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高氧诱导纤维化新生兔模型中表面活性蛋白基因表达的变化

Changes in surfactant protein gene expression in a neonatal rabbit model of hyperoxia-induced fibrosis.

作者信息

D'Angio C T, Finkelstein J N, Lomonaco M B, Paxhia A, Wright S A, Baggs R B, Notter R H, Ryan R M

机构信息

Department of Pediatrics (Neonatology), Strong Children's Research Center, University of Rochester, New York 14642, USA.

出版信息

Am J Physiol. 1997 Apr;272(4 Pt 1):L720-30. doi: 10.1152/ajplung.1997.272.4.L720.

Abstract

Lung injuries, including bronchopulmonary dysplasia, alter the surfactant system. We developed a newborn rabbit model of acute, followed by chronic, hyperoxic injury to study surfactant protein (SP) gene expression. Initial litters were exposed to >95% O2 until 50% died (LD50; 7-11 days old). Subsequent litters were exposed to >95% O2 for 8 days, followed by 60% O2 until 22-36 days. Controls were exposed to room air. LD50 animals displayed acute pulmonary inflammation, edema, protein leak, and surfactant dysfunction. These changes resolved, and fibrosis developed by 22 days. Whole lung SP-A mRNA expression (measured by membrane hybridization) was twice control levels at 4 days of >95% O2, with specific elevations in terminal bronchioles and type II cells at 4 days and the LD50 by in situ hybridization. Whole lung SP-B and SP-C mRNA were unchanged from control throughout exposure. However, in situ hybridization showed elevations in SP-B and SP-C mRNA in type II cells in inflamed areas at the LD50. SP mRNA alterations resolved by 22-36 days. The surfactant system recovers from acute hyperoxic injury, despite continued 60% O2 exposure.

摘要

包括支气管肺发育不良在内的肺部损伤会改变表面活性剂系统。我们建立了一种新生兔急性继以慢性高氧损伤模型,以研究表面活性剂蛋白(SP)基因表达。最初的几窝幼兔暴露于>95%的氧气中,直至50%死亡(半数致死剂量;7 - 11日龄)。随后的几窝幼兔暴露于>95%的氧气中8天,然后暴露于60%的氧气中直至22 - 36天。对照组暴露于室内空气中。半数致死剂量组动物表现出急性肺部炎症、水肿、蛋白质渗漏和表面活性剂功能障碍。这些变化得到缓解,到22天时出现纤维化。通过膜杂交测量,在>95%氧气环境下4天时,全肺SP - A mRNA表达是对照组水平的两倍,通过原位杂交发现在4天以及半数致死剂量时终末细支气管和II型细胞中有特异性升高。在整个暴露过程中,全肺SP - B和SP - C mRNA与对照组相比没有变化。然而,原位杂交显示在半数致死剂量时,炎症区域的II型细胞中SP - B和SP - C mRNA升高。SP mRNA的改变在22 - 36天时得到缓解。尽管持续暴露于60%的氧气中,表面活性剂系统仍能从急性高氧损伤中恢复。

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