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Genetic Analysis Of Crawling And Swimming Locomotory Patterns In C. Elegans

机译:线虫爬行和游泳运动模式的遗传分析

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Alternative patterns of neural activity drive different rhythmic locomotory patterns in both invertebrates and mammals. The neuro-molecular mechanisms responsible for the expression of rhythmic behavioral patterns are poorly understood. Here we show that Caenorhabditis elegans switches between distinct forms of locomotion, or crawling versus swimming, when transitioning between solid and liquid environments. These forms of locomotion are distinguished by distinct kinematics and different underlying patterns of neuromuscular activity, as determined by in vivo calcium imaging. The expression of swimming versus crawling rhythms is regulated by sensory input. In a screen for mutants that are defective in transitioning between crawl and swim behavior, we identified unc-79 and unc-80, two mutants known to be defective in NCA ion channel stabilization. Genetic and behavioral analyses suggest that the NCA channels enable the transition to rapid rhythmic behaviors in C. elegans. unc-79, unc-80, and the NCA channels represent a conserved set of genes critical for behavioral pattern generation.
机译:神经活动的替代模式在无脊椎动物和哺乳动物中驱动不同的节律性运动模式。负责节奏行为模式表达的神经分子机制了解甚少。在这里,我们显示秀丽隐杆线虫在固体和液体环境之间转换时,会在不同形式的运动之间或爬行与游泳之间切换。这些运动形式的区别在于运动学和神经肌肉活动的不同潜在模式,如体内钙成像所确定的。游泳与爬行节奏的表达受感觉输入调节。在筛选在爬行行为和游泳行为之间转换中有缺陷的突变体时,我们确定了unc-79和unc-80,这两个突变体已知在NCA离子通道稳定性方面存在缺陷。遗传和行为分析表明,NCA通道可使秀丽隐杆线虫向快速节律行为过渡。 unc-79,unc-80和NCA通道代表了一组保守的基因,这些基因对于行为模式的产生至关重要。

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