Division of Developmental Biology, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA.
Division of Plastic Surgery, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA.
Genesis. 2020 Jul;58(7):e23365. doi: 10.1002/dvg.23365. Epub 2020 Apr 10.
Heterozygous deletion of Six2, which encodes a member of sine oculis homeobox family transcription factors, has recently been associated with the frontonasal dysplasia syndrome FND4. Previous studies showed that Six2 is expressed in multiple tissues during craniofacial development in mice, including embryonic head mesoderm, postmigratory frontonasal neural crest cells, and epithelial and mesenchymal cells of the developing palate and nasal structures. Whereas Six2 mice exhibited cranial base defects but did not recapitulate frontonasal phenotypes of FND4 patients, Six1 Six2 double mutant mice showed severe craniofacial defects including midline facial clefting. The complex phenotypes of FND4 patients and of Six1 Six2 mutant mice indicate that Six2 plays crucial roles in distinct cell types at multiple stages of craniofacial morphogenesis. Here we report generation of mice carrying insertions of a pair of loxP sites flanking exon-1 of the Six2 gene (Six2 allele) using CRISPR/Cas9-mediated genome editing. We show that the Six2 allele functions normally and is effectively inactivated by Cre-mediated recombination in vivo. Furthermore, we show that Six2 ;Wnt1-Cre mice recapitulated cranial base defects but not neonatal lethality of Six2 mice. These results indicate that Six2 mice enable systematic investigation of cell type- and stage-specific Six2 function in development and disease.
Six2 基因(编码 sine oculis 同源盒家族转录因子的成员)杂合缺失最近与额鼻发育不良综合征 FND4 相关。先前的研究表明,Six2 在小鼠颅面发育过程中多个组织中表达,包括胚胎头部中胚层、迁移后的额鼻神经嵴细胞以及发育中的腭和鼻结构的上皮和间充质细胞。Six2 小鼠表现出头颅基底缺陷,但没有重现 FND4 患者的额鼻表型,而 Six1 Six2 双突变小鼠则表现出严重的颅面缺陷,包括中线面部裂隙。FND4 患者和 Six1 Six2 突变小鼠的复杂表型表明,Six2 在颅面形态发生的多个阶段的不同细胞类型中发挥关键作用。在这里,我们使用 CRISPR/Cas9 介导的基因组编辑生成了携带一对loxP 位点的 Six2 基因外显子-1侧翼插入的小鼠(Six2 等位基因)。我们表明,Six2 等位基因正常发挥作用,并且可以在体内通过 Cre 介导的重组有效失活。此外,我们表明 Six2 ;Wnt1-Cre 小鼠重现了颅基底缺陷,但没有重现 Six2 小鼠的新生期致死性。这些结果表明,Six2 小鼠能够系统地研究发育和疾病中细胞类型和阶段特异性 Six2 功能。