Krotov Volodymyr, Agashkov Kirill, Romanenko Sergii, Halaidych Oleh, Andrianov Yaroslav, Safronov Boris V, Belan Pavel, Voitenko Nana
Department of Sensory Signaling, Bogomoletz Institute of Physiology, Kyiv, Ukraine.
Department of Molecular Biophysics, Bogomoletz Institute of Physiology, Kyiv, Ukraine.
Front Cell Neurosci. 2023 Jan 11;16:1029799. doi: 10.3389/fncel.2022.1029799. eCollection 2022.
Although spinal processing of sensory information greatly relies on afferent-driven (AD) presynaptic inhibition (PI), our knowledge about how it shapes peripheral input to different types of nociceptive neurons remains insufficient. Here we examined the AD-PI of primary afferent input to spinal neurons in the marginal layer, lamina I, and the layer surrounding the central canal, lamina X; two nociceptive-processing regions with similar patterns of direct supply by Aδ- and C-afferents. Unmyelinated C-fibers were selectively activated by electrical stimuli of negative polarity that induced an anodal block of myelinated Aβ/δ-fibers. Combining this approach with the patch-clamp recording in an spinal cord preparation, we found that attenuation of the AD-PI by the anodal block of Aβ/δ-fibers resulted in the appearance of new mono- and polysynaptic C-fiber-mediated excitatory postsynaptic current (EPSC) components. Such homosegmental Aβ/δ-AD-PI affected neurons in the segment of the dorsal root entrance as well as in the adjacent rostral segment. In their turn, C-fibers from the L5 dorsal root induced heterosegmental AD-PI of the inputs from the L4 Aδ- and C-afferents to the neurons in the L4 segment. The heterosegmental C-AD-PI was reciprocal since the L4 C-afferents inhibited the L5 Aδ- and C-fiber inputs, as well as some direct L5 Aβ-fiber inputs. Moreover, the C-AD-PI was found to control the spike discharge in spinal neurons. Given that the homosegmental Aβ/δ-AD-PI and heterosegmental C-AD-PI affected a substantial percentage of lamina I and X neurons, we suggest that these basic mechanisms are important for shaping primary afferent input to the neurons in the spinal nociceptive-processing network.
尽管脊髓对感觉信息的处理很大程度上依赖于传入驱动(AD)的突触前抑制(PI),但我们对于它如何塑造不同类型伤害性神经元的外周输入的了解仍然不足。在这里,我们研究了初级传入输入到脊髓边缘层、I层以及围绕中央管的X层神经元的AD-PI;这两个伤害性处理区域由Aδ和C传入纤维直接供应的模式相似。通过负极性电刺激选择性激活无髓鞘C纤维,这种刺激会诱导有髓鞘Aβ/δ纤维的阳极阻滞。将这种方法与脊髓制备中的膜片钳记录相结合,我们发现Aβ/δ纤维的阳极阻滞导致AD-PI减弱,从而出现新的单突触和多突触C纤维介导的兴奋性突触后电流(EPSC)成分。这种同侧Aβ/δ-AD-PI影响背根入口节段以及相邻头侧节段的神经元。反过来,来自L5背根的C纤维诱导L4节段中L4 Aδ和C传入纤维输入到神经元的异侧AD-PI。异侧C-AD-PI是相互的,因为L4 C传入纤维抑制L5 Aδ和C纤维输入以及一些直接的L5 Aβ纤维输入。此外,发现C-AD-PI控制脊髓神经元的动作电位发放。鉴于同侧Aβ/δ-AD-PI和异侧C-AD-PI影响了相当比例的I层和X层神经元,我们认为这些基本机制对于塑造脊髓伤害性处理网络中神经元的初级传入输入很重要。