Coombs S, Montgomery J
Parmly Hearing Institute, Loyola University, Chicago, IL 60626.
Brain Behav Evol. 1992;40(5):217-33. doi: 10.1159/000113914.
Regional differences in the architecture and size of lateral line canals and neuromasts were measured in an Antarctic fish, Trematomus bernacchii, and the data were used in models of canal and cupular mechanics to predict the frequency response of these two peripheral structures. These modeled predictions were then compared to frequency response functions measured with single unit recording techniques from anterior and posterior lateral line fibers innervating different canals on the head and trunk of fish of various sizes. Despite large variations in the peripheral morphology of head and trunk canals in fish of different sizes, lateral line fibers were relatively homogeneous in their frequency response properties. In response to stimuli of equal pk-pk acceleration levels, all canal neuromast fibers responded with equal and maximum responsiveness in the 10-45 Hz range, after which responsiveness fell off at about 18 dB/octave. Whereas the biomechanical models of cupular and canal responsiveness predicted the region of equal and maximum responsiveness in the 10-45 Hz range, they did not predict the high frequency cutoff nor the slope. Rather, these models predicted responsiveness out to at least 540 Hz, and a high frequency slope of 12 dB/octave. In terms of the frequency response of peripheral fibers, we conclude that (1) there can be considerable morphological variability, with little consequence for function, as long as some minimum standards for maintaining constant acceleration responsiveness in the 10-45 Hz range are met, and (2) there must be additional filters between the cupula and primary afferent fibers.
对南极鱼类伯氏南极鱼侧线管道和神经丘的结构及大小的区域差异进行了测量,并将数据用于管道和杯状器力学模型,以预测这两种外周结构的频率响应。然后将这些模型预测结果与使用单单元记录技术测量的频率响应函数进行比较,该技术记录了支配不同大小鱼类头部和躯干上不同管道的前侧线纤维和后侧线纤维的频率响应。尽管不同大小鱼类的头部和躯干管道外周形态差异很大,但侧线纤维的频率响应特性相对均匀。在受到相同峰峰值加速度水平的刺激时,所有管道神经丘纤维在10 - 45赫兹范围内均以相等且最大的响应度做出反应,之后响应度以约18分贝/倍频程的速率下降。虽然杯状器和管道响应性的生物力学模型预测了10 - 45赫兹范围内相等且最大响应度的区域,但它们并未预测高频截止点和斜率。相反,这些模型预测响应度至少可达540赫兹,高频斜率为12分贝/倍频程。就外周纤维的频率响应而言,我们得出以下结论:(1)只要满足在10 - 45赫兹范围内维持恒定加速度响应性的一些最低标准,就可能存在相当大的形态变异性,而对功能影响很小;(2)在杯状器和初级传入纤维之间必定存在额外的滤波器。