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先天性膈疝的硝芬/双二胺小鼠模型具有与人类先天性膈疝一致的肺动脉高压血管表型。

The nitrofen/bisdiamine murine model of congenital diaphragmatic hernia has a pulmonary hypertension vascular phenotype consistent with human CDH.

作者信息

Gonyea Cailin R, Shen Yuanjun, Nelson Katherine M, Bird Rylie N, Gilbert Rachel M, Olutoye Oluyinka O, Keswani Sundeep G, Gleghorn Jason P

机构信息

Department of Biomedical Engineering, University of Delaware, Newark, Delaware, United States.

Department of Pediatric Surgery, Baylor College of Medicine, Houston, Texas, United States.

出版信息

Am J Physiol Lung Cell Mol Physiol. 2025 Jul 1;329(1):L48-L60. doi: 10.1152/ajplung.00233.2024. Epub 2025 May 30.

Abstract

Congenital diaphragmatic hernia (CDH)-associated pulmonary hypertension (CDH-PH) has severe implications for the survival of patients with CDH; however, CDH-PH is often refractory to pulmonary vasodilators, rendering it difficult to treat. As such, models are necessary to study the etiology, mechanism, onset, and progression of pulmonary vascular remodeling in CDH. Despite several established murine models of CDH, no characterized CDH-PH or CDH-associated pulmonary vascular remodeling murine model exists. In this work, we assessed the nitrofen/bisdiamine (N/B) murine CDH model for pulmonary hypertension (PH) hallmarks to establish its usefulness as a model for studying mechanisms leading to CDH-PH. To do so, we evaluated key metrics of vascular PH at two different gestational time points and compared the results to sex- and age-matched human CDH tissue sections and results from a meta-analysis of published data of human CDH samples. We found that vessel rarefaction, smooth muscle hypertrophy, and adventitial extracellular matrix deposition were present in the N/B CDH murine model at in late gestation. In addition, this same vascular PH phenotype was present much earlier in development at , after normal diaphragmatic development and closure, but still within the pseudoglandular phase of lung development. Finally, comparisons with human CDH data confirm that the N/B CDH murine model recapitulates the pulmonary hypertension vascular phenotype seen in human CDH lung sections. Together, these data validate a mouse CDH-PH model with the ability to genetically perturb pathways that may exacerbate or improve CDH-PH outcomes, which could, in turn, lead to therapies or diagnostic markers of CDH-PH severity in utero. Pulmonary hypertension (PH) is a severe complication of congenital diaphragmatic hernia (CDH), yet mechanisms and potential interventions remain poorly understood, partly due to the lack of animal models. This study validated that the nitrofen/bisdiamine (N/B) CDH mouse model recapitulates a PH vascular phenotype, including vessel rarefaction, smooth muscle hypertrophy, and remodeling that is benchmarked to human CDH tissues. These findings suggest that this model is a robust in vivo tool for the mechanistic study of CDH-PH.

摘要

先天性膈疝(CDH)相关的肺动脉高压(CDH-PH)对CDH患者的生存具有严重影响;然而,CDH-PH通常对肺血管扩张剂难治,使其难以治疗。因此,需要模型来研究CDH中肺血管重塑的病因、机制、发病和进展。尽管已经建立了几种CDH的小鼠模型,但尚无特征明确的CDH-PH或CDH相关肺血管重塑小鼠模型。在这项工作中,我们评估了硝呋烯腙/双胺(N/B)小鼠CDH模型的肺动脉高压(PH)特征,以确定其作为研究导致CDH-PH机制的模型的有用性。为此,我们在两个不同的妊娠时间点评估了血管性PH的关键指标,并将结果与性别和年龄匹配的人类CDH组织切片以及对已发表的人类CDH样本数据的荟萃分析结果进行了比较。我们发现,在妊娠后期,N/B CDH小鼠模型中存在血管稀疏、平滑肌肥大和外膜细胞外基质沉积。此外,在正常膈肌发育和闭合后,但仍处于肺发育的假腺泡期,相同的血管性PH表型在发育早期就已出现。最后,与人类CDH数据的比较证实,N/B CDH小鼠模型概括了人类CDH肺切片中所见的肺动脉高压血管表型。总之,这些数据验证了一种小鼠CDH-PH模型,该模型能够在基因水平上干扰可能加重或改善CDH-PH结果的途径,这反过来可能导致子宫内CDH-PH严重程度的治疗方法或诊断标志物。肺动脉高压(PH)是先天性膈疝(CDH)的一种严重并发症,但其机制和潜在干预措施仍知之甚少,部分原因是缺乏动物模型。本研究验证了硝呋烯腙/双胺(N/B)CDH小鼠模型概括了一种PH血管表型,包括血管稀疏、平滑肌肥大和重塑,这些以人类CDH组织为基准。这些发现表明,该模型是用于CDH-PH机制研究的强大体内工具。

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