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正电子发射断层扫描研究帕金森病的脑代谢。

PET studies of cerebral metabolism in Parkinson disease.

机构信息

Department of Neurology, School of Medicine, University of North Carolina at Chapel Hill, 170 Manning Drive, Rm 2131, CB #7025, Chapel Hill, NC 27599-7025, USA.

出版信息

J Bioenerg Biomembr. 2009 Dec;41(6):505-8. doi: 10.1007/s10863-009-9251-5.

Abstract

A defect in cerebral energy production due to dysfunction of the mitochondrial electron transport system (ETS) has been postulated to be important in the pathogenesis of Parkinson Disease (PD). However, direct in vivo measurements of cerebral mitochondrial function are scant and inconsistent. We directly investigated cerebral mitochondrial function in vivo with positron emission tomography (PET) in 12 patients with early, never-medicated PD and 12 age-matched normal controls by combined measurements of the cerebral metabolic rate of oxygen (CMRO(2)) and the cerebral metabolic rate of glucose (CMRglc). Instead of the decrease in CMRO(2) and CMRO(2)/CMRglc molar ratio characteristic of defects in mitochondrial oxidative metabolism, there was a statistically significant 24% general increase in CMRO(2) and no change in CMRO(2)/CMRglc. Since PD symptoms were already manifest, reduced oxidative activity of the mitochondrial ETS cannot be a primary mechanism of neuronal death in early PD. This increase in metabolism could reflect the increased energy requirements of an injured brain or an uncoupling of ATP production from oxidation in the terminal stage of oxidative phosphorylation. Which is the case in early PD and whether these metabolic abnormalities are important in the pathogenesis of PD will require further study.

摘要

由于线粒体电子传递系统(ETS)功能障碍导致的大脑能量产生缺陷,被认为在帕金森病(PD)的发病机制中很重要。然而,大脑线粒体功能的直接体内测量非常少且不一致。我们通过正电子发射断层扫描(PET)直接对 12 名早期未经药物治疗的 PD 患者和 12 名年龄匹配的正常对照者进行了体内大脑线粒体功能的研究,同时测量了大脑氧代谢率(CMRO(2)) 和大脑葡萄糖代谢率(CMRglc)。与线粒体氧化代谢缺陷特征性的 CMRO(2)下降和 CMRO(2)/CMRglc 摩尔比值下降不同,CMRO(2)出现了统计学上显著的 24%的普遍增加,而 CMRO(2)/CMRglc 没有变化。由于 PD 症状已经显现,因此线粒体 ETS 的氧化活性降低不可能是早期 PD 中神经元死亡的主要机制。这种代谢的增加可能反映了受损大脑的能量需求增加,或者在氧化磷酸化的终末阶段,ATP 产生与氧化解偶联。在早期 PD 中哪种情况更为常见,以及这些代谢异常是否对 PD 的发病机制很重要,还需要进一步研究。

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