High-Resolution Fluorespirometry to Assess Dynamic Changes in Mitochondrial Membrane Potential in Human Immune Cells.

IF 1.2 4区 综合性期刊 Q3 MULTIDISCIPLINARY SCIENCES
Ana P Valencia, Gavin Pharaoh, Arthur F Brandao, David J Marcinek
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Abstract

Peripheral mononuclear cells (PBMCs) exhibit robust changes in mitochondrial respiratory capacity in response to health and disease. While these changes do not always reflect what occurs in other tissues, such as skeletal muscle, these cells are an accessible and valuable source of viable mitochondria from human subjects. PBMCs are exposed to systemic signals that impact their bioenergetic state. Thus, expanding our tools to interrogate mitochondrial metabolism in this population will elucidate mechanisms related to disease progression. Functional assays of mitochondria are often limited to using respiratory outputs following maximal substrate, inhibitor, and uncoupler concentrations to determine the full range of respiratory capacity, which may not be achievable in vivo. The conversion of adenosine diphosphate (ADP) to adenosine triphosphate (ATP) by ATP-synthase results in a decrease in mitochondrial membrane potential (mMP) and an increase in oxygen consumption. To provide a more integrated analysis of mitochondrial dynamics, this article describes the use of high-resolution fluorespirometry to measure the simultaneous response of oxygen consumption and mitochondrial membrane potential (mMP) to physiologically relevant concentrations of ADP. This technique uses tetramethylrhodamine methylester (TMRM) to measure mMP polarization in response to ADP titrations following maximal hyperpolarization with complex I and II substrates. This technique can be used to quantify how changes in health status, such as aging and metabolic disease, affect the sensitivity of mitochondrial response to energy demand in PBMCs, T-cells, and monocytes from human subjects.

用高分辨率荧光测定法评估人类免疫细胞线粒体膜电位的动态变化
外周单核细胞(PBMC)的线粒体呼吸能力会随着健康和疾病的变化而发生显著变化。虽然这些变化并不总能反映骨骼肌等其他组织的变化,但这些细胞是人体中可获得的有活力线粒体的宝贵来源。PBMC 暴露于影响其生物能状态的系统信号。因此,扩大我们的工具范围,对这一群体的线粒体代谢进行检测,将有助于阐明与疾病进展相关的机制。线粒体的功能测试通常仅限于使用最大底物、抑制剂和解偶联剂浓度下的呼吸输出来确定全部呼吸能力,而这在体内可能无法实现。ATP 合成酶将二磷酸腺苷(ADP)转化为三磷酸腺苷(ATP)会导致线粒体膜电位(mMP)降低和耗氧量增加。为了对线粒体动力学进行更全面的分析,本文介绍了利用高分辨率荧光呼吸测定法同时测量耗氧量和线粒体膜电位(mMP)对生理相关浓度的 ADP 的响应。该技术使用四甲基罗丹明甲酯(TMRM)测量线粒体膜电位极化对 ADP 滴定的响应,ADP 滴定后线粒体膜电位随复合体 I 和 II 底物的最大超极化而极化。这项技术可用于量化健康状况的变化(如衰老和代谢性疾病)如何影响线粒体对人类受试者的 PBMC、T 细胞和单核细胞的能量需求反应的敏感性。
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来源期刊
Jove-Journal of Visualized Experiments
Jove-Journal of Visualized Experiments MULTIDISCIPLINARY SCIENCES-
CiteScore
2.10
自引率
0.00%
发文量
992
期刊介绍: JoVE, the Journal of Visualized Experiments, is the world''s first peer reviewed scientific video journal. Established in 2006, JoVE is devoted to publishing scientific research in a visual format to help researchers overcome two of the biggest challenges facing the scientific research community today; poor reproducibility and the time and labor intensive nature of learning new experimental techniques.
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