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秀丽隐杆线虫的味觉可塑性涉及由血清素、多巴胺和谷氨酸介导的负面线索与氯化钠味觉的整合。

Gustatory plasticity in C. elegans involves integration of negative cues and NaCl taste mediated by serotonin, dopamine, and glutamate.

作者信息

Hukema Renate K, Rademakers Suzanne, Jansen Gert

机构信息

Department of Cell Biology and Genetics, Erasmus MC, University Medical Center Rotterdam, Rotterdam, The Netherlands.

出版信息

Learn Mem. 2008 Oct 30;15(11):829-36. doi: 10.1101/lm.994408. Print 2008 Nov.

DOI:10.1101/lm.994408
PMID:18984564
Abstract

While naïve Caenorhabditis elegans individuals are attracted to 0.1-200 mM NaCl, they become strongly repelled by these NaCl concentrations after prolonged exposure to 100 mM NaCl. We call this behavior gustatory plasticity. Here, we show that C. elegans displays avoidance of low NaCl concentrations only when pre-exposure to NaCl is combined with a negative stimulus, e.g., a repellent, or in the absence of food. By testing serotonin and/or dopamine signaling mutants and rescue by exogenously supplying these neurotransmitters, we found that serotonin and dopamine play a role during the plasticity response, while serotonin is also required during development. In addition, we also show that glutamate plays an important role in the response to NaCl, both in chemoattraction to NaCl and in gustatory plasticity. Thus, C. elegans can associate NaCl with negative stimuli using dopaminergic, serotonergic, and glutamatergic neurotransmission. Finally, we show that prolonged starvation enhances gustatory plasticity and can induce avoidance of NaCl in most gustatory plasticity mutants tested. Only mutation of the glutamate-gated Cl(-) channel gene avr-15 affected starvation-enhanced gustatory plasticity. These results suggest that starvation induces avoidance of NaCl largely independent of the normal gustatory plasticity mechanism.

摘要

虽然未接触过盐的秀丽隐杆线虫个体被0.1 - 200 mM的NaCl所吸引,但在长时间暴露于100 mM NaCl后,它们会被这些NaCl浓度强烈排斥。我们将这种行为称为味觉可塑性。在这里,我们表明,只有当预先暴露于NaCl并与负面刺激(例如驱避剂)结合,或者在没有食物的情况下,秀丽隐杆线虫才会表现出对低NaCl浓度的回避。通过测试血清素和/或多巴胺信号突变体并通过外源供应这些神经递质进行拯救,我们发现血清素和多巴胺在可塑性反应中起作用,而血清素在发育过程中也是必需的。此外,我们还表明,谷氨酸在对NaCl的反应中起重要作用,无论是在对NaCl的化学吸引还是在味觉可塑性方面。因此,秀丽隐杆线虫可以利用多巴胺能、血清素能和谷氨酸能神经传递将NaCl与负面刺激联系起来。最后,我们表明长期饥饿会增强味觉可塑性,并能在大多数测试的味觉可塑性突变体中诱导对NaCl的回避。只有谷氨酸门控Cl(-)通道基因avr - 15的突变影响饥饿增强的味觉可塑性。这些结果表明,饥饿诱导对NaCl的回避在很大程度上独立于正常的味觉可塑性机制。

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