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一种使用L-[3H]谷氨酸研究兴奋性氨基酸受体的放射自显影方法的生化特性

Biochemical characterization of an autoradiographic method for studying excitatory amino acid receptors using L-[3H]glutamate.

作者信息

Cincotta M, Summers R J, Beart P M

机构信息

University of Melbourne, Clinical Pharmacology and Therapeutics Unit, Austin Hospital, Heidelberg, Victoria, Australia.

出版信息

Anal Biochem. 1989 Feb 15;177(1):150-5. doi: 10.1016/0003-2697(89)90030-4.

Abstract

A method was developed for radiolabeling excitatory amino acid receptors of rat brain with L-[3H]glutamate. Effective labeling of glutamate receptors in slide-mounted 10-microns sections was obtained using a low incubation volume (0.15 ml) and rapid washing: a procedure where high ligand concentrations were achieved with minimal waste. Saturation experiments using [3H]glutamate revealed a single binding site of micromolar affinity. The Bmax was trebled in the presence of Ca2+ (2.5 mM) and Cl- (20 mM) with no change in the Kd. Binding was rapid, saturable, stereospecific, and sensitive to glutamate receptor agonists. The proportions of [3H]glutamate binding sensitive to N-methyl-D-aspartate (NMDA), kainate, and alpha-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid (AMPA) were 34, 54, and 51%, respectively. NMDA inhibited binding at a distinct subset of L-[3H]glutamate sites, whereas AMPA and kainate competed for some common sites. Labeling of sections with L-[3H]glutamate in the presence of the selective agonists allowed autoradiographic visualization of glutamate receptor subtypes in brain tissue.

摘要

开发了一种用L-[3H]谷氨酸对大鼠脑兴奋性氨基酸受体进行放射性标记的方法。使用低孵育体积(0.15 ml)和快速洗涤,在载玻片上的10微米切片中实现了谷氨酸受体的有效标记:该方法以最小的浪费实现了高配体浓度。使用[3H]谷氨酸的饱和实验揭示了一个具有微摩尔亲和力的单一结合位点。在存在Ca2+(2.5 mM)和Cl-(20 mM)的情况下,Bmax增加了两倍,而Kd没有变化。结合迅速、可饱和、具有立体特异性,并且对谷氨酸受体激动剂敏感。对N-甲基-D-天冬氨酸(NMDA)敏感的[3H]谷氨酸结合比例、对海人酸敏感的比例和对α-氨基-3-羟基-5-甲基-4-异恶唑丙酸(AMPA)敏感的比例分别为34%、54%和51%。NMDA在L-[3H]谷氨酸位点的一个不同亚组上抑制结合,而AMPA和海人酸竞争一些共同位点。在选择性激动剂存在的情况下,用L-[3H]谷氨酸对切片进行标记,可以对脑组织中的谷氨酸受体亚型进行放射自显影可视化。

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