McGill Centre for Research in Neuroscience, McGill University Health Centre, Montreal, Quebec, Canada.
Mol Brain. 2012 Oct 29;5:39. doi: 10.1186/1756-6606-5-39.
Proper adjustment of moving direction after external mechanical stimulation is essential for animals to avoid danger (e.g. predators), and thus is vital for survival. This process involves sensory inputs, central processing and motor outputs. Recent studies have made considerable progress in identifying mechanosensitive neurons and mechanosensation receptor proteins. Our understandings of molecular and cellular mechanisms that link mechanosensation with the changes in moving direction, however, remain limited.
In this study, we investigate the control of movement adjustment in Drosophila. In response to gentle touch at the anterior segments, Drosophila larvae reorient and select a new direction for forward movement. The extent of change in moving direction is correlated with the intensity of tactile stimuli. Sensation of gentle touch requires chordotonal organs and class IV da neurons. Genetic analysis indicates an important role for the evolutionarily conserved immunoglobulin (Ig) superfamily protein Turtle (Tutl) to regulate touch-initiated directional change. Tutl is required specifically in post-mitotic neurons at larval stage after the completion of embryonic development. Circuit breaking analysis identified a small subset of Tutl-positive neurons that are involved in the adjustment of moving direction.
We identify Tutl and a small subset of CNS neurons in modulating directional change in response to gentle touch. This study presents an excellent starting point for further dissection of molecular and cellular mechanisms controlling directional adjustment after mechanical stimulation.
动物在受到外部机械刺激后,适当调整运动方向以避免危险(例如捕食者)是至关重要的,因此这对其生存至关重要。这个过程涉及到感觉输入、中枢处理和运动输出。最近的研究在鉴定机械敏感神经元和机械感觉受体蛋白方面取得了相当大的进展。然而,我们对于将机械感觉与运动方向变化联系起来的分子和细胞机制的理解仍然有限。
在这项研究中,我们研究了果蝇运动调节的控制。果蝇幼虫在前部受到轻柔触摸时,会重新定向并选择新的前进方向。运动方向的变化程度与触觉刺激的强度相关。轻柔触摸的感觉需要弦音器器官和第四类 da 神经元。遗传分析表明,进化上保守的免疫球蛋白(Ig)超家族蛋白 Turtle(Tutl)在调节触摸引发的方向变化中起着重要作用。Tutl 在胚胎发育完成后的幼虫阶段的有丝分裂后神经元中特异性表达。电路中断分析确定了一小部分 Tutl 阳性神经元参与了运动方向的调整。
我们确定了 Tutl 和一小部分中枢神经系统神经元在调节对轻柔触摸的方向变化中发挥作用。这项研究为进一步剖析机械刺激后方向调节的分子和细胞机制提供了一个极好的起点。