Substituted Cysteine Accessibility Method (SCAM)

Substituted Cysteine Accessibility Method (SCAM)
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取代半胱氨酸可及性方法 (SCAM)

DOI:
10.1002/9780470749210.ch12
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发表时间:
2010
影响因子:
4.8
通讯作者:
J. Javitch
J. Javitch
中科院分区:
生物学2区
文献类型:
--
作者:
G. Liapakis;J. Javitch

文献摘要

被引文献

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取代的半胱氨酸可及性方法(SCAM)[1]提供了一种系统地绘制蛋白质水可及表面残基的方法。这些残基通过用半胱氨酸(Cys)取代它们并评估带电的亲水性巯基试剂与取代的Cys(工程化Cys)的反应来鉴定。通过应用SCAM,已经绘制了各种离子通道和转运蛋白中的通道衬里残基,包括烟碱乙酰胆碱受体[1-3]、GABAA受体[4,5]、囊性纤维化跨膜电导调节剂[6]、UhpT转运蛋白[7]和钾通道[8]。SCAM还被用于研究蛋白质不同功能状态的结构改变,如β2-肾上腺素能受体(见第12.2节)。7)使用这种方法,我们系统地绘制了多巴胺D2受体(G蛋白偶联受体(GPCR)超家族成员)结合位点裂缝表面上的残基[9-15]。D2和视紫红质样亚家族中其他GPCR的结合位点裂缝是在它们的七个大部分疏水的跨膜片段(TMx,x= 1− 7)之间形成的水可接近的裂缝,并且从受体的细胞外表面延伸到跨膜结构域[16]。该裂缝的表面由可接触特异性激动剂和/或拮抗剂的残基(结合位点残基)和可发挥结构作用并间接影响结合的其他残基形成。
The substituted cysteine accessibility method (SCAM)[1] provides an approach to map systematically the residues on the water-accessible surface of a protein. These residues are identified by substituting them with cysteine (Cys), and assessing for the reaction of charged, hydrophilic, sulfhydryl reagents with the substituted Cys (engineered Cys). By applying SCAM, channel-lining residues in a variety of ion channels and transporters have been mapped, including the nicotinic acetylcholine receptor [1–3], the GABAA receptor [4, 5], the cystic fibrosis membrane-spanning conductance regulator [6], the UhpT transporter [7] and potassium channels [8]. SCAM has also been used to investigate structural alterations in different functional states of proteins, such as the β2-adrenergic receptor (see Section 12.2. 7) Using this approach we mapped systematically residues on the surface of the binding-site crevice in the dopamine D2 receptor, a member of the G protein-coupled receptor (GPCR) superfamily [9–15]. The binding-site crevice of D2 and the other GPCRs in the rhodopsin-like subfamily is a water-accessible crevice formed among their seven, mostly hydrophobic, membrane-spanning segments (TMx, x= 1− 7) and extending from the extracellular surface of the receptor into the membrane-spanning domain [16]. The surface of this crevice is formed by residues that can contact specific agonists and/or antagonists (binding-site residues) and by other residues that may play a structural role and affect binding indirectly.