The Role of SHROOM3 in Congenital Heart Disease

Grant Hammons, Ally Aldrich, Rebecca Douglas, Catherine Guilfoy, Nina J. Jain, Ashleigh McMullan, Princess Murray, Caelen Rathke, Mark Wakulchik, Ellen Voskoboynik, James B. Zwierzynski, Matthew Durbin
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Abstract

Background and Hypothesis: Congenital heart defects (CHD) are the most common, and most frequently fatal birth defects, but most etiology remains unknown. We identified a patient with CHD and implicated a gene called SHROOM3. SHROOM3 binds Dishevelled2 which is the central cytoplasmic component of both canonical and noncanonical Wnt/planar cell polarity (PCP) signaling pathways. PCP drives cell movement and is important to embryogenesis and disruption causes CHD. We hypothesize CHD can result from SHROOM3-loss-of-function due to PCP disruption. Project Methods: To interrogate SHROOM3’s role in CHD and PCP we utilized an established in vivo SHROOM3-loss-of-function model, Shroom3 gene trap mice (Shroom3gt). We also utilized a loss-of-function model for PCP membrane component VANGL2, (Vangl2+/-). We assayed genetic interaction between Shroom3 and Vangl2 during cardiac development by crossing singly heterozygous null mice to produce compound heterozygous embryos, harvested embryos, and performed histologic analysis for cardiac defects. We also utilized a human in vitro SHROOM3-loss-of-function model, a CRISPR-Cas9 edited SHROOM3 knockout HELA cell line. We assayed cell movement using a scratch assay. Results: Compound heterozygous Shroom3+/gt;Vangl2+/- embryos had a three fold increase in heart defects compared to singly heterozygous Shroom3+/gt;Vangl2+/+ or Shroom3+/+;Vangl2+/- embryos (3 of 19 or 15.7%, versus 1 of 17 or 5.2%, and 1 of 19 or 4.8%, respectively), demonstrating a trend towards genetic interaction between SHROOM3 and VANGL2/PCP during cardiac development. The scratch assays demonstrated cell movement defects due to SHROOM3-loss-of-function consistent with increased cell movement. Conclusion and Potential Impact: We demonstrate SHROOM3 interacts with Wnt/PCP during cardiac development. Further interrogation of SHROOM3’s role in Wnt signaling will provide insight into the mechanisms by which a novel CHD candidate participates in cardiogenesis and will improve CHD diagnosis, management, and therapeutic development.
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SHROOM3 在先天性心脏病中的作用
背景与假设:先天性心脏缺陷(CHD)是最常见也是最常见的致命出生缺陷,但大多数病因仍不清楚。我们发现了一名先天性心脏畸形患者,并与一个名为 SHROOM3 的基因有关。SHROOM3与Dishevelled2结合,而Dishevelled2是规范和非规范Wnt/平面细胞极性(PCP)信号通路的核心细胞质成分。PCP 驱动细胞运动,对胚胎发生很重要,其破坏会导致 CHD。我们推测 CHD 可能是由于 PCP 中断导致 SHROOM3 功能缺失造成的。项目方法:为了研究SHROOM3在CHD和PCP中的作用,我们利用已建立的体内SHROOM3功能缺失模型--SHROOM3基因诱捕小鼠(SHROOM3gt)。我们还利用了 PCP 膜成分 VANGL2 的功能缺失模型(Vangl2+/-)。我们通过将单杂合子无效小鼠杂交产生复合杂合子胚胎,收获胚胎并对心脏缺陷进行组织学分析,从而检测 Shroom3 和 Vangl2 在心脏发育过程中的遗传相互作用。我们还利用了人类体外 SHROOM3 功能缺失模型,即 CRISPR-Cas9 编辑的 SHROOM3 基因敲除 HELA 细胞系。我们使用划痕试验检测了细胞的移动。结果显示与单杂合子Shroom3+/gt;Vangl2+/+或Shroom3+/+;Vangl2+/-胚胎相比,复合杂合子Shroom3+/gt;Vangl2+/-胚胎的心脏缺陷增加了三倍(分别为19例中的3例或15.7%,17例中的1例或5.2%,以及19例中的1例或4.8%),这表明在心脏发育过程中,SHROOM3和VANGL2/PCP之间存在遗传相互作用的趋势。划痕实验表明,SHROOM3 功能缺失导致的细胞移动缺陷与细胞移动增加一致。结论和潜在影响:我们证明了 SHROOM3 在心脏发育过程中与 Wnt/PCP 相互作用。进一步研究 SHROOM3 在 Wnt 信号转导中的作用将有助于深入了解一种新型 CHD 候选病例参与心脏发育的机制,从而改进 CHD 诊断、管理和治疗方法的开发。
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