Ringstedt T, Kucera J, Lendahl U, Ernfors P, Ibáñez C F
Department of Neuroscience, Karolinska Institute, Stockholm, Sweden.
Development. 1997 Jul;124(13):2603-13. doi: 10.1242/dev.124.13.2603.
The role of neurotrophin-3 (NT3) during sensory neuron development was investigated in transgenic mice overexpressing NT3 under the control of the promoter and enhancer regions of the nestin gene, an intermediate filament gene widely expressed in the developing nervous system. Most of these mice died during the first postnatal day, and all showed severe limb ataxia suggestive of limb proprioceptive dysfunction. Tracing and histological analyses revealed a complete loss of spindles in limb muscles, absence of peripheral and central Ia projections, and lack of cells immunoreactive to parvalbumin in the dorsal root ganglion (DRG). Despite these deficits, there was no neuronal loss in the DRG of these mice. At birth, transgenic DRG showed increased neuron numbers, and displayed a normal proportion of neurons expressing substance P, calcitonin gene-related peptide and the NT3 receptor trkC. Transgenic dorsal roots exhibited an increased number of axons at birth, indicating that all sensory neurons in transgenic mice projected to the dorsal spinal cord. Despite the absence of central Ia afferents reaching motorneurons, several sensory fibers were seen projecting towards ectopic high levels of NT3 in the midline of transgenic spinal cords. These findings suggest novel roles for NT3 in differentiation of proprioceptive neurons, target invasion and formation of Ia projections which are independent from its effects on neuronal survival.
在巢蛋白基因(一种在发育中的神经系统广泛表达的中间丝基因)的启动子和增强子区域控制下过表达神经营养因子-3(NT3)的转基因小鼠中,研究了NT3在感觉神经元发育过程中的作用。这些小鼠中的大多数在出生后第一天死亡,并且全部表现出严重的肢体共济失调,提示肢体本体感觉功能障碍。追踪和组织学分析显示,肢体肌肉中的纺锤体完全缺失,外周和中枢Ia投射缺失,背根神经节(DRG)中缺乏对小白蛋白免疫反应的细胞。尽管存在这些缺陷,但这些小鼠的DRG中没有神经元丢失。出生时,转基因DRG显示神经元数量增加,并且表达P物质、降钙素基因相关肽和NT3受体trkC的神经元比例正常。转基因背根在出生时轴突数量增加,表明转基因小鼠中的所有感觉神经元都投射到脊髓背侧。尽管没有中枢Ia传入纤维到达运动神经元,但在转基因脊髓中线的异位高水平NT3处可见几条感觉纤维投射。这些发现提示NT3在本体感觉神经元的分化、靶标侵入和Ia投射形成中具有新的作用,这些作用独立于其对神经元存活的影响。