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Sensory neurons derived from diabetic rats exhibit deficits in functional glycolysis and ATP that are ameliorated by IGF-1

机译:衍生自糖尿病大鼠的感觉神经元表现出通过IGF-1改善的功能性糖酵解和ATP的缺陷

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Objective The distal dying-back of the longest nerve fibres is a hallmark of diabetic neuropathy, and impaired provision of energy in the form of adenosine triphosphate (ATP) may contribute to this neurodegenerative process. We hypothesised that energy supplementation via glycolysis and/or mitochondrial oxidative phosphorylation is compromised in cultured dorsal root ganglion (DRG) sensory neurons from diabetic rodents, thus contributing to axonal degeneration. Functional analysis of glycolysis and mitochondrial respiration and real-time measurement of ATP levels in live cells were our specific means to test this hypothesis. Methods DRG neuron cultures from age-matched control or streptozotocin (STZ)-induced type 1 diabetic rats were used for in?vitro studies. Three plasmids containing ATP biosensors of varying affinities were transfected into neurons to study endogenous ATP levels in real time. The Seahorse XF analyser was used for glycolysis and mitochondrial respiration measurements. Results Fluorescence resonance energy transfer (FRET) efficiency (YFP/CFP ratio) of the ATP biosensors AT1.03 (low affinity) and AT1.03 YEMK (medium affinity) were significantly higher than that measured using the ATP-insensitive construct AT1.03 R122/6K in both cell bodies and neurites of DRG neurons (p??0.0001). The ATP level was homogenous along the axons but higher in cell bodies in cultured DRG neurons from both control and diabetic rats. Treatment with oligomycin (an ATP synthase inhibitor in mitochondria) decreased the ATP levels in cultured DRG neurons. Likewise, blockade of glycolysis using 2-deoxy- d -glucose (2-DG: a glucose analogue) reduced ATP levels (p??0.001). Cultured DRG neurons derived from diabetic rats showed a diminishment of ATP levels (p??0.01), glycolytic capacity, glycolytic reserve and non-glycolytic acidification. Application of insulin-like growth factor-1 (IGF-1) significantly elevated all the above parameters in DRG neurons from diabetic rats. Oligomycin pre-treatment of DRG neurons, to block oxidative phosphorylation, depleted the glycolytic reserve and lowered basal respiration in sensory neurons derived from control and diabetic rats. Depletion was much higher in sensory neurons from diabetic rats compared to control rats. In addition, an acute increase in glucose concentration, in the presence or absence of oligomycin, elevated parameters of glycolysis by 1.5- to 2-fold while having no impact on mitochondrial respiration. Conclusion We provide the first functional evidence for decreased glycolytic capacity in DRG neurons derived from type 1 diabetic rats. IGF-1 protected against the loss of ATP supplies in DRG cell bodies and axons in neurons derived from diabetic rats by augmenting various parameters of glycolysis and mitochondrial respiration.
机译:目的最长神经纤维的远端末端是糖尿病神经病变的标志,并且在三磷酸三磷酸腺苷(ATP)的形式中的能量损害可能有助于这种神经变性过程。我们假设通过糖酵解和/或线粒体氧化磷酸化的能量补充在糖尿病啮齿动物的培养的背根神经节(DRG)感觉神经元中受到损害,从而有助于轴突变性。糖醇分析的功能分析和直播细胞中ATP水平的实时测量是我们测试这一假设的具体方法。方法使用年龄匹配对照或链脲佐菌素(STZ)诱导的1型糖尿病大鼠的DRG神经元培养物用于体外研究。将含有不同亲和力的ATP生物传感器的三种质粒转染到神经元中,实时研究内源性ATP水平。 Seahorse XF分析仪用于糖酵解和线粒体呼吸测量。结果ATP生物传感器AT1.03(低亲和力)和AT1.03 YEMK(中等亲和力)的荧光共振能量转移(FFP / CFP比率)显着高于使用ATP不敏感构建体在1.03在DRG神经元的细胞体和神经脉中的R122 / 6K(p≤0.0001)。 ATP水平沿着轴突均匀,但培养的DRG神经元中的细胞体较高,来自对照和糖尿病大鼠。用低霉素治疗(线粒体中的ATP合酶抑制剂)降低了培养的DRG神经元的ATP水平。同样地,使用2-脱氧-d-glucose(2-Dg:葡萄糖类似物)降低ATP水平(P≤≤0.001)。衍生自糖尿病大鼠的培养的DRG神经元显示ATP水平(p≤≤0.01),糖蛋白能力,糖浆储备和非糖酵解酸化的递减。胰岛素样生长因子-1(IGF-1)的施用显着升高了DRG神经元的所有上述参数患有糖尿病大鼠。寡霉素预处理DRG神经元,阻断氧化磷酸化,耗尽甘醇储备并降低了来自对照和糖尿病大鼠的感觉神经元中的基础呼吸。与对照大鼠相比,来自糖尿病大鼠的感觉神经元在感觉神经元中的枯竭高得多。另外,葡萄糖浓度的急性增加,在寡霉素的存在或不存在下,糖酵解的参数升高1.5至2倍,同时对线粒体呼吸没有影响。结论我们提供了衍生自1型糖尿病大鼠的DRG神经元的糖酵解产能下降的第一功能证据。 IGF-1通过增加糖尿病大鼠衍生自糖酵解和线粒体呼吸的各种参数,免受DRG细胞体和源自糖尿病大鼠的神经元中的ATP供应的丧失。

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