Das Rakesh, Ayali Amir, Guershon Moshe, Ibraheem Amjd, Perlson Eran, Pinchasik Bat-El
School of Mechanical Engineering, Faculty of Engineering, Tel-Aviv University, Tel-Aviv 6997801, Israel.
School of Zoology, Faculty of Life Sciences, and Sagol School of Neuroscience, Tel-Aviv University, Tel-Aviv 6997801, Israel.
iScience. 2022 Oct 8;25(11):105295. doi: 10.1016/j.isci.2022.105295. eCollection 2022 Nov 18.
When digging in the ground during egg laying the female locust extends her abdomen to 2-3 times of its original length. How the abdominal nervous system accommodates such extreme elongation remains unknown. We characterized and quantified the system's biomechanical response using controlled elongation and force measurements. The microstructure of the nerves was studied using histology and high-resolution confocal microscopy. Although the nervous system of sexually mature females demonstrated fully reversible hyper-extensibility of up to 275%, the elongation observed in premature females and males was much more limited. The unique extension dynamics of the different groups were captured by their very different force-displacement curves. Confocal microscopy suggested that elongation is not owing to undulations of the nervous system structure. Thus, the exceptional resistance to deformation and rupture presents the female locust abdominal nervous system as a valuable model for understanding the functionality and pathology related to nerve extension and reversible elongation.
在产卵时挖掘地面时,雌性蝗虫会将其腹部伸展至原来长度的2至3倍。腹部神经系统如何适应这种极端的伸长尚不清楚。我们通过控制伸长和力的测量来表征和量化该系统的生物力学反应。使用组织学和高分辨率共聚焦显微镜研究神经的微观结构。尽管性成熟雌性的神经系统表现出高达275%的完全可逆的超伸展性,但未成熟雌性和雄性中观察到的伸长则要有限得多。不同组的独特伸展动态通过它们非常不同的力-位移曲线得以体现。共聚焦显微镜表明,伸长并非由于神经系统结构的波动。因此,对变形和破裂的特殊抗性使雌性蝗虫腹部神经系统成为理解与神经伸展和可逆伸长相关的功能和病理学的有价值模型。