Engel J E, Wu C F
Biology Department, University of Iowa, Iowa City 52242-1324.
J Comp Physiol A. 1992 Aug;171(1):93-104. doi: 10.1007/BF00195964.
We have studied the influence of the K(+)-current mutations eag and Sh and the Na(+)-current mutation napts upon two well-defined neural circuits that underlie flight and an escape response in Drosophila, recording from dorsal longitudinal and tergotrochanteral muscles. Mutations of Sh and eag affected refractory period and following frequency, but not latency, of the jump-and-flight escape response. The napts mutation altered these 3 physiological parameters of the "jump" (TTM), but not the "flight" (DLM), branch, suggesting differences in the vulnerability of different circuit components to the mutation. In contrast to their interaction in some other systems, napts did not counteract the effects of eag and Sh upon these physiological parameters in eag Sh; nap triple mutants. In eag Sh double mutants, in which multiple K+ currents may be diminished, flight muscles showed abnormal rhythmic activity not associated with flight, and some flies also had an abnormal wings-down posture. The low-frequency spikes probably originated in the flight muscle motoneurons, but the coordination between muscle fibers during this "non-flight activity" was distinct from flight. Nevertheless, in spite of the presence of this non-flight activity in resting eag Sh flies, those animals with normal wing posture were also able to fly, with a normal pattern of muscle activity. This suggests that in these mutants, the DLM motoneuron circuit is able to switch between two patterns of output, non-flight activity and flight.(ABSTRACT TRUNCATED AT 250 WORDS)
我们研究了钾离子电流突变eag和Sh以及钠离子电流突变napts对果蝇飞行和逃避反应所依赖的两个明确神经回路的影响,记录背纵肌和背板转子肌的活动。Sh和eag的突变影响了跳跃和飞行逃避反应的不应期和跟随频率,但不影响潜伏期。napts突变改变了“跳跃”(TTM)分支的这三个生理参数,但不影响“飞行”(DLM)分支,这表明不同回路组件对该突变的易感性存在差异。与它们在其他一些系统中的相互作用不同,在eag Sh; nap三突变体中,napts并没有抵消eag和Sh对这些生理参数的影响。在eag Sh双突变体中,多种钾离子电流可能减少,飞行肌表现出与飞行无关的异常节律活动,一些果蝇还出现翅膀下垂的异常姿势。低频尖峰可能起源于飞行肌运动神经元,但在这种“非飞行活动”期间肌肉纤维之间的协调与飞行不同。然而,尽管静止的eag Sh果蝇存在这种非飞行活动,但那些翅膀姿势正常的动物仍能够飞行,且肌肉活动模式正常。这表明在这些突变体中,DLM运动神经元回路能够在两种输出模式之间切换,即非飞行活动和飞行。(摘要截取自250字)