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WD40 重复和 FYVE 结构域包含 3 是心脏发育所必需的。

WD40 repeat and FYVE domain containing 3 is essential for cardiac development.

机构信息

Bio-X-Renji Hospital Research Center, Renji Hospital, School of Medicine, Shanghai Jiao Tong University, 160 Pujian Road, Shanghai, China.

Bio-X Institutes, Key Laboratory for the Genetics of Developmental and Neuropsychiatric Disorders, Ministry of Education, Shanghai Jiao Tong University, Shanghai, China.

出版信息

Cardiovasc Res. 2019 Jul 1;115(8):1320-1331. doi: 10.1093/cvr/cvy285.

Abstract

AIMS

WD40 repeat and FYVE domain containing 3 (WDFY3) is an adaptor protein involved in selective degradation of protein aggregates by autophagy. Recent studies have revealed that Wdfy3 is critical in the regulation of brain development and osteoclastogenesis in vivo. However, the function of Wdfy3 in cardiac development remains completely unknown. In this study, we explore the role of Wdfy3 in cardiac morphogenesis using Wdfy3-deficient mice.

METHODS AND RESULTS

Wdfy3 was expressed in the developing heart in mice and peaked at embryonic day 12.5 (E12.5). Loss of Wdfy3 in mice led to embryonic and neonatal lethality. Wdfy3-deficient mice displayed various congenital heart defects including membranous ventricular septal defect (VSD), aortic overriding (AO), double outlet right ventricle (DORV), thinning of ventricular wall, ventricular dilation, and disorganized ventricular trabeculation at E14.5. Cell proliferation was reduced in the hearts from Wdfy3-deficient mice at E12.5 and E14.5, which was associated with enhanced p21 expression. Cardiomyocyte differentiation was diminished as demonstrated by reduced Myh6 and MLC2v in Wdfy3-deficient mice at E14.5. In addition, Nkx2-5 and Mef2c, two cardiac transcription factors regulating cardiomyocyte differentiation, were decreased in Wdfy3-deficient mice at E14.5. Apoptotic cell death remained unaltered. These data suggest that reduced cell proliferation and cardiomyocyte differentiation contribute to cardiac defects in Wdfy3-deficient mice. Mechanistically, loss of Wdfy3 led to a reduction in protein levels of Notch 1 intracellular domain and its downstream targets Hes1 and Hey1, which was accompanied with enhanced full-length Notch1 protein levels. In vitro luciferase assay showed that Wdfy3 deficiency induced activity of p21 promoter, while diminished activity of Hes1 promoter through modulation of Notch1 signalling. Moreover, Wdfy3 was co-localized with Notch1 in primary embryonic cardiomyocytes. Endogenous Wdfy3 physically interacted with full-length Notch1 in the developing heart. These results suggest that Notch1 signalling is perturbed in the hearts from Wdfy3-deficient mice. No alteration of autophagy was detected in the hearts from Wdfy3-deficient mice.

CONCLUSION

Taken together, our data suggest that Wdfy3 plays an essential role in cardiac development, which may be mediated by modulation of Notch1 signalling.

摘要

目的

WD40 重复和 FYVE 结构域包含 3(WDFY3)是一种衔接蛋白,参与自噬对蛋白质聚集体的选择性降解。最近的研究表明,Wdfy3 在体内的大脑发育和破骨细胞发生中起关键作用。然而,Wdfy3 在心脏发育中的功能仍然完全未知。在这项研究中,我们使用 Wdfy3 缺陷小鼠探索了 Wdfy3 在心脏形态发生中的作用。

方法和结果

Wdfy3 在小鼠发育中的心脏中表达,并在胚胎第 12.5 天(E12.5)达到峰值。Wdfy3 缺失的小鼠导致胚胎和新生儿死亡。Wdfy3 缺陷小鼠表现出各种先天性心脏缺陷,包括膜性室间隔缺损(VSD)、主动脉骑跨(AO)、右心室双出口(DORV)、心室壁变薄、心室扩张和 E14.5 时心室小梁排列紊乱。Wdfy3 缺陷小鼠的心脏在 E12.5 和 E14.5 时细胞增殖减少,这与 p21 表达增强有关。E14.5 时,Wdfy3 缺陷小鼠的心肌细胞分化减少,Myh6 和 MLC2v 减少。此外,调节心肌细胞分化的两个心脏转录因子 Nkx2-5 和 Mef2c 在 E14.5 时在 Wdfy3 缺陷小鼠中减少。凋亡细胞死亡保持不变。这些数据表明,细胞增殖减少和心肌细胞分化减少导致 Wdfy3 缺陷小鼠的心脏缺陷。在机制上,Wdfy3 的缺失导致 Notch1 细胞内结构域及其下游靶标 Hes1 和 Hey1 的蛋白水平降低,同时全长 Notch1 蛋白水平升高。体外荧光素酶测定表明,Wdfy3 缺失诱导 p21 启动子的活性,同时通过 Notch1 信号通路的调节降低 Hes1 启动子的活性。此外,Wdfy3 在原代胚胎心肌细胞中与 Notch1 共定位。内源性 Wdfy3 在发育中的心脏中与全长 Notch1 发生物理相互作用。这些结果表明,Notch1 信号在 Wdfy3 缺陷小鼠的心脏中受到干扰。在 Wdfy3 缺陷小鼠的心脏中未检测到自噬的改变。

结论

综上所述,我们的数据表明,Wdfy3 在心脏发育中发挥重要作用,这可能是通过调节 Notch1 信号来介导的。

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