论文标题
生物物理模拟揭示了鸟类腰椎器官的力学
Biophysical Simulation Reveals the Mechanics of the Avian Lumbosacral Organ
论文作者
论文摘要
腰椎器官(LSO)是一种腰椎管道形态,在鸟类中普遍且独特地发现。最近的研究表明,脊髓液中软组织的符合性运动依赖于脊髓内的机械传感器功能。由于成像技术的局限性,还没有可能在体内观察LSO软组织运动。作为一种替代方法,我们开发了LSO的人工生物物理模型,并在外部运动夹带时表征了该模型的动态响应。参数模型结合了LSO的形态和材料特性。我们改变了模型的参数,以研究单个特征对系统响应的影响。我们在运动模拟器中表征了系统,产生了类似于躯干运动的垂直振荡。我们展示了形态和物质特性如何有效地塑造系统的振荡特性。我们得出的结论是,外部振荡可能会在运动过程中夹住脊柱内腰椎的软组织,这与最近提出的感应机制一致。
The lumbosacral organ (LSO) is a lumbosacral spinal canal morphology that is universally and uniquely found in birds. Recent studies suggested an intraspinal mechanosensor function that relies on the compliant motion of soft tissue in the spinal cord fluid. It has not yet been possible to observe LSO soft tissue motion in vivo due to limitations of imaging technologies. As an alternative approach, we developed an artificial biophysical model of the LSO, and characterize the dynamic responses of this model when entrained by external motion. The parametric model incorporates morphological and material properties of the LSO. We varied the model's parameters to study the influence of individual features on the system response. We characterized the system in a locomotion simulator, producing vertical oscillations similar to the trunk motions. We show how morphological and material properties effectively shape the system's oscillation characteristics. We conclude that external oscillations could entrain the soft tissue of the intraspinal lumbosacral organ during locomotion, consistent with recently proposed sensing mechanisms.