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Exploring the Neural Basis of Chemosensory Behaviors in Caenorhabditis elegans: How Context and Experience Shape Sensory Perception

机译:探索秀丽隐杆线虫化学感觉行为的神经基础:如何上下文和体验形状感官知觉。

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摘要

Adaptability is essential to organisms' fitness and survival. Evolutionary success depends on access to an array of behavioral choices in the face of changing environmental conditions. To navigate complex landscapes, organisms can interpret the significance of sensory stimuli, and assign context-appropriate valence, by integrating factors such as cues from their internal and external environments, and memories of previously experienced conditions, to dynamically shape neural circuits and generate ethologically relevant behaviors. In this thesis, I explore the cellular and molecular mechanisms that shape the carbon dioxide (CO2) circuit in the free-living nematode, Caenorhabditis elegans. CO2 is a complex sensory cue that can signify the presence of fruitful or dangerous surroundings. As a result, C. elegans can display a variety of different behaviors in response to CO2, from robust attraction to robust avoidance. Although sensory signaling of the CO2-responsive BAG neurons has been extensively characterized, how BAG communicates with postsynaptic interneurons, and how the CO2 signal is propagated through the nervous system to generate a context-appropriate behavior is unknown. First, we have found that neuromodulatory state and environmental oxygen (O 2) levels converge on the CO2 circuit via the URX sensory neurons. The lab-derived N2 C. elegans strain expresses high levels of NPR-1 neuropeptide receptor, which inhibits URX and results in CO 2 avoidance, regardless of environmental O2. In the C. elegans wild isolate "Hawaii", loss of npr-1 leads to modulation of URX by environmental O2, and results in CO2 avoidance at low O2, and loss of CO2-evoked behavior at high O2. Second, we present a new circuit motif that demonstrates how divergent responses to a single sensory input, CO2, can arise from an identical set of sensory and interneuron connections. We show that C. elegans exhibit an experience-dependent behavioral valence switch in response to CO2. While animals raised at ambient CO2 are repelled by CO2, animals raised in a high CO 2 environment are attracted to CO2. Whether CO2 is attractive or repulsive is determined by the coordinated activity of specialized valence-encoding interneurons, AIY, RIG, and RIA, whose responses are subject to context-dependent modulation. An additional interneuron pair, AIZ, regulates behavioral sensitivity regardless of valence. Glutamatergic and neuropeptidergic signaling mediate both CO2 avoidance and attraction, and different neuropeptides play distinct roles in regulating valence and sensitivity. Our results elucidate a microcircuit motif whereby a fixed set of neurons are leveraged to generate alternative outputs in response to a single chemosensory input.
机译:适应性对于有机体的适应性和生存至关重要。进化成功取决于面对不断变化的环境条件获得一系列行为选择。为了导航复杂的景观,有机体可以通过整合各种因素(例如来自其内部和外部环境的线索以及先前经历过的条件的记忆)来解释感觉刺激的重要性,并根据上下文分配适当的化合价,以动态塑造神经回路并产生与道德相关行为。在本文中,我探讨了影响自由活动线虫秀丽隐杆线虫中二氧化碳(CO2)回路的细胞和分子机制。 CO2是一种复杂的感官提示,可以表示存在有益或危险的环境。结果,秀丽隐杆线虫可以表现出对二氧化碳的各种不同行为,从强烈的吸引力到强烈的避免。尽管已经对CO2响应性BAG神经元的感觉信号进行了广泛表征,但是BAG如何与突触后神经元进行通讯,以及CO2信号如何通过神经系统传播以产生适合情境的行为,这一点尚不清楚。首先,我们发现神经调节状态和环境氧(O 2)水平通过URX感觉神经元在CO2回路上收敛。实验室衍生的线虫N2秀丽隐杆线虫菌株表达高水平的NPR-1神经肽受体,无论环境O2如何,它都能抑制URX并避免产生CO 2。在秀丽隐杆线虫野生分离物“夏威夷”中,npr-1的丢失导致环境O2对URX的调节,并导致在低O2时避免CO2,在高O2时导致CO2诱发的行为丢失。其次,我们提出了一种新的电路图案,该图案演示了如何从同一组感觉和中间神经元连接产生对单个感觉输入CO2的不同响应。我们显示秀丽隐杆线虫展示响应二氧化碳的经验依赖的行为价开关。在环境CO2下饲养的动物被CO2排斥,而在高CO 2环境下饲养的动物被CO2吸引。 CO2是吸引还是排斥是由专门的价编码中间神经元AIY,RIG和RIA的协同活动决定的,它们的响应受到上下文相关的调制的影响。另一个中间神经元对AIZ可以调节行为敏感性,无论其价数如何。谷氨酸能和神经肽能信号传导介导CO 2避免和吸引,并且不同的神经肽在调节价和敏感性中起不同的作用。我们的结果阐明了微电路基序,从而利用固定的一组神经元响应单个化学感觉输入来生成替代输出。

著录项

  • 作者

    Guillermin, Manon.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Neurosciences.;Microbiology.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 97 p.
  • 总页数 97
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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