Krotov Volodymyr, Belan Pavel, Voitenko Nana
Department of Molecular Biophysics, Bogomoletz Institute of Physiology, Kyiv, Ukraine.
Department of Biomedicine and Neuroscience, Kyiv Academic University, Kyiv, Ukraine.
Bio Protoc. 2024 Jul 20;14(14):e5035. doi: 10.21769/BioProtoc.5035.
Despite playing diverse physiological roles, the area surrounding the central canal, lamina X, remains one of the least studied spinal cord regions. Technical challenges and limitations of the commonly used experimental approaches are the main difficulties that hamper lamina X research. In the current protocol, we describe a reliable method for functional investigation of lamina X neurons that requires neither time-consuming slicing nor sophisticated in vivo experiments. Our approach relies on ex vivo hemisected spinal cord preparation that preserves the rostrocaudal and mediolateral spinal architecture as well as the dorsal roots, and infrared LED oblique illumination for visually guided patch clamp in thick blocks of tissue. When coupled with electric stimulation of the spared dorsal roots, electrophysiological recordings provide information on primary afferent inputs to lamina X neurons from myelinated and non-myelinated fibers and allow estimating primary afferent-driven presynaptic inhibition. Overall, we describe a simple, time-efficient, inexpensive, and versatile approach for lamina X research. Key features • Quick and easy preparation procedure that grants access to lamina X neurons without spinal cord slicing • Preserved rostrocaudal and mediolateral connectivity and preserved primary afferent supply • Ability to perform electrophysiological recordings in combination with dorsal root stimulations allowing to study afferent inputs and presynaptic inhibition of lamina X neurons.
尽管中央管周围区域(即X层)发挥着多种生理作用,但它仍是脊髓中研究最少的区域之一。常用实验方法的技术挑战和局限性是阻碍X层研究的主要困难。在本方案中,我们描述了一种用于X层神经元功能研究的可靠方法,该方法既不需要耗时的切片,也不需要复杂的体内实验。我们的方法依赖于离体半切脊髓标本,该标本保留了脊髓的头尾向和内外侧结构以及背根,还依赖于红外LED斜照光,用于在厚组织块中进行视觉引导的膜片钳记录。当与保留的背根电刺激相结合时,电生理记录可提供有关有髓和无髓纤维向X层神经元的初级传入输入的信息,并可估计初级传入驱动的突触前抑制。总体而言,我们描述了一种用于X层研究的简单、高效、廉价且通用的方法。关键特性 • 快速简便的制备程序,无需脊髓切片即可接触到X层神经元 • 保留头尾向和内外侧连接以及保留初级传入供应 • 能够结合背根刺激进行电生理记录,从而研究X层神经元的传入输入和突触前抑制