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GSDMD deficiency ameliorates hyperoxia-induced BPD and ROP in neonatal mice

机译:GSDMD缺乏可改善新生小鼠高氧诱导的BPD和ROP

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Bronchopulmonary dysplasia (BPD) and retinopathy of prematurity (ROP) are among the most common morbidities affecting extremely premature infants who receive oxygen therapy. Many clinical studies indicate that BPD is associated with advanced ROP. However, the mechanistic link between hyperoxia, BPD, and ROP remains to be explored. Gasdermin D (GSDMD) is a key executor of inflammasome-induced pyroptosis and inflammation. Inhibition of GSDMD has been shown to attenuate hyperoxia-induced BPD and brain injury in neonatal mice. The objective of this study was to further define the mechanistic roles of GSDMD in the pathogenesis of hyperoxia-induced BPD and ROP in mouse models. Here we show that global GSDMD knockout (GSDMD-KO) protects against hyperoxia-induced BPD by reducing macrophage infiltration, improving alveolarization and vascular development, and decreasing cell death. In addition, GSDMD deficiency prevented hyperoxia-induced ROP by reducing vasoobliteration and neovascularization, improving thinning of multiple retinal tissue layers, and decreasing microglial activation. RNA sequencing analyses of lungs and retinas showed that similar genes, including those from inflammatory, cell death, tissue remodeling, and tissue and vascular developmental signaling pathways, were induced by hyperoxia and impacted by GSDMD-KO in both models. These data highlight the importance of GSDMD in the pathogenesis of BPD and ROP and suggest that targeting GSDMD may be beneficial in preventing and treating BPD and ROP in premature infants.
机译:支气管肺发育不良 (BPD) 和早产儿视网膜病变 (ROP) 是影响接受氧疗的极早产儿的最常见疾病。许多临床研究表明,BPD 与晚期 ROP 有关。然而,高氧、BPD 和 ROP 之间的机制联系仍有待探索。Gasdermin D (GSDMD) 是炎症小体诱导的焦亡和炎症的关键执行剂。抑制 GSDMD 已被证明可以减轻新生小鼠高氧诱导的 BPD 和脑损伤。本研究的目的是进一步明确GSDMD在小鼠模型中高氧诱导的BPD和ROP发病机制中的机制作用。在这里,我们表明全球 GSDMD 敲除 (GSDMD-KO) 通过减少巨噬细胞浸润、改善肺泡形成和血管发育以及减少细胞死亡来预防高氧诱导的 BPD。此外,GSDMD 缺乏通过减少血管闭塞和新生血管形成、改善多个视网膜组织层的变薄和减少小胶质细胞活化来预防高氧诱导的 ROP。肺和视网膜的RNA测序分析表明,在两种模型中,相似的基因,包括来自炎症、细胞死亡、组织重塑以及组织和血管发育信号通路的基因,都是由高氧诱导的,并受到GSDMD-KO的影响。这些数据强调了 GSDMD 在 BPD 和 ROP 发病机制中的重要性,并表明靶向 GSDMD 可能有助于预防和治疗早产儿 BPD 和 ROP。

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