Yu Saet-Byeol, Umair Zobia, Kumar Shiv, Lee Unjoo, Lee Seung-Hwan, Kim Jong-Il, Kim SungChan, Park Jae-Bong, Lee Jae-Yong, Kim Jaebong
Department of Biochemistry, Institute of Cell Differentiation and Aging, College of Medicine, Hallym University, Kangwon 200-702, Korea.
Department of Electrical Engineering, Hallym University, Kangwon200-702, Korea.
Mol Cells. 2016 Apr 30;39(4):352-7. doi: 10.14348/molcells.2016.0006. Epub 2016 Feb 29.
Vertebrate neurogenesis requires inhibition of endogenous bone morphogenetic protein (BMP) signals in the ectoderm. Blocking of BMPs in animal cap explants causes the formation of anterior neural tissues as a default fate. To identify genes involved in the anterior neural specification, we analyzed gene expression profiles using a Xenopus Affymetrix Gene Chip after BMP-4 inhibition in animal cap explants. We found that the xCyp26c gene, encoding a retinoic acid (RA) degradation enzyme, was upregulated following inhibition of BMP signaling in early neuroectodermal cells. Whole-mount in situ hybridization analysis showed that xCyp26c expression started in the anterior region during the early neurula stage. Overexpression of xCyp26c weakly induced neural genes in animal cap explants. xCyp26c abolished the expression of all trans-/cis-RA-induced posterior genes, but not basic FGF-induced posterior genes. Depletion of xCyp26c by morpholino-oligonucleotides suppressed the normal formation of the axis and head, indicating that xCyp26c plays a critical role in the specification of anterior neural tissue in whole embryos. In animal cap explants, however, xCyp26c morpholinos did not alter anterior-to-posterior neural tissue formation. Together, these results suggest that xCyp26c plays a specific role in anterior-posterior (A-P) neural patterning of Xenopus embryos.
脊椎动物的神经发生需要抑制外胚层中内源性骨形态发生蛋白(BMP)信号。在动物帽外植体中阻断BMP会导致默认形成前神经组织。为了鉴定参与前神经特化的基因,我们在动物帽外植体中抑制BMP-4后,使用非洲爪蟾Affymetrix基因芯片分析了基因表达谱。我们发现,编码视黄酸(RA)降解酶的xCyp26c基因在早期神经外胚层细胞中BMP信号被抑制后上调。整体原位杂交分析表明,xCyp26c表达在神经胚早期开始于前部区域。在动物帽外植体中过表达xCyp26c会微弱诱导神经基因。xCyp26c消除了所有反式/顺式RA诱导的后部基因的表达,但不影响碱性FGF诱导的后部基因的表达。用吗啉代寡核苷酸耗尽xCyp26c会抑制轴和头部的正常形成,这表明xCyp26c在整个胚胎的前神经组织特化中起关键作用。然而,在动物帽外植体中,xCyp26c吗啉代寡核苷酸不会改变前后神经组织的形成。总之,这些结果表明xCyp26c在非洲爪蟾胚胎的前后(A-P)神经模式形成中起特定作用。