首页> 美国卫生研究院文献>American Journal of Physiology - Lung Cellular and Molecular Physiology >Alveolar type II cells maintain bioenergetic homeostasis in hypoxia through metabolic and molecular adaptation
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Alveolar type II cells maintain bioenergetic homeostasis in hypoxia through metabolic and molecular adaptation

机译:肺泡II型细胞通过代谢和分子适应来维持低氧状态下的生物能稳态。

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摘要

Although many lung diseases are associated with hypoxia, alveolar type II epithelial (ATII) cell impairment, and pulmonary surfactant dysfunction, the effects of O2 limitation on metabolic pathways necessary to maintain cellular energy in ATII cells have not been studied extensively. This report presents results of targeted assays aimed at identifying specific metabolic processes that contribute to energy homeostasis using primary ATII cells and a model ATII cell line, mouse lung epithelial 15 (MLE-15), cultured in normoxic and hypoxic conditions. MLEs cultured in normoxia demonstrated a robust O2 consumption rate (OCR) coupled to ATP generation and limited extracellular lactate production, indicating reliance on oxidative phosphorylation for ATP production. Pharmacological uncoupling of respiration increased OCR in normoxic cultures to 175% of basal levels, indicating significant spare respiratory capacity. However, when exposed to hypoxia for 20 h, basal O2 consumption fell to 60% of normoxic rates, and cells maintained only ∼50% of normoxic spare respiratory capacity, indicating suppression of mitochondrial function, although intracellular ATP levels remained at near normoxic levels. Moreover, while hypoxic exposure stimulated glycogen synthesis and storage in MLE-15, glycolytic rate (as measured by lactate generation) was not significantly increased in the cells, despite enhanced expression of several enzymes related to glycolysis. These results were largely recapitulated in murine primary ATII, demonstrating MLE-15 suitability for modeling ATII metabolism. The ability of ATII cells to maintain ATP levels in hypoxia without enhancing glycolysis suggests that these cells are exceptionally efficient at conserving ATP to maintain bioenergetic homeostasis under O2 limitation.
机译:尽管许多肺部疾病与缺氧,II型肺泡上皮细胞(ATII)损伤和肺表面活性剂功能障碍有关,但O2限制代谢对维持ATII细胞中细胞能量所必需的代谢途径的影响尚未得到广泛研究。本报告介绍了针对性测定的结果,旨在鉴定使用正常氧和低氧条件下培养的原代ATII细胞和ATII模型细胞系,小鼠肺上皮15(MLE-15)促进能量稳态的特定代谢过程。在常氧条件下培养的MLEs表现出强大的O2消耗率(OCR),与ATP的产生和有限的细胞外乳酸的产生相关,表明对ATP的产生依赖于氧化磷酸化。呼吸的药理学解偶联使常氧培养物中的OCR升高至基础水平的175%,表明存在大量的备用呼吸能力。然而,当暴露于缺氧状态下20小时时,基础O2消耗降至正常氧水平的60%,而细胞仅维持正常氧空余呼吸能力的约50%,表明线粒体功能受到抑制,尽管细胞内ATP的水平仍保持在正常氧水平附近。此外,尽管低氧暴露刺激了MLE-15中糖原的合成和储存,但尽管与糖酵解相关的几种酶的表达增强,但糖酵解速率(以乳酸生成量衡量)并未显着提高。这些结果在小鼠原发性ATII中得到了很大的概括,证明了MLE-15适用于模拟ATII代谢。 ATII细胞在缺氧状态下保持ATP水平而不增强糖酵解的能力表明,这些细胞在保护ATP从而在O2限制下保持生物能稳态方面异常有效。

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