Chronic intermittent hypoxia alters the dendritic mitochondrial structure and activity in the pre‐Bötzinger complex of rats

线粒体 生物 突触后电位 缺氧(环境) 细胞生物学 树突棘 生物能学 间歇性缺氧 细胞色素c氧化酶 内科学 内分泌学 受体 化学 阻塞性睡眠呼吸暂停 生物化学 医学 氧气 有机化学 海马结构
作者
Jun‐Jun Kang,Man‐Lung Fung,Kun Zhang,Chun Sing Lam,Sheng‐Xi Wu,Xiaofeng Huang,Shou Jing Yang,Margaret T.T. Wong‐Riley,Yingying Liu
出处
期刊:The FASEB Journal [Wiley]
卷期号:34 (11): 14588-14601 被引量:9
标识
DOI:10.1096/fj.201902141r
摘要

Mitochondrial bioenergetics is dynamically coupled with neuronal activities, which are altered by hypoxia-induced respiratory neuroplasticity. Here we report structural features of postsynaptic mitochondria in the pre-Bötzinger complex (pre-BötC) of rats treated with chronic intermittent hypoxia (CIH) simulating a severe condition of obstructive sleep apnea. The subcellular changes in dendritic mitochondria and histochemistry of cytochrome c oxidase (CO) activity were examined in pre-BötC neurons localized by immunoreactivity of neurokinin 1 receptors. Assays of mitochondrial electron transport chain (ETC) complex I, IV, V activities, and membrane potential were performed in the ventrolateral medulla containing the pre-BötC region. We found significant decreases in the mean length and area of dendritic mitochondria in the pre-BötC of CIH rats, when compared to the normoxic control and hypoxic group with daily acute intermittent hypoxia (dAIH) that evokes robust synaptic plasticity. Notably, these morphological alterations were mainly observed in the mitochondria in close proximity to the synapses. In addition, the proportion of mitochondria presented with enlarged compartments and filamentous cytoskeletal elements in the CIH group was less than the control and dAIH groups. Intriguingly, these distinct characteristics of structural adaptability were observed in the mitochondria within spatially restricted dendritic spines. Furthermore, the proportion of moderately to darkly CO-reactive mitochondria was reduced in the CIH group, indicating reduced mitochondrial activity. Consistently, mitochondrial ETC enzyme activities and membrane potential were lowered in the CIH group. These findings suggest that hypoxia-induced respiratory plasticity was characterized by spatially confined mitochondrial alterations within postsynaptic spines in the pre-BötC neurons. In contrast to the robust plasticity evoked by dAIH preconditioning, a severe CIH challenge may weaken the local mitochondrial bioenergetics that the fuel postsynaptic activities of the respiratory motor drive.

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