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Vesicular acetylcholine transporter (VAChT) stores acetylcholine (ACh) in synaptic vesicles for evoked ¿elease from cholinergic nerve terminals. It is allosterically inhibited by a compound called vesamicol. The project seeks understanding of VAChT structure and transport mechanism with the long term goal of developing a pharmacology to control ACh storage (and thus release) for treatment of cholinergic disorders. Experiments using site-directed mutagenesis, expression and characterization of mutant properties are proposed. A residue in VAChT must be protonated for transport. The first aim is to test whether the recent Dreliminary assignment of the aspartate residue in putative transmembrane domain XI (TMD XI) to this role s correct. A different aspartate or glutamate residue that recently was shown not to be in a TMD must be deprotonated to bind ACh and vesamicol. The second aim is to identify it. The third aim is to test and refine the recent assignments of ACh and vesamicol binding sites to putative TMDs XIII and X. The aspartate residue in putative TMD X is known to participate in proton translocation reactions that provide energy input to VAChT. The fourth aim is to test and refine the proposed role(s) of this residue using a novel assay that monitors transmembrane reorientation of the ACh binding site. The fifth aim is to test whether VAChT contains 12 TMDs, as is now assumed, by inserting one cysteine residue into each hydrophilic region of the sequence and determining which side of the membrane the residue is exposed to using a chemical labeling technique. The sixth aim is to identify which hydrophilic regions change conformation when VAChT binds ACh and vesamicol and transports ACh by using the labeling technique under conditions that detect different rates of labeling. The experiments will be extended to mutants of residues responsible for the required protonation and deprotonation to identify which hydrophilic regions change conformation at pH extremes. The results will provide substantial new information about VAChT structure and dynamics.
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Classical noncholinergic neurotransmitters and the vesicular transport system for acetylcholine.
经典的非胆碱能神经递质和乙酰胆碱的囊泡运输系统。
DOI: 10.1111/j.1471-4159.1993.tb03534.x
发表时间: 1993
期刊: Journal of neurochemistry
影响因子: 4.7
作者: [Clarkson,ED, Bahr,BA, Parsons,SM]
通讯作者: Parsons,SM
Purification of active synaptic vesicles from the electric organ of Torpedo californica and comparison to reserve vesicles.
从加州鱼雷电器官中纯化活性突触小泡并与储备小泡进行比较。
DOI: 10.1016/0167-4838(95)00222-7
发表时间: 1996
期刊: Biochimica et biophysica acta
影响因子: --
作者: [Gracz,LM, Parsons,SM]
通讯作者: Parsons,SM
A further study of the neuromuscular effects of vesamicol (AH5183) and of its enantiomer specificity.
进一步研究维沙考 (AH5183) 的神经肌肉作用及其对映体特异性。
DOI: 10.1111/j.1476-5381.1988.tb11460.x
发表时间: 1988
期刊: British journal of pharmacology
影响因子: 7.3
作者: [Estrella,D, Green,KL, Prior,C, Dempster,J, Halliwell,RF, Jacobs,RS, Parsons,SM, Parsons,RL, Marshall,IG]
通讯作者: Marshall,IG
Stoichiometries of acetylcholine uptake, release, and drug inhibition in Torpedo synaptic vesicles: heterogeneity in acetylcholine transport and storage.
鱼雷突触小泡中乙酰胆碱摄取、释放和药物抑制的化学计量:乙酰胆碱运输和储存的异质性。
DOI: 10.1111/j.1471-4159.1986.tb00639.x
发表时间: 1986
期刊: Journal of neurochemistry
影响因子: 4.7
作者: [Anderson,DC, Bahr,BA, Parsons,SM]
通讯作者: Parsons,SM
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    BRAIN ACETKYLCHOLINE STORAGE SYSTEM
    BRAIN ACETYLCHOLINE STORAGE SYSTEM
    BRAIN ACETYLCHOLINE STORAGE SYSTEM
    BRAIN ACETYLCHOLINE STORAGE SYSTEM
    海外基金