Division of Genetic Medicine, Department of Medicine, Vanderbilt University Medical Center, Nashville, TN 37232, USA.
Department of Biostatistics, Vanderbilt University Medical Center, Nashville, TN 37232, USA.
Int J Mol Sci. 2021 Jun 25;22(13):6838. doi: 10.3390/ijms22136838.
The autonomic nervous system derives from the neural crest (NC) and supplies motor innervation to the smooth muscle of visceral organs, including the lower urinary tract (LUT). During fetal development, sacral NC cells colonize the urogenital sinus to form pelvic ganglia (PG) flanking the bladder neck. The coordinated activity of PG neurons is required for normal urination; however, little is known about the development of PG neuronal diversity. To discover candidate genes involved in PG neurogenesis, the transcriptome profiling of sacral NC and developing PG was performed, and we identified the enrichment of the type 3 serotonin receptor (5-HT3, encoded by and ). We determined that is one of the first serotonin receptor genes that is up-regulated in sacral NC progenitors and is maintained in differentiating PG neurons. In vitro cultures showed that the disruption of 5-HT3 signaling alters the differentiation outcomes of sacral NC cells, while the stimulation of 5-HT3 in explanted fetal pelvic ganglia severely diminished neurite arbor outgrowth. Overall, this study provides a valuable resource for the analysis of signaling pathways in PG development, identifies 5-HT3 as a novel regulator of NC lineage diversification and neuronal maturation in the peripheral nervous system, and indicates that the perturbation of 5-HT3 signaling in gestation has the potential to alter bladder function later in life.
自主神经系统源于神经嵴(NC),并为包括下尿路(LUT)在内的内脏器官平滑肌提供运动神经支配。在胎儿发育过程中,骶部 NC 细胞定植于尿生殖窦,形成膀胱颈部两侧的盆神经节(PG)。PG 神经元的协调活动是正常排尿所必需的;然而,PG 神经元多样性的发育机制知之甚少。为了发现参与 PG 神经发生的候选基因,对骶部 NC 和发育中的 PG 的转录组进行了分析,我们发现 5-羟色胺受体 3(5-HT3,由 和 编码)的表达丰富。我们确定 是在骶部 NC 祖细胞中上调的第一批 5-羟色胺受体基因之一,并在分化的 PG 神经元中维持。体外培养表明,破坏 5-HT3 信号会改变骶部 NC 细胞的分化结果,而在离体胎儿盆神经节中刺激 5-HT3 会严重减少神经突分支生长。总的来说,这项研究为 PG 发育中信号通路的分析提供了有价值的资源,确定 5-HT3 是 NC 谱系多样化和周围神经系统神经元成熟的新调节因子,并表明妊娠期间 5-HT3 信号的干扰有可能改变膀胱功能在以后的生活中。