Stein W, Schmitz J
Department of Biological Cybernetics, University of Bielefeld, D-33501 Bielefeld, Germany.
J Neurophysiol. 1999 Jul;82(1):512-4. doi: 10.1152/jn.1999.82.1.512.
In the leg motor system of insects, several proprioceptive sense organs provide the CNS with information about posture and movement. Within one sensory organ, presynaptic inhibition shapes the inflow of sensory information to the CNS. We show here that also different proprioceptive sense organs can exert a presynaptic inhibition on each other. The afferents of one leg proprioceptor in the stick insect, either the position-sensitive femoral chordotonal organ or the load-sensitive campaniform sensilla, receive a primary afferent depolarization (PAD) from two other leg proprioceptors, the campaniform sensilla and/or the coxal hairplate. The reversal potential of this PAD is about -59 mV, and the PAD is associated with a conductance increase. The properties of this presynaptic input support the hypothesis that this PAD acts as presynaptic inhibition. The PAD reduces the amplitude of afferent action potentials and thus likely also afferent transmitter release and synaptic efficacy. These findings imply that PAD mechanisms of arthropod proprioceptors might be as complex as in vertebrates.
在昆虫的腿部运动系统中,有几种本体感觉器官向中枢神经系统(CNS)提供有关姿势和运动的信息。在一个感觉器官内,突触前抑制会影响传入中枢神经系统的感觉信息流。我们在此表明,不同的本体感觉器官之间也能相互施加突触前抑制。竹节虫腿部一种本体感受器的传入神经,无论是位置敏感的股弦音器还是负载敏感的钟形感器,都会从另外两种腿部本体感受器,即钟形感器和/或髋部毛板,接收初级传入去极化(PAD)。这种PAD的反转电位约为 -59 mV,且PAD与电导增加有关。这种突触前输入的特性支持了这一假设,即这种PAD起到突触前抑制的作用。PAD会降低传入动作电位的幅度,因此可能也会减少传入神经递质的释放以及突触效能。这些发现意味着节肢动物本体感受器的PAD机制可能与脊椎动物的一样复杂。