首页> 外文期刊>Neuropsychopharmacology >Clozapine Modulates Glucosylceramide, Clears Aggregated Proteins, and Enhances ATG8|[sol]|LC3 in Caenorhabditis elegans
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Clozapine Modulates Glucosylceramide, Clears Aggregated Proteins, and Enhances ATG8|[sol]|LC3 in Caenorhabditis elegans

机译:氯氮平调节葡萄糖神经酰胺,清除聚集蛋白,并增强秀丽隐杆线虫中的ATG8 | [sol] | LC3

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Defining the mechanisms of action of the antipsychotic drug (APD), clozapine, is of great importance, as clozapine is more effective and has therapeutic benefits in a broader range of psychiatric disorders compared with other APDs. Its range of actions have not been fully characterized. Exposure to APDs early in development causes dose-dependent developmental delay and lethality in Caenorhabditis elegans. A previous genome-wide RNAi screen for suppressors of clozapine-induced developmental delay and lethality revealed 40 candidate genes, including sms-1, which encodes a sphingomyelin synthase. One sms-1 isoform is expressed in the C. elegans pharynx, and its transgene rescues the sms-1 mutant phenotype. We examined pharyngeal pumping and observed that clozapine-induced inhibition of pharyngeal pumping requires sms-1, a finding that may explain the role of the gene in mediating clozapine-induced developmental delay/lethality. By analyzing multiple enzymes involved in sphingolipid metabolism, and by observing the effect of addition of various lipids directly to the worms, we suggest that glucosylceramide may be a key mediator of the effects of clozapine. We further observed that clozapine clears protein aggregates, such as α-synuclein, PolyQ protein, and α-1-antitrypsin mutant protein. In addition, it enhances ATG8/LC3. We conclude that clozapine appears to affect the development and induce lethality of worms, in part, through modulating glucosylceramide. We discuss the possible connections among glucosylceramide, protein aggregate clearance, and autophagy. Interactions, including mechanistic pathways involving these elements, may underlie some of the clinical effects of clozapine.
机译:定义抗精神病药物(APD)的作用机理至关重要,因为氯氮平比其他APD更有效,并且在更广泛的精神疾病中具有治疗益处。其行动范围尚未完全确定。在发育早期暴露于APD会导致秀丽隐杆线虫的剂量依赖性发育延迟和致死性。先前对氯氮平诱导的发育延迟和致死性抑制剂的全基因组RNAi筛选揭示了40个候选基因,包括sms-1,该基因编码鞘磷脂合酶。在秀丽隐杆线虫的咽中表达一种sms-1同工型,其转基因拯救了sms-1突变体表型。我们检查了咽泵,并观察到氯氮平诱导的咽泵抑制需要sms-1,这一发现可能解释了该基因在介导氯氮平诱导的发育延迟/致死性中的作用。通过分析参与鞘脂代谢的多种酶,并观察直接向蠕虫中添加各种脂质的作用,我们建议葡糖神经酰胺可能是氯氮平作用的关键介质。我们进一步观察到,氯氮平清除了蛋白质聚集体,例如α-突触核蛋白,PolyQ蛋白和α-1-抗胰蛋白酶突变蛋白。另外,它增强了ATG8 / LC3。我们得出的结论是,氯氮平似乎部分地通过调节葡萄糖基神经酰胺来影响蠕虫的发育并诱发蠕虫的致死性。我们讨论了糖基神经酰胺,蛋白聚集体清除和自噬之间的可能联系。相互作用,包括涉及这些元素的机制途径,可能是氯氮平的某些临床作用的基础。

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