Institut de Génétique et de Biologie Moléculaire et Cellulaire, 67400 Illkirch, France.
CNRS UMR 7104, 67400 Illkirch, France.
Hum Mol Genet. 2020 Mar 27;29(5):766-784. doi: 10.1093/hmg/ddz316.
By using the Cre-mediated genetic switch technology, we were able to successfully generate a conditional knock-in mouse, bearing the KIF2A p.His321Asp missense point variant, identified in a subject with malformations of cortical development. These mice present with neuroanatomical anomalies and microcephaly associated with behavioral deficiencies and susceptibility to epilepsy, correlating with the described human phenotype. Using the flexibility of this model, we investigated RosaCre-, NestinCre- and NexCre-driven expression of the mutation to dissect the pathophysiological mechanisms underlying neurodevelopmental cortical abnormalities. We show that the expression of the p.His321Asp pathogenic variant increases apoptosis and causes abnormal multipolar to bipolar transition in newborn neurons, providing therefore insights to better understand cortical organization and brain growth defects that characterize KIF2A-related human disorders. We further demonstrate that the observed cellular phenotypes are likely to be linked to deficiency in the microtubule depolymerizing function of KIF2A.
利用 Cre 介导的基因开关技术,我们成功地构建了一个条件性敲入小鼠模型,该模型携带了在一个具有皮质发育畸形的患者中发现的 KIF2A p.His321Asp 错义点变异。这些小鼠表现出神经解剖异常和小头畸形,伴有行为缺陷和易患癫痫,与描述的人类表型相吻合。利用该模型的灵活性,我们研究了 RosaCre、NestinCre 和 NexCre 驱动的突变表达,以剖析神经发育性皮质异常的病理生理机制。我们表明,p.His321Asp 致病变异的表达增加了细胞凋亡,并导致新生神经元中异常的多极到两极的转变,从而为更好地理解特征性 KIF2A 相关人类疾病的皮质组织和大脑生长缺陷提供了深入了解。我们进一步证明,观察到的细胞表型可能与 KIF2A 的微管解聚功能缺陷有关。