮摩尔/毫克湿组织重量):腺苷10.3±0.6、肌苷69.5±1.7、鸟苷13.5±0.4、尿苷52.4±1.2、尿嘧啶8.4±0.3、次黄嘌呤108.6±2.0和黄嘌呤54.8±1.3。我们还证明,大脑皮质中肌苷和腺苷的浓度以及大脑白质中鸟苷的浓度与年龄有关。4. 通过多元统计分析和降解系数,我们展示了核苷在人类大脑中分布不均。本文介绍的方法可以通过测量显微切割组织样本中核苷的浓度来创建人类大脑的核苷图谱。我们的数据支持核苷在大脑中的功能作用。