Fried Nathan T, Moffat Cynthia, Seifert Erin L, Oshinsky Michael L
Thomas Jefferson University, Department of Neurology, Philadelphia, Pennsylvania;
Thomas Jefferson University, Department of Pathology, Anatomy and Cell Biology, Philadelphia, Pennsylvania.
Am J Physiol Cell Physiol. 2014 Dec 1;307(11):C1017-30. doi: 10.1152/ajpcell.00332.2013. Epub 2014 Sep 24.
Mitochondrial dysfunction has been implicated in many neurological disorders that only develop or are much more severe in adults, yet no methodology exists that allows for medium-throughput functional mitochondrial analysis of brain sections from adult animals. We developed a technique for quantifying mitochondrial respiration in acutely isolated adult rat brain sections with the Seahorse XF Analyzer. Evaluating a range of conditions made quantifying mitochondrial function from acutely derived adult brain sections from the cortex, cerebellum, and trigeminal nucleus caudalis possible. Optimization of this technique demonstrated that the ideal section size was 1 mm wide. We found that sectioning brains at physiological temperatures was necessary for consistent metabolic analysis of trigeminal nucleus caudalis sections. Oxygen consumption in these sections was highly coupled to ATP synthesis, had robust spare respiratory capacities, and had limited nonmitochondrial respiration, all indicative of healthy tissue. We demonstrate the effectiveness of this technique by identifying a decreased spare respiratory capacity in the trigeminal nucleus caudalis of a rat model of chronic migraine, a neurological disorder that has been associated with mitochondrial dysfunction. This technique allows for 24 acutely isolated sections from multiple brain regions of a single adult rat to be analyzed simultaneously with four sequential drug treatments, greatly advancing the ability to study mitochondrial physiology in adult neurological disorders.
线粒体功能障碍与许多仅在成年期出现或在成年期更为严重的神经疾病有关,但目前尚无方法能够对成年动物脑切片进行中通量的线粒体功能分析。我们开发了一种利用海马XF分析仪对急性分离的成年大鼠脑切片中线粒体呼吸进行定量的技术。评估一系列条件后,能够对来自皮质、小脑和三叉神经尾侧核的急性分离的成年脑切片的线粒体功能进行定量。该技术的优化表明,理想的切片宽度为1毫米。我们发现,在生理温度下对大脑进行切片对于三叉神经尾侧核切片的一致代谢分析是必要的。这些切片中的氧气消耗与ATP合成高度偶联,具有强大的备用呼吸能力,且非线粒体呼吸有限,所有这些都表明组织健康。我们通过鉴定慢性偏头痛大鼠模型的三叉神经尾侧核中备用呼吸能力的降低,证明了该技术的有效性,慢性偏头痛是一种与线粒体功能障碍相关的神经疾病。该技术允许对来自一只成年大鼠多个脑区的24个急性分离切片同时进行四种连续药物处理的分析,极大地提高了研究成年神经疾病中线粒体生理学的能力。