miR-200a在脊髓再生过程中对干细胞身份的调控

Sarah E. Walker, K. Sabin, Micah D. Gearhart, Kenta Yamamoto, K. Echeverri
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引用次数: 6

摘要

蝾螈是多种再生的重要模式生物,包括功能性脊髓再生。值得注意的是,蝾螈可以在小损伤后修复脊髓,也可以在截肢后再生整个尾巴。在发育过程中使用的几种经典信号通路在再生过程中被重新激活,但这是如何调节的仍然是一个谜。我们之前已经确定miR-200a是促进脊髓成功再生的关键因素。在这里,通过RNA-seq分析,我们发现miR-200a的抑制导致脊髓细胞损伤后经典中胚层标记物brachyury的上调。然而,这些细胞仍然表达神经干细胞标记物sox2。体内谱系追踪使我们确定这些细胞可以产生神经细胞和中胚层细胞。此外,我们发现miR-200a可以通过该基因3'UTR中的种子序列直接调控brachyury。我们的数据表明,当只需要替换胶质细胞和神经元时,miR-200a抑制脊髓小病变损伤后的中胚层细胞命运。脊髓损伤后,miR-200微调短轴鞘和β-catenin的表达水平,引导脊髓干细胞向中胚层或外胚层细胞分化。
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Regulation of stem cell identity by miR-200a during spinal cord regeneration
Axolotls are an important model organism for multiple types of regeneration, including functional spinal cord regeneration. Remarkably, axolotls can repair their spinal cord after a small lesion injury and can also regenerate their entire tail following amputation. Several classical signaling pathways that are used during development are reactivated during regeneration, but how this is regulated remains a mystery. We have previously identified miR-200a as a key factor that promotes successful spinal cord regeneration. Here, using RNA-seq analysis, we discovered that the inhibition of miR-200a results in an upregulation of the classical mesodermal marker brachyury in spinal cord cells after injury. However, these cells still express the neural stem cell marker sox2. In vivo lineage tracing allowed us to determine that these cells can give rise to cells of both the neural and mesoderm lineage. Additionally, we found that miR-200a can directly regulate brachyury via a seed sequence in the 3’UTR of the gene. Our data indicate that miR-200a represses mesodermal cell fate after a small lesion injury in the spinal cord when only glial cells and neurons need to be replaced. Summary Statement After spinal cord injury, miR-200 fine-tunes expression levels brachyury and β-catenin to direct spinal cord stem into cells of the mesodermal or ectodermal lineage.
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