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Analysis of Peptidergic Neural Networks Regulating Ecdysis in the Fruitfly, Drosophila melanogaster.

机译:调控果蝇蜕皮的肽能神经网络的分析。

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摘要

At the end of each developmental stage, insects undergo dramatic changes to shed old cuticle, a process called ecdysis. Ecdysis triggering hormone (ETH) released from epitracheal gland Inka cells is a master controller of events during ecdysis through its direct action on the central nervous system (CNS). ETH receptor neurons in the CNS comprise a peptide signaling cascade that initiates and schedules physiological and behavioral changes during the ecdysis sequence.;Among the physiological events regulated by ETH during ecdysis is tracheal inflation, which is the first visible change that occurs following release of ETH. I investigated the role of kinin neurons in the ecdysis sequence and found that impairment of ETH, kinin, or kinin receptor signaling elicits defects in tracheal inflation. Ablation of kinin neurons produced larvae exhibiting the buttoned-up phenotype and inability to remove residual fragments of old trachea during ecdysis These findings suggest that kinin signaling is involved in both tracheal inflation and ecdysis behavior.;In order to analyze further the signaling cascade involving ETHR peptidergic ensembles in the ecdysis behavioral sequence, I investigated changes in pupal ecdysis behaviors of transgenic flies with targeted ablations of specific ETHR-A neurons. Varying degrees of behavioral defects were detected following ablation of ETHR neurons expressing eclosion hormone (EH), FMRFamide, kinin, crustacean cardioactive peptide (CCAP), myoinhibitory peptide (MIP), burs and bursicon. I determined that kinin neurons are critical regulators of pre-ecdysis and also discovered that bursicon neurons likely are involved in regulation of both ecdysis and post-ecdysis. To verify a previous sequential activation model for ecdysis regulation, I monitored calcium dynamics in two ETHR ensembles (kinin and bursicon) in the same animal elicited by ETH exposure. I found that kinin and bursicon neurons have distinct activation patterns and that they are activated sequentially. To explain the sequential activation of these ETHR ensembles, I tested a differential sensitivity model by analyzing changes in ecdysis scheduling following modification of ETH receptor density. Over-expression or suppression of ETH receptors in targeted neurons resulted in changes in onset timing during pupal ecdysis, supporting the hypothesis that differential sensitivity of ETHR ensembles to their sequential activation by ETH.;In summary, my data demonstrates that differential sensitivity of ETHR peptidergic ensembles can explain how the master hormone ETH schedules changes in physiology and behavior during the ecdysis sequence.
机译:在每个发育阶段的最后,昆虫都会发生巨大变化,以脱落旧的角质层,这一过程称为蜕皮。从气管上腺中释放的蜕皮激素触发激素(ETH)通过其对中枢神经系统(CNS)的直接作用,是蜕皮过程中事件的主要控制者。中枢神经系统中的ETH受体神经元包含一个肽信号传导级联,可启动和安排蜕皮过程中的生理和行为变化。;在蜕皮过程中由ETH调节的生理事件是气管通气,这是ETH释放后发生的第一个可见变化。我研究了激肽神经元在蜕皮序列中的作用,发现ETH,激肽或激肽受体信号转导受损会引起气管充气缺陷。激肽神经元的消融所产生的幼虫表现出固定的表型,并且在蜕皮过程中无法去除旧气管的残留片段。这些发现表明,激肽信号传导与气管充血和蜕皮行为都有关。为了进一步分析涉及ETHR的信号传导级联蜕皮行为序列中的肽能合奏,我研究了针对特定ETHR-A神经元的靶向消融的转基因果蝇p蜕皮行为的变化。在消融表达促性腺激素(EH),FMRFamide,激肽,甲壳类心脏活性肽(CCAP),肌抑制肽(MIP),滑囊和囊囊的ETHR神经元后,检测到各种程度的行为缺陷。我确定激肽神经元是蜕皮前的关键调节因子,还发现囊囊神经元可能参与蜕皮和蜕皮后的调节。为了验证以前的顺序激活模型的蜕皮调节作用,我监测了同一只动物的两个ETHR集合(激肽和bursicon)中的钙动力学,该过程由暴露于ETH引起。我发现激肽和囊囊神经元具有不同的激活模式,并且它们被依次激活。为了解释这些ETHR集合的顺序激活,我通过分析ETH受体密度修改后蜕皮计划的变化来测试差异敏感性模型。靶向神经元中ETH受体的过度表达或抑制导致p蜕皮过程中发作时间的改变,支持ETHR的差异敏感性与其被ETH顺序激活相类似的假说;总之,我的数据表明ETHR肽敏感性的差异敏感性合奏可以解释主要激素ETH如何安排蜕皮序列中生理和行为的变化。

著录项

  • 作者

    Kim, Do Hyoung.;

  • 作者单位

    University of California, Riverside.;

  • 授予单位 University of California, Riverside.;
  • 学科 Biology Neuroscience.;Biology Entomology.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 112 p.
  • 总页数 112
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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