Demircan Turan
Genetics, Muğla Sıtkı Koçman University, Muğla, TUR.
Cureus. 2020 Feb 16;12(2):e7014. doi: 10.7759/cureus.7014.
Thousands of people are affected by central nervous system (CNS) dysfunctions each year, with stroke and spinal cord injury (SCI) being the most frequent causes. Although there is some evidence of partial CNS self-repair (via migration of neural stem cells to the injury zone and adult neurogenesis), due to restricted regeneration capacity in mammals, acute or chronic spinal cord injuries cannot be repaired completely. Therefore, to expand the availability of treatment options for SCI, research on highly regenerative animals has become essential. Among vertebrates, axolotl, a salamander species, has been emerging as a powerful model to explore the molecular mechanisms of regeneration due to its exceptional regenerative capacity. In this study, gene expression modulation for regenerative-capable neotenic axolotl during spinal cord regeneration has been investigated. Next-generation sequencing was applied for the collected regeneration samples at zero and seven days post-amputation (dpa). The data obtained from the analyzed samples revealed 363 genes differentially expressed, mostly downregulated, between zero dpa and seven dpa. The extracellular matrix, cell-cell adhesion, and immune system-related processes and pathways were enriched by gene ontology and the Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway enrichment analyses. Based on these data, we conclude that the downregulation of immune system-related biological processes is crucial for spinal cord regeneration.
每年有成千上万的人受到中枢神经系统(CNS)功能障碍的影响,中风和脊髓损伤(SCI)是最常见的病因。尽管有一些证据表明中枢神经系统存在部分自我修复(通过神经干细胞迁移到损伤区域和成年神经发生),但由于哺乳动物的再生能力有限,急性或慢性脊髓损伤无法完全修复。因此,为了增加脊髓损伤治疗方案的选择,对具有高度再生能力的动物进行研究变得至关重要。在脊椎动物中,蝾螈这种蝾螈物种,因其非凡的再生能力,已成为探索再生分子机制的有力模型。在本研究中,对具有再生能力的幼态蝾螈脊髓再生过程中的基因表达调控进行了研究。对截肢后0天和7天(dpa)收集的再生样本应用了下一代测序技术。从分析样本中获得的数据显示,在0 dpa和7 dpa之间有363个基因差异表达,大多数为下调。通过基因本体论和京都基因与基因组百科全书(KEGG)通路富集分析,细胞外基质、细胞间粘附以及免疫系统相关的过程和通路得到了富集。基于这些数据,我们得出结论,免疫系统相关生物学过程的下调对脊髓再生至关重要。