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I型细胞中的PHD2失活驱动HIF-2α依赖性多谱系增生和副神经节瘤样颈动脉体的形成。

PHD2 inactivation in Type I cells drives HIF-2α-dependent multilineage hyperplasia and the formation of paraganglioma-like carotid bodies.

作者信息

Fielding James W, Hodson Emma J, Cheng Xiaotong, Ferguson David J P, Eckardt Luise, Adam Julie, Lip Philomena, Maton-Howarth Matthew, Ratnayaka Indrika, Pugh Christopher W, Buckler Keith J, Ratcliffe Peter J, Bishop Tammie

机构信息

Target Discovery Institute, University of Oxford, Oxford, UK.

Ludwig Institute for Cancer Research, University of Oxford, Oxford, UK.

出版信息

J Physiol. 2018 Jun 19;596(18):4393-412. doi: 10.1113/JP275996.

Abstract

KEY POINTS

The carotid body is a peripheral arterial chemoreceptor that regulates ventilation in response to both acute and sustained hypoxia. Type I cells in this organ respond to low oxygen both acutely by depolarization and dense core vesicle secretion and, over the longer term, via cellular proliferation and enhanced ventilatory responses. Using lineage analysis, the present study shows that the Type I cell lineage itself proliferates and expands in response to sustained hypoxia. Inactivation of HIF-2α in Type I cells impairs the ventilatory, proliferative and cell intrinsic (dense core vesicle) responses to hypoxia. Inactivation of PHD2 in Type I cells induces multilineage hyperplasia and ultrastructural changes in dense core vesicles to form paraganglioma-like carotid bodies. These changes, similar to those observed in hypoxia, are dependent on HIF-2α. Taken together, these findings demonstrate a key role for the PHD2-HIF-2α couple in Type I cells with respect to the oxygen sensing functions of the carotid body.

ABSTRACT

The carotid body is a peripheral chemoreceptor that plays a central role in mammalian oxygen homeostasis. In response to sustained hypoxia, it manifests a rapid cellular proliferation and an associated increase in responsiveness to hypoxia. Understanding the cellular and molecular mechanisms underlying these processes is of interest both to specialized chemoreceptive functions of that organ and, potentially, to the general physiology and pathophysiology of cellular hypoxia. We have combined cell lineage tracing technology and conditionally inactivated alleles in recombinant mice to examine the role of components of the HIF hydroxylase pathway in specific cell types within the carotid body. We show that exposure to sustained hypoxia (10% oxygen) drives rapid expansion of the Type I, tyrosine hydroxylase expressing cell lineage, with little transdifferentiation to (or from) that lineage. Inactivation of a specific HIF isoform, HIF-2α, in the Type I cells was associated with a greatly reduced proliferation of Type I cells and hypoxic ventilatory responses, with ultrastructural evidence of an abnormality in the action of hypoxia on dense core secretory vesicles. We also show that inactivation of the principal HIF prolyl hydroxylase PHD2 within the Type I cell lineage is sufficient to cause multilineage expansion of the carotid body, with characteristics resembling paragangliomas. These morphological changes were dependent on the integrity of HIF-2α. These findings implicate specific components of the HIF hydroxylase pathway (PHD2 and HIF-2α) within Type I cells of the carotid body with respect to the oxygen sensing and adaptive functions of that organ.

摘要

要点

颈动脉体是一种外周动脉化学感受器,可响应急性和持续性缺氧来调节通气。该器官中的I型细胞对低氧的急性反应是通过去极化和密集核心囊泡分泌,长期反应则是通过细胞增殖和增强通气反应。本研究通过谱系分析表明,I型细胞谱系本身会因持续性缺氧而增殖和扩展。I型细胞中HIF-2α的失活会损害对缺氧的通气、增殖和细胞内在(密集核心囊泡)反应。I型细胞中PHD2的失活会诱导多谱系增生以及密集核心囊泡的超微结构变化,从而形成副神经节瘤样的颈动脉体。这些与缺氧时观察到的变化相似的改变依赖于HIF-2α。综上所述,这些发现证明了PHD2-HIF-2α对在I型细胞中对于颈动脉体的氧传感功能起着关键作用。

摘要

颈动脉体是一种外周化学感受器,在哺乳动物氧稳态中起核心作用。对持续性缺氧的反应是,它会出现快速的细胞增殖以及对缺氧反应性的相关增加。了解这些过程背后的细胞和分子机制,对于该器官的特殊化学感受功能以及细胞缺氧的一般生理学和病理生理学都具有重要意义。我们结合了细胞谱系追踪技术和重组小鼠中的条件性失活等位基因,以研究HIF羟化酶途径的成分在颈动脉体特定细胞类型中的作用。我们发现,暴露于持续性缺氧(10%氧气)会促使表达酪氨酸羟化酶的I型细胞谱系快速扩展,且该谱系几乎没有转分化现象。I型细胞中特定HIF亚型HIF-2α的失活与I型细胞增殖和缺氧通气反应的大幅降低相关,超微结构证据表明缺氧对密集核心分泌囊泡的作用存在异常。我们还表明,I型细胞谱系中主要的HIF脯氨酰羟化酶PHD2的失活足以导致颈动脉体多谱系扩展,其特征类似于副神经节瘤。这些形态学变化依赖于HIF-2α的完整性。这些发现表明,就该器官的氧传感和适应功能而言,颈动脉体I型细胞中的HIF羟化酶途径(PHD2和HIF-2α)的特定成分具有重要作用。

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