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The role of the AFD neuron in C. elegans thermotaxis analyzed using femtosecond laser ablation

机译:飞秒激光消融分析AFD神经元在秀丽隐杆线虫中的作用

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Background Caenorhabditis elegans actively crawls down thermal gradients until it reaches the temperature of its prior cultivation, exhibiting what is called cryophilic movement. Implicit in the worm's performance of cryophilic movement is the ability to detect thermal gradients, and implicit in regulating the performance of cryophilic movement is the ability to compare the current temperature of its surroundings with a stored memory of its cultivation temperature. Several lines of evidence link the AFD sensory neuron to thermotactic behavior, but its precise role is unclear. A current model contends that AFD is part of a thermophilic mechanism for biasing the worm's movement up gradients that counterbalances the cryophilic mechanism for biasing its movement down gradients. Results We used tightly-focused femtosecond laser pulses to dissect the AFD neuronal cell bodies and the AFD sensory dendrites in C. elegans to investigate their contribution to cryophilic movement. We establish that femtosecond laser ablation can exhibit submicrometer precision, severing individual sensory dendrites without causing collateral damage. We show that severing the dendrites of sensory neurons in young adult worms permanently abolishes their sensory contribution without functional regeneration. We show that the AFD neuron regulates a mechanism for generating cryophilic bias, but we find no evidence that AFD laser surgery reduces a putative ability to generate thermophilic bias. In addition, although disruption of the AIY interneuron causes worms to exhibit cryophilic bias at all temperatures, we find no evidence that laser killing the AIZ interneuron causes thermophilic bias at any temperature. Conclusion We conclude that laser surgical analysis of the neural circuit for thermotaxis does not support a model in which AFD opposes cryophilic bias by generating thermophilic bias. Our data supports a model in which the AFD neuron gates a mechanism for generating cryophilic bias.
机译:背景秀丽隐杆线虫活跃地沿热梯度向下爬行,直到达到先前培养的温度为止,表现出所谓的低温运动。蠕虫的低温运动性能隐含着检测温度梯度的能力,而调节低温运动的性能隐含着将其周围环境的当前温度与其培养温度的存储记忆进行比较的能力。有几条证据将AFD感觉神经元与热力学行为联系起来,但其确切作用尚不清楚。当前模型认为AFD是使蠕虫向上移动的偏向的嗜热机制的一部分,而嗜热机制抵消了将蠕虫向下移动的偏向的低温机制。结果我们使用紧密聚焦的飞秒激光脉冲来解剖线虫中的AFD神经元细胞体和AFD感觉树突,以研究它们对低温运动的贡献。我们确定飞秒激光消融可以表现出亚微米级的精度,在不引起附带损害的情况下切断各个感觉树突。我们表明,切断年轻成年蠕虫的感觉神经元树突将永久消除其感觉贡献,而无需功能再生。我们显示,AFD神经元调节产生低温偏倚的机制,但我们没有发现证据表明AFD激光手术会降低推定的产生嗜热偏倚的能力。此外,尽管AIY内部神经元的破坏会导致蠕虫在所有温度下均表现出低温偏性,但我们找不到证据表明激光杀死AIZ内部神经元在任何温度下均会产生嗜热性偏见。结论我们的结论是,对热出租车神经回路的激光外科手术分析不支持AFD通过产生嗜热偏倚来反对低温偏倚的模型。我们的数据支持其中AFD神经元控制产生低温偏倚的机制的模型。

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