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Choline Transport and de novo Choline Synthesis Support Acetylcholine Biosynthesis in Caenorhabditis elegans Cholinergic Neurons

机译:秀丽隐杆线虫胆碱能神经元中胆碱转运和从头胆碱合成支持乙酰胆碱的生物合成

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摘要

The cho-1 gene in Caenorhabditis elegans encodes a high-affinity plasma-membrane choline transporter believed to be rate limiting for acetylcholine (ACh) synthesis in cholinergic nerve terminals. We found that CHO-1 is expressed in most, but not all cholinergic neurons in C. elegans. cho-1 null mutants are viable and exhibit mild deficits in cholinergic behavior; they are slightly resistant to the acetylcholinesterase inhibitor aldicarb, and they exhibit reduced swimming rates in liquid. cho-1 mutants also fail to sustain swimming behavior; over a 33-min time course, cho-1 mutants slow down or stop swimming, whereas wild-type animals sustain the initial rate of swimming over the duration of the experiment. A functional CHO-1∷GFP fusion protein rescues these cho-1 mutant phenotypes and is enriched at cholinergic synapses. Although cho-1 mutants clearly exhibit defects in cholinergic behaviors, the loss of cho-1 function has surprisingly mild effects on cholinergic neurotransmission. However, reducing endogenous choline synthesis strongly enhances the phenotype of cho-1 mutants, giving rise to a synthetic uncoordinated phenotype. Our results indicate that both choline transport and de novo synthesis provide choline for ACh synthesis in C. elegans cholinergic neurons.
机译:秀丽隐杆线虫中的cho-1基因编码一种高亲和力的血浆膜胆碱转运蛋白,被认为是限制胆碱能神经末梢乙酰胆碱(ACh)合成的速率。我们发现CHO-1在秀丽隐杆线虫中的大多数胆碱能神经元中表达,但并非全部。 cho-1 null突变体是可行的,并在胆碱能行为方面表现出轻度缺陷。它们对乙酰胆碱酯酶抑制剂涕灭威略有抵抗力,并且在液体中的游泳速度降低。 cho-1突变体也无法维持游泳行为;在33分钟的时间过程中,cho-1突变体减慢或停止了游泳,而野生型动物在实验过程中维持了初始的游泳速度。功能性CHO-1∷GFP融合蛋白可挽救这些cho-1突变表型,并在胆碱能突触处富集。尽管cho-1突变体显然在胆碱能行为中表现出缺陷,但是cho-1功能的丧失对胆碱能神经传递具有令人惊讶的温和影响。但是,减少内源性胆碱合成会大大增强cho-1突变体的表型,从而导致合成的非配位表型。我们的结果表明,胆碱转运和从头合成都为线虫胆碱能神经元中的ACh合成提供了胆碱。

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