Mark P Murphy, Marina Zieger, Michael Henry, Paula Meleady, Christian Mueller, Noel G McElvaney, Emer P Reeves
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Using a <i>Serpina1a-e</i> knockout mouse model, previously shown to develop inflammation-mediated emphysema, we validated the involvement of PADs in airway disease. In line with emphysema development, intratracheal administration of lipopolysaccharide in combination with PADs provoked significant airspace enlargement (<i>P</i> < 0.001) and diminished lung function, including loss of lung tissue elastance (<i>P</i> = 0.0217) and increases in lung volumes (<i>P</i> = 0.0463). Intraperitoneal treatment of mice with the PAD inhibitor, BB-Cl-amidine, prevented PAD/LPS-mediated lung function decline and emphysema and reduced levels of citrullinated airway elastin (<i>P</i> = 0.0199). 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引用次数: 0
摘要
弹性蛋白是一种细胞外基质蛋白(ECM),它支撑着肺部的弹性,在慢性阻塞性肺病(COPD)和肺气肿患者中,结构性变化会减少弹性反冲力,导致肺功能丧失。我们最近证实,弹性蛋白是肽酰精氨酸脱氨酶(PAD)诱导的瓜氨酸化作用的靶标,从而导致这种 ECM 蛋白更易被蛋白水解。本研究旨在调查 PAD 活性在体内的影响,并进一步评估药物抑制 PAD 活性是否能预防肺气肿。我们利用先前被证明会发生炎症介导的肺气肿的 Serpina1a-e 基因敲除小鼠模型,验证了 PAD 在气道疾病中的参与作用。与肺气肿的发展相一致,气管内给予脂多糖和 PADs 会导致气道显著扩大(P < 0.001)和肺功能减退,包括肺组织弹性损失(P = 0.0217)和肺体积增大(P = 0.0463)。用 PAD 抑制剂 BB-Cl-amidine 对小鼠进行腹腔治疗可防止 PAD/LPS 介导的肺功能下降和肺气肿,并降低瓜氨酸化气道弹性蛋白的水平(P = 0.0199)。这些结果为 PAD 对肺功能下降的影响提供了证据,为未来开发基于 PAD 的治疗方法以保护慢性阻塞性肺病患者的肺功能提供了广阔的前景。
Citrullination, a novel posttranslational modification of elastin, is involved in COPD pathogenesis.
Elastin is an extracellular matrix protein (ECM) that supports elasticity of the lung, and in patients with chronic obstructive pulmonary disease (COPD) and emphysema, the structural changes that reduce the amount of elastic recoil, lead to loss of pulmonary function. We recently demonstrated that elastin is a target of peptidyl arginine deiminase (PAD) enzyme-induced citrullination, thereby leading to enhanced susceptibility of this ECM protein to proteolysis. This study aimed to investigate the impact of PAD activity in vivo and furthermore assessed whether pharmacological inhibition of PAD activity protects against pulmonary emphysema. Using a Serpina1a-e knockout mouse model, previously shown to develop inflammation-mediated emphysema, we validated the involvement of PADs in airway disease. In line with emphysema development, intratracheal administration of lipopolysaccharide in combination with PADs provoked significant airspace enlargement (P < 0.001) and diminished lung function, including loss of lung tissue elastance (P = 0.0217) and increases in lung volumes (P = 0.0463). Intraperitoneal treatment of mice with the PAD inhibitor, BB-Cl-amidine, prevented PAD/LPS-mediated lung function decline and emphysema and reduced levels of citrullinated airway elastin (P = 0.0199). These results provide evidence for the impact of PADs on lung function decline, indicating promising potential for the future development of PAD-based therapeutics for preserving lung function in patients with COPD.NEW & NOTEWORTHY This study provides evidence for the impact of peptidyl arginine deiminase (PAD) enzymes on lung function decline, indicating promising potential for the future development of PAD-based therapeutics for preserving lung function in patients with COPD.
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.