Bremner Lindsay R, Fitzgerald Maria
Division of Biology, California Institute of Technology, Pasadena, California 91125, USA.
J Physiol. 2008 Mar 15;586(6):1529-37. doi: 10.1113/jphysiol.2007.145672. Epub 2007 Dec 13.
Spinal nociceptive processing undergoes extensive maturation in the postnatal period. The large excitatory cutaneous receptive fields and sensitivity to mechanical stimulation in the first weeks of life suggest a lack of inhibitory control in developing spinal sensory pathways, which cannot be easily explained at the synaptic level. We hypothesized that developmental changes in dorsal horn inhibition occur at the network level, and tested this by mapping the spatial and modality organization of dorsal horn cell inhibitory receptive fields (RFs) in decerebrate spinal adult and neonatal rats. We report two novel results. First, although contralateral inhibition of dorsal horn cells was well established by postnatal day 3 (P3), inhibitory RFs were significantly less spatially restricted at P3 than in the adult and the intensity of inhibition across the RF was more evenly distributed in the neonate. Second, contralateral inhibitory RFs could be activated by both low- and high-intensity stimulation in the neonate, in contrast to the situation in adult where high-intensity pinch is normally required. These results demonstrate substantial postnatal changes in the organization or 'tuning' of inhibition in the developing dorsal horn, which are likely to contribute to the maturation of tactile and nociceptive spinal processing and coordinated sensorimotor and pain behaviour.
脊髓伤害性信息处理在出生后阶段经历广泛的成熟过程。出生后最初几周内,大的兴奋性皮肤感受野以及对机械刺激的敏感性表明,发育中的脊髓感觉通路缺乏抑制性控制,这在突触层面难以轻易解释。我们推测背角抑制的发育变化发生在网络层面,并通过绘制去大脑脊髓成年大鼠和新生大鼠背角细胞抑制性感受野(RFs)的空间和模式组织来进行测试。我们报告了两个新结果。第一,尽管在出生后第3天(P3)背角细胞的对侧抑制已充分建立,但P3时抑制性RFs在空间上的限制明显小于成年大鼠,并且在新生大鼠中,整个RF上抑制强度的分布更为均匀。第二,与成年大鼠通常需要高强度捏压的情况相反,新生大鼠的对侧抑制性RFs可被低强度和高强度刺激激活。这些结果表明,发育中的背角在抑制的组织或“调谐”方面存在显著的出生后变化,这可能有助于触觉和伤害性脊髓处理以及协调的感觉运动和疼痛行为的成熟。