首页> 美国卫生研究院文献>The Journal of Neuroscience >Presynaptic Mitochondria in Functionally Different Motor Neurons Exhibit Similar Affinities for Ca2+ But Exert Little Influence as Ca2+ Buffers at Nerve Firing Rates In Situ
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Presynaptic Mitochondria in Functionally Different Motor Neurons Exhibit Similar Affinities for Ca2+ But Exert Little Influence as Ca2+ Buffers at Nerve Firing Rates In Situ

机译:功能不同的运动神经元中的突触前线粒体表现出对Ca2 +的相似亲和力但作为Ca2 +缓冲剂以原位神经发射速率发挥几乎没有影响

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摘要

Mitochondria accumulate within nerve terminals and support synaptic function, most notably through ATP production. They can also sequester Ca2+ during nerve stimulation, but it is unknown whether this limits presynaptic Ca2+ levels at physiological nerve firing rates. Similarly, it is unclear whether mitochondrial Ca2+ sequestration differs between functionally different nerve terminals. We addressed these questions using a combination of synthetic and genetically encoded Ca2+ indicators to examine cytosolic and mitochondrial Ca2+ levels in presynaptic terminals of tonic (MN13-Ib) and phasic (MNSNb/d-Is) motor neurons in Drosophila, which, as we determined, fire during fictive locomotion at ∼42 Hz and ∼8 Hz, respectively. Mitochondrial Ca2+ sequestration starts in both terminals at ∼250 nm, exhibits a similar Ca2+-uptake affinity (∼410 nm), and does not require Ca2+ release from the endoplasmic reticulum. Nonetheless, mitochondrial Ca2+ uptake in type Is terminals is more responsive to low-frequency nerve stimulation and this is due to higher cytosolic Ca2+ levels. Since type Ib terminals have a higher mitochondrial density than Is terminals, it seemed possible that greater mitochondrial Ca2+ sequestration may be responsible for the lower cytosolic Ca2+ levels in Ib terminals. However, genetic and pharmacological manipulations of mitochondrial Ca2+ uptake did not significantly alter nerve-stimulated elevations in cytosolic Ca2+ levels in either terminal type within physiologically relevant rates of stimulation. Our findings indicate that presynaptic mitochondria have a similar affinity for Ca2+ in functionally different nerve terminals, but do not limit cytosolic Ca2+ levels within the range of motor neuron firing rates in situ.
机译:线粒体聚集在神经末梢并支持突触功能,最明显的是通过ATP产生。他们还可以在神经刺激过程中隔离Ca 2 + ,但是尚不清楚这是否会限制生理神经激发速率下突触前Ca 2 + 的水平。同样,不清楚功能不同的神经末梢线粒体Ca 2 + 的隔离是否不同。我们通过使用合成的和遗传编码的Ca 2 + 指标的组合解决了这些问题,以检查突触前突触末梢(MN13-Ib)和细胞内的胞质和线粒体Ca 2 + 水平果蝇的阶段性(MNSNb / d-Is)运动神经元,如我们所确定的,在虚拟运动期间分别以约42 Hz和约8 Hz发射。线粒体Ca 2 + 隔离在两个末端的〜250 nm处开始,表现出相似的Ca 2 + 吸收亲和力(〜410 nm),并且不需要Ca 2 + 。尽管如此,Is末端的线粒体Ca 2 + 摄取对低频神经刺激的反应更强,这是由于较高的胞质Ca 2 + 水平。由于Ib型末端的线粒体密度高于Is末端,因此似乎更多的线粒体Ca 2 + 螯合可能是导致Ib中较低的胞质Ca 2 + 的原因终端。然而,线粒体Ca 2 + 摄取的遗传和药理学操作并未在生理学上相关的刺激速率内显着改变任一末端类型中神经刺激的胞质Ca 2 + 水平的升高。 。我们的研究结果表明,突触前线粒体在功能不同的神经末梢中对Ca 2 + 具有相似的亲和力,但不限制运动神经元放电范围内的胞质Ca 2 + 水平原位费率。

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