盐是一种必需营养素:以果蝇为模型系统理解盐味检测的进展。

Journal of Experimental Neuroscience Pub Date : 2018-11-21 eCollection Date: 2018-01-01 DOI:10.1177/1179069518806894
Shivam Kaushik, Rahul Kumar, Pinky Kain
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引用次数: 14

摘要

味觉模式在昆虫和哺乳动物中是保守的。甜味味觉信号唤起吸引人的行为,而苦味味觉信息驱动厌恶行为。盐(NaCl)是多种生理过程所必需的营养物质,包括电解质稳态、神经元活动、营养吸收和肌肉收缩。不仅是哺乳动物,即使在黑腹果蝇中,NaCl的检测也会引起两种不同的行为:低浓度的NaCl作为引诱剂,而高浓度的NaCl作为驱避剂。果蝇具有相对简单的大脑和外周味觉系统的神经解剖结构、强大的遗传工具和转基因菌株,是研究盐味机制的良好模型系统。在这篇综述中,我们重新回顾了文献和各种实验室提供的关于果蝇的无脊椎动物模型系统的信息,这些信息有助于我们迄今为止对NaCl盐味的理解。我们希望这些来自果蝇的信息将对未来研究盐敏感(低浓度和高浓度)味觉回路的结构、功能和行为作用具有普遍意义和兴趣,以了解所有动物的NaCl盐味。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Salt an Essential Nutrient: Advances in Understanding Salt Taste Detection Using <i>Drosophila</i> as a Model System.

Salt an Essential Nutrient: Advances in Understanding Salt Taste Detection Using <i>Drosophila</i> as a Model System.

Salt an Essential Nutrient: Advances in Understanding Salt Taste Detection Using <i>Drosophila</i> as a Model System.

Salt an Essential Nutrient: Advances in Understanding Salt Taste Detection Using Drosophila as a Model System.

Taste modalities are conserved in insects and mammals. Sweet gustatory signals evoke attractive behaviors while bitter gustatory information drive aversive behaviors. Salt (NaCl) is an essential nutrient required for various physiological processes, including electrolyte homeostasis, neuronal activity, nutrient absorption, and muscle contraction. Not only mammals, even in Drosophila melanogaster, the detection of NaCl induces two different behaviors: Low concentrations of NaCl act as an attractant, whereas high concentrations act as repellant. The fruit fly is an excellent model system for studying the underlying mechanisms of salt taste due to its relatively simple neuroanatomical organization of the brain and peripheral taste system, the availability of powerful genetic tools and transgenic strains. In this review, we have revisited the literature and the information provided by various laboratories using invertebrate model system Drosophila that has helped us to understand NaCl salt taste so far. We hope that this compiled information from Drosophila will be of general significance and interest for forthcoming studies of the structure, function, and behavioral role of NaCl-sensitive (low and high concentrations) gustatory circuitry for understanding NaCl salt taste in all animals.

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