Department of Head and Neck Surgery, David Geffen School of Medicine at UCLA, Box 951624, Los Angeles, CA, 90095-1624, USA.
Department of Psychological and Brain Sciences, Johns Hopkins University, Baltimore, MD, 21218, USA.
J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2021 Nov;207(6):757-772. doi: 10.1007/s00359-021-01518-x. Epub 2021 Oct 30.
Sensory processing of environmental stimuli is challenged by head movements that perturb sensorimotor coordinate frames directing behaviors. In the case of visually guided behaviors, visual gaze stabilization results from the integrated activity of the vestibuloocular reflex and motor efference copy originating within circuits driving locomotor behavior. In the present investigation, it was hypothesized that head stabilization is broadly implemented in echolocating bats during sustained flight, and is temporally associated with emitted sonar signals which would optimize acoustic gaze. Predictions from these hypotheses were evaluated by measuring head and body kinematics with motion sensors attached to the head and body of free-flying Egyptian fruit bats. These devices were integrated with ultrasonic microphones to record sonar emissions and elucidate the temporal association with periods of head stabilization. Head accelerations in the Earth-vertical axis were asymmetric with respect to wing downstroke and upstroke relative to body accelerations. This indicated that inflight head and body accelerations were uncoupled, outcomes consistent with the mechanisms that limit vertical head acceleration during wing downstroke. Furthermore, sonar emissions during stable flight occurred most often during wing downstroke and head stabilization, supporting the conclusion that head stabilization behavior optimized sonar gaze and environmental interrogation via echolocation.
环境刺激的感觉处理受到头部运动的挑战,这些运动会扰乱引导行为的感觉运动坐标框架。在视觉引导的行为中,视觉注视稳定是由前庭眼反射和起源于驱动运动行为的回路中的运动传出副本的综合活动产生的。在本研究中,假设在持续飞行中,回声定位蝙蝠在广泛的范围内实现头部稳定,并与发出的声纳信号在时间上相关,这将优化声学注视。通过将运动传感器附着在自由飞行的埃及果蝠的头部和身体上来测量头部和身体运动学,从而评估这些假设的预测。这些设备与超声麦克风集成在一起,以记录声纳发射并阐明与头部稳定期的时间关联。相对于身体加速度,地球垂直轴上的头部加速度在相对于翅膀下挥和上挥时不对称。这表明飞行中的头部和身体加速度是解耦的,结果与限制翅膀下挥时垂直头部加速度的机制一致。此外,稳定飞行期间的声纳发射最常发生在翅膀下挥和头部稳定期间,这支持了头部稳定行为通过回声定位优化声纳注视和环境询问的结论。