Adrenomedullin Overexpression Protects Mice from Experimental Bronchopulmonary Dysplasia and Associated Pulmonary Hypertension.

IF 3.5 2区 医学 Q1 PHYSIOLOGY
Shyam Thapa, Poonam Sarkar, M Waleed Gaber, Roberto Barrios, Madhulata Chauhan, Chandrasekhar Yallampalli, Binoy Shivanna
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Abstract

Bronchopulmonary dysplasia (BPD) associated pulmonary hypertension (PH) or BPD-PH is a lung disease of infants with significant morbidity. Adrenomedullin (Adm) is an angiogenic peptide that signals through calcitonin receptor-like receptor (Calcrl) and receptor activity modifying protein 2 (RAMP2). Adm deficiency potentiates hyperoxia-induced experimental BPD-PH in mice; however, whether Adm overexpression can mitigate this lung disease is unclear. Thus, we tested the hypothesis that Adm overexpression attenuates hyperoxia (HO)-induced murine experimental BPD-PH by using a novel transgenic mouse that overexpresses Adm globally (Admhi/hi mice). One-day-old Admhi/hi mice or their wild-type littermates (Adm+/+ mice) were exposed to HO (FiO2 70%) for 14 d and allowed to recover in normoxia (NO, FiO2 21%) for an additional 14 d. Controls were maintained in NO for 28 d. On postnatal day (P) 14, we harvested the lungs to determine the extent of Adm expression and apoptosis. On P28, we quantified alveolarization, lung vascularization, and PH. HO-exposed Adm+/+ mice demonstrated increased lung apoptosis, decreased alveolarization and lung vascularization, and indices of PH, indicating that neonatal HO exposure causes BPD-PH. However, Adm overexpression attenuated experimental BPD-PH, as evident by the decreased extent of hyperoxia-induced lung apoptosis and inflammation, alveolar and vascular simplification, pulmonary vascular remodeling, and PH in Admhi/hi mice than in Adm+/+ mice. Collectively, our results demonstrate that Adm overexpression attenuates HO-induced murine experimental BPD-PH, emphasizing the therapeutic potential of Adm for BPD-PH in preterm infants.

肾上腺髓质素过表达保护小鼠实验性支气管肺发育不良及相关肺动脉高压。
支气管肺发育不良(BPD)相关肺动脉高压(PH)或BPD-PH是一种发病率很高的婴儿肺部疾病。肾上腺髓质素(Adm)是一种血管生成肽,通过降钙素受体样受体(Calcrl)和受体活性修饰蛋白2 (RAMP2)发出信号。Adm缺乏增强小鼠高氧诱导的实验性BPD-PH;然而,Adm过表达是否能减轻这种肺部疾病尚不清楚。因此,我们通过一种新型的转基因小鼠(Admhi/hi小鼠)来验证Adm过表达减轻高氧(HO)诱导的小鼠实验性BPD-PH的假设。1日龄的Adm /hi小鼠或其野生型幼崽(Adm+/+小鼠)暴露于HO (FiO2 70%)中14天,并在正常缺氧(NO, FiO2 21%)中再恢复14天。对照组在NO中维持28天。在出生后第14天(P),我们采集肺部以确定Adm表达和凋亡的程度。在P28时,我们量化了肺泡化、肺血管化和PH。HO暴露的Adm+/+小鼠肺凋亡增加,肺泡化和肺血管化减少,PH指数下降,表明新生儿HO暴露导致BPD-PH。然而,Adm过表达降低了实验BPD-PH,高氧诱导的肺细胞凋亡和炎症、肺泡和血管简化、肺血管重塑和PH在Admhi/hi小鼠中明显低于Adm+/+小鼠。总之,我们的研究结果表明,Adm过表达可减弱ho诱导的小鼠实验性BPD-PH,强调了Adm对早产儿BPD-PH的治疗潜力。
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来源期刊
CiteScore
9.20
自引率
4.10%
发文量
146
审稿时长
2 months
期刊介绍: The American Journal of Physiology-Lung Cellular and Molecular Physiology publishes original research covering the broad scope of molecular, cellular, and integrative aspects of normal and abnormal function of cells and components of the respiratory system. Areas of interest include conducting airways, pulmonary circulation, lung endothelial and epithelial cells, the pleura, neuroendocrine and immunologic cells in the lung, neural cells involved in control of breathing, and cells of the diaphragm and thoracic muscles. The processes to be covered in the Journal include gas-exchange, metabolic control at the cellular level, intracellular signaling, gene expression, genomics, macromolecules and their turnover, cell-cell and cell-matrix interactions, cell motility, secretory mechanisms, membrane function, surfactant, matrix components, mucus and lining materials, lung defenses, macrophage function, transport of salt, water and protein, development and differentiation of the respiratory system, and response to the environment.
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