Department of Anatomy and Cell Biology, University of Kansas Medical Center, 3901 Rainbow Blvd., Kansas City, KS, 66160, USA.
Clinical Research Training Center, Institute of Clinical and Translational Sciences, Washington University, St. Louis, MO, USA.
Sci Rep. 2021 Jan 14;11(1):1452. doi: 10.1038/s41598-021-81123-9.
Cleft lip and/or palate (CL/P) are common anomalies occurring in 1/800 live-births. Pathogenic SPECC1L variants have been identified in patients with CL/P, which signifies a primary role for SPECC1L in craniofacial development. Specc1l mutant mouse embryos exhibit delayed palatal shelf elevation accompanied by epithelial defects. We now posit that the process of palate elevation is itself abnormal in Specc1l mutants, due to defective remodeling of palatal mesenchyme. To characterize the underlying cellular defect, we studied the movement of primary mouse embryonic palatal mesenchyme (MEPM) cells using live-imaging of wound-repair assays. SPECC1L-deficient MEPM cells exhibited delayed wound-repair, however, reduced cell speed only partially accounted for this delay. Interestingly, mutant MEPM cells were also defective in coordinated cell movement. Therefore, we used open-field 2D cultures of wildtype MEPM cells to show that they indeed formed cell streams at high density, which is an important attribute of collective movement. Furthermore, activation of the PI3K-AKT pathway rescued both cell speed and guidance defects in Specc1l mutant MEPM cells. Thus, we show that live-imaging of primary MEPM cells can be used to assess mesenchymal remodeling defects during palatal shelf elevation, and identify a novel role for SPECC1L in collective movement through modulation of PI3K-AKT signaling.
唇腭裂(CL/P)是一种常见的出生缺陷,发病率为 1/800。CL/P 患者中已鉴定出致病性 SPECC1L 变异体,这表明 SPECC1L 在颅面发育中起主要作用。Specc1l 突变鼠胚胎表现出腭裂突升延迟,伴有上皮缺陷。我们现在假设,由于腭中胚层重塑缺陷,Specc1l 突变体的腭裂突升过程本身异常。为了描述潜在的细胞缺陷,我们通过对伤口修复实验的活细胞成像研究了初级小鼠胚胎腭中胚层(MEPM)细胞的运动。Specc1l 缺陷型 MEPM 细胞的伤口修复延迟,但细胞速度降低仅部分解释了这种延迟。有趣的是,突变型 MEPM 细胞在协调细胞运动方面也存在缺陷。因此,我们使用野生型 MEPM 细胞的开放场 2D 培养来表明它们确实在高密度下形成细胞流,这是集体运动的一个重要属性。此外,PI3K-AKT 通路的激活挽救了 Specc1l 突变型 MEPM 细胞的细胞速度和导向缺陷。因此,我们表明,初级 MEPM 细胞的活细胞成像可用于评估腭裂突升过程中的中胚层重塑缺陷,并通过调节 PI3K-AKT 信号通路鉴定 SPECC1L 在集体运动中的新作用。