首页> 美国卫生研究院文献>The Journal of Neuroscience >Two Components of Aversive Memory in Drosophila Anesthesia-Sensitive and Anesthesia-Resistant Memory Require Distinct Domains Within the Rgk1 Small GTPase
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Two Components of Aversive Memory in Drosophila Anesthesia-Sensitive and Anesthesia-Resistant Memory Require Distinct Domains Within the Rgk1 Small GTPase

机译:果蝇厌恶记忆的两个组成部分麻醉敏感记忆和抗麻醉记忆需要在Rgk1小GTPase中的不同域。

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摘要

Multiple components have been identified that exhibit different stabilities for aversive olfactory memory in Drosophila. These components have been defined by behavioral and genetic studies and genes specifically required for a specific component have also been identified. Intermediate-term memory generated after single cycle conditioning is divided into anesthesia-sensitive memory (ASM) and anesthesia-resistant memory (ARM), with the latter being more stable. We determined that the ASM and ARM pathways converged on the Rgk1 small GTPase and that the N-terminal domain-deleted Rgk1 was sufficient for ASM formation, whereas the full-length form was required for ARM formation. Rgk1 is specifically accumulated at the synaptic site of the Kenyon cells (KCs), the intrinsic neurons of the mushroom bodies, which play a pivotal role in olfactory memory formation. A higher than normal Rgk1 level enhanced memory retention, which is consistent with the result that Rgk1 suppressed Rac-dependent memory decay; these findings suggest that rgk1 bolsters ASM via the suppression of forgetting. We propose that Rgk1 plays a pivotal role in the regulation of memory stabilization by serving as a molecular node that resides at KC synapses, where the ASM and ARM pathway may interact.>SIGNIFICANCE STATEMENT Memory consists of multiple components. Drosophila olfactory memory serves as a fundamental model with which to investigate the mechanisms that underlie memory formation and has provided genetic and molecular means to identify the components of memory, namely short-term, intermediate-term, and long-term memory, depending on how long the memory lasts. Intermediate memory is further divided into anesthesia-sensitive memory (ASM) and anesthesia-resistant memory (ARM), with the latter being more stable. We have identified a small GTPase in Drosophila, Rgk1, which plays a pivotal role in the regulation of olfactory memory stability. Rgk1 is required for both ASM and ARM. Moreover, N-terminal domain-deleted Rgk1 was sufficient for ASM formation, whereas the full-length form was required for ARM formation.
机译:已经鉴定出对果蝇中的厌恶性嗅觉记忆表现出不同稳定性的多种成分。这些成分已通过行为和遗传研究进行了定义,并且还确定了特定成分所需的特定基因。单周期调节后产生的中期记忆分为麻醉敏感记忆(ASM)和麻醉耐受记忆(ARM),后者更稳定。我们确定,ASM和ARM途径在Rgk1小GTPase上收敛,并且N末端结构域缺失的Rgk1足以形成ASM,而全长形式则是ARM形成所必需的。 Rgk1专门积累在Kenyon细胞(KCs)的突触位点,即蘑菇体的固有神经元,在嗅觉记忆形成中起关键作用。高于正常水平的Rgk1增强了内存保留,这与Rgk1抑制了Rac依赖性内存衰减有关。这些发现表明,rgk1通过抑制遗忘来增强ASM。我们建议Rgk1通过充当位于KC突触中的分子节点(在其中ASM和ARM途径可能相互作用)来在记忆稳定的调节中发挥关键作用。>重要声明记忆由多个组件组成。果蝇嗅觉记忆是研究记忆形成基础的基本模型,并提供了遗传和分子手段来识别记忆的组成部分,即短期,中期和长期记忆,具体取决于如何记忆可以持续多久。中间记忆又分为麻醉敏感记忆(ASM)和麻醉耐受记忆(ARM),后者更稳定。我们在果蝇中发现了一个小的GTP酶Rgk1,它在嗅觉记忆稳定性的调节中起着关键作用。 ASM和ARM都需要Rgk1。此外,删除N末端域的Rgk1足以形成ASM,而全长形式则是ARM形成所必需的。

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