Department of Pediatrics, Section of Developmental Biology, University of Colorado Anschutz Medical Campus and Children's Hospital Colorado, Aurora, CO 80045, USA.
Genetics. 2021 Aug 9;218(4). doi: 10.1093/genetics/iyab082.
The axis of the vertebrate neural tube is patterned, in part, by a ventral to dorsal gradient of Shh signaling. In the ventral spinal cord, Shh induces concentration-dependent expression of transcription factors, subdividing neural progenitors into distinct domains that subsequently produce distinct neuronal and glial subtypes. In particular, progenitors of the pMN domain express the bHLH transcription factor Olig2 and produce motor neurons followed by oligodendrocytes, the myelinating glial cell type of the central nervous system. In addition to its role in patterning ventral progenitors, Shh signaling must be maintained through development to specify pMN progenitors for oligodendrocyte fate. Using a forward genetic screen in zebrafish for mutations that disrupt the development of oligodendrocytes, we identified a new mutant allele of boc, which encodes a type I transmembrane protein that functions as a coreceptor for Shh. Embryos homozygous for the bocco25 allele, which creates a missense mutation in a Fibronectin type III domain that binds Shh, have normally patterned spinal cords but fail to maintain pMN progenitors, resulting in a deficit of oligodendrocytes. Using a sensitive fluorescent detection method for in situ RNA hybridization, we found that spinal cord cells express boc in a graded fashion that is inverse to the gradient of Shh signaling activity and that boc function is necessary to maintain pMN progenitors by shaping the Shh signaling gradient.
脊椎动物神经管的轴突在一定程度上是由 Shh 信号的腹侧到背侧梯度模式化的。在脊髓腹侧,Shh 诱导转录因子的浓度依赖性表达,将神经祖细胞细分为不同的区域,随后产生不同的神经元和神经胶质亚型。特别是,pMN 区域的祖细胞表达 bHLH 转录因子 Olig2,并产生运动神经元,随后产生少突胶质细胞,这是中枢神经系统的髓鞘形成神经胶质细胞类型。除了在模式化腹侧祖细胞方面的作用外,Shh 信号还必须在发育过程中维持,以指定 pMN 祖细胞的少突胶质细胞命运。我们在斑马鱼中进行了正向遗传筛选,以寻找破坏少突胶质细胞发育的突变,从而鉴定出 boc 的一个新的突变等位基因,该基因编码一种 I 型跨膜蛋白,作为 Shh 的共受体。bocco25 等位基因纯合的胚胎会产生一个错义突变,该突变会破坏结合 Shh 的纤连蛋白 III 结构域,其脊髓具有正常的模式化,但不能维持 pMN 祖细胞,导致少突胶质细胞缺失。使用灵敏的荧光原位杂交 RNA 检测方法,我们发现脊髓细胞以与 Shh 信号活性梯度相反的梯度方式表达 boc,并且 boc 功能对于通过塑造 Shh 信号梯度来维持 pMN 祖细胞是必要的。