Department of Genetics, School of Basic Medical Sciences, Tianjin Medical University, Tianjin, People's Republic of China.
Department of Orthopedics, Tianjin Medical University General Hospital, Tianjin, People's Republic of China.
Bone. 2019 Oct;127:646-655. doi: 10.1016/j.bone.2019.07.021. Epub 2019 Jul 29.
Osteogenesis imperfecta (OI) type I caused by the null allele of COL1A1 gene is in the majority in clinical OI cases. Currently, heterozygous Mov-13 mice generated by virus insertion in the first intron of col1a1 is the exclusive model to modulate OI type I, in spite of the gradually recovered bone mineral and mechanical properties. A newly designed heterozygous col1a1 OI mouse was produced in the present study by partial exons knockout (exon 2-exon 5, 365 nt of mRNA) using CRISPR/Cas9 system. The deletion resulted in generally large decrease in type I collagen synthesis due to frameshift mutation and premature chain termination, closely mimicking the pathogenic mechanism in affected individuals. And the strain possessed significantly sparse mineral scaffolds, bone loss, lowered mechanical strength and broken bone metabolism by 8 and 20 weeks compared to their littermates, suggesting a sustained skeletal weakness. Notably, the remarkable down-regulation of Yes-associated protein (YAP), one of the key coactivator in Hippo signaling pathway, was first found both in the femur and adipose derived mesenchymal stem cells (ADSCs) under osteogenic differentiation of col1a1 mice, which might be responsible for the reduced osteogenic potential and brittle bones. Still, further research was needed in order to illuminate the underlying mechanism.
I 型成骨不全症(OI)由 COL1A1 基因的无效等位基因引起,在临床 OI 病例中占多数。目前,通过病毒插入 col1a1 第一个内含子产生杂合 Mov-13 小鼠是唯一能够调节 I 型 OI 的模型,尽管其骨骼矿物质和机械性能逐渐恢复。本研究利用 CRISPR/Cas9 系统,通过部分外显子敲除(外显子 2-外显子 5,365nt mRNA),产生了一种新设计的杂合 col1a1 OI 小鼠。由于移码突变和过早链终止,该缺失导致 I 型胶原蛋白合成普遍大幅减少,这与受影响个体中的致病机制非常相似。与同窝仔相比,该品系在 8 周和 20 周时具有明显稀疏的矿物质支架、骨丢失、机械强度降低和骨折代谢物,表明骨骼持续虚弱。值得注意的是,在 col1a1 小鼠成骨分化过程中,首次在股骨和脂肪来源间充质干细胞(ADSCs)中发现 Hippo 信号通路关键共激活因子之一 Yes 相关蛋白(YAP)的显著下调,这可能是导致成骨潜能降低和骨骼脆弱的原因。然而,仍需要进一步研究以阐明其潜在机制。