Bush Stephanie L, Robison Bruce H, Caldwell Roy L
University of California, Berkeley, Department of Integrative Biology, Berkeley, California 94720, USA.
Biol Bull. 2009 Feb;216(1):7-22. doi: 10.1086/BBLv216n1p7.
Visual behaviors are prominent components of intra- and interspecific communication in shallow-water cephalopods. Meso- and bathypelagic cephalopods were believed to have limited visual communication, other than bioluminescence, due to the reduced illumination at depth. To explore potential visual behaviors in mesopelagic squid, we used undersea vehicles to observe 76 individuals of Octopoteuthis deletron. In contrast to predictions, we found this species capable of a variety of visually linked behaviors not previously reported for a deep-ocean cephalopod. The resultant ethogram describes numerous chromatic, postural, locomotor, and bioluminescent behavioral components. A few common body patterns-the whole appearance of the individual involving multiple components-are characterized. The behaviors observed from individual squid were compared using a Non-metric Multi-Dimensional Scaling (NMDS) ordination, onto which hydrographic and observation parameters were mapped. Observation length, specimen collection, and contact with the vehicle affected which behaviors were performed. A separate NMDS, analyzing the body patterns, indicated that these sets of behavioral components could be visualized as groups within the NMDS ordination. While the functional roles of the behaviors described are not yet known, our findings of numerous behaviors in O. deletron clearly indicate that bioluminescence is not the sole method of visual communication by deep-sea squid.
视觉行为是浅水中头足类动物种内和种间交流的重要组成部分。由于深海光照减弱,中深层头足类动物被认为除生物发光外视觉交流有限。为了探索中深层鱿鱼的潜在视觉行为,我们使用水下航行器观察了76只德氏帆乌贼个体。与预测相反,我们发现该物种能够做出多种此前未报道过的深海头足类动物的视觉关联行为。由此产生的行为谱描述了许多颜色、姿势、运动和生物发光行为成分。我们还描述了一些常见的身体模式,即涉及多个成分的个体整体外观。使用非度量多维标度法(NMDS)排序对从个体鱿鱼观察到的行为进行比较,并在其上绘制水文和观测参数。观察时长、标本采集以及与航行器的接触会影响所表现出的行为。另一个分析身体模式的NMDS表明,这些行为成分集在NMDS排序中可被可视化为不同的组。虽然所描述行为的功能作用尚不清楚,但我们在德氏帆乌贼中发现的众多行为清楚地表明,生物发光并非深海鱿鱼视觉交流的唯一方式。