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内皮细胞 Sash1 通过一氧化氮信号通路对肺脏成熟起作用。

Endothelial Sash1 Is Required for Lung Maturation through Nitric Oxide Signaling.

机构信息

Michael Smith Genome Sciences Centre, BC Cancer Agency, 675 West 10(th) Avenue, Vancouver, BC V5Z 1L3, Canada; Department of Experimental Medicine, University of British Columbia, Vancouver, BC V6T 2B5, Canada.

Michael Smith Genome Sciences Centre, BC Cancer Agency, 675 West 10(th) Avenue, Vancouver, BC V5Z 1L3, Canada.

出版信息

Cell Rep. 2019 May 7;27(6):1769-1780.e4. doi: 10.1016/j.celrep.2019.04.039.

Abstract

The sterile alpha motif (SAM) and SRC homology 3 (SH3) domain containing protein 1 (Sash1) acts as a scaffold in TLR4 signaling. We generated Sash1 mice, which die in the perinatal period due to respiratory distress. Constitutive or endothelial-restricted Sash1 loss leads to a delay in maturation of alveolar epithelial cells causing reduced surfactant-associated protein synthesis. We show that Sash1 interacts with β-arrestin 1 downstream of the TLR4 pathway to activate Akt and endothelial nitric oxide synthase (eNOS) in microvascular endothelial cells. Generation of nitric oxide downstream of Sash1 in endothelial cells affects alveolar epithelial cells in a cGMP-dependent manner, inducing maturation of alveolar type 1 and 2 cells. Thus, we identify a critical cell nonautonomous function for Sash1 in embryonic development in which endothelial Sash1 regulates alveolar epithelial cell maturation and promotes pulmonary surfactant production through nitric oxide signaling. Lung immaturity is a major cause of respiratory distress and mortality in preterm infants, and these findings identify the endothelium as a potential target for therapy.

摘要

sterile alpha motif (SAM) 和 SRC homology 3 (SH3) 结构域包含蛋白 1 (Sash1) 作为 TLR4 信号转导的支架。我们生成了 Sash1 小鼠,由于呼吸窘迫,它们在围产期死亡。组成型或内皮细胞特异性 Sash1 缺失导致肺泡上皮细胞成熟延迟,导致表面活性剂相关蛋白合成减少。我们表明,Sash1 与 TLR4 途径下游的β-arrestin 1 相互作用,在微血管内皮细胞中激活 Akt 和内皮型一氧化氮合酶 (eNOS)。内皮细胞中 Sash1 下游产生的一氧化氮以 cGMP 依赖性方式影响肺泡上皮细胞,诱导肺泡 1 型和 2 型细胞的成熟。因此,我们确定了 Sash1 在胚胎发育中的一个关键的非自主性细胞功能,其中内皮细胞 Sash1 通过一氧化氮信号调节肺泡上皮细胞的成熟并促进肺表面活性剂的产生。肺不成熟是早产儿呼吸窘迫和死亡率的主要原因,这些发现确定了内皮细胞作为治疗的潜在靶点。

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