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Direct Real-Time Measurement of Intra-Oocyte Nitric Oxide Concentration In Vivo

机译:体内卵母细胞内一氧化氮浓度的直接实时测量

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摘要

Nitric oxide (NO) is reported to play significant a role in oocyte activation and maturation, implantation, and early embryonic development. Previously we have shown that NO forms an important component of the oocyte microenvironment, and functions effectively to delay oocyte aging. Thus, precise information about intra-oocyte NO concentrations [NO] will result in designing more accurate treatment plans in assisted reproduction. In this work, the direct, real-time and quantitative intra-oocyte [NO] was measured utilizing an L-shaped amperometric integrated NO-selective electrode. This method not only provides an elegant and convenient approach to real-time the measurement of NO in physiological environments, but also mimics the loss of NO caused by rapid NO diffusion combined with its reactivity in the biological milieu. This experiment suggests that the NO levels of oocytes obtained from young animals are significantly higher than those of oocytes obtained from old animals. Additionally the NO levels stay constant during the measurements; however, the intra-oocyte [NO] is reduced significantly (70–75% reduction) in response to L-NAME incubation, suggesting that NO measurements are truly NOS based rather than caused by an unknown interfering substance in our system. We believe this first demonstration of the direct quantitative measurement of [NO] in situ in an intact cellular complex should be useful in tracking real-time and rapid changes at nanomolar levels. Moreover, this finding confirms and extends our previous work showing that supplementation with NO delays the oocyte aging process.
机译:一氧化氮(NO)据报道在卵母细胞活化和成熟,着床和早期胚胎发育中起着重要作用。以前我们已经表明,NO形成卵母细胞微环境的重要组成部分,并有效地延迟了卵母细胞的衰老。因此,关于卵母细胞内NO浓度[NO]的准确信息将导致设计出更精确的辅助生殖治疗方案。在这项工作中,直接,实时和定量的卵母细胞内[NO]是使用L形安培积分NO选择电极测量的。该方法不仅为生理环境中的NO实时测量提供了一种简便的简便方法,而且还模仿了由于NO快速扩散及其在生物环境中的反应性而导致的NO损失。该实验表明,从年幼动物获得的卵母细胞的NO水平明显高于从年长动物获得的卵母细胞的NO水平。另外,在测量过程中,NO水平保持恒定。然而,响应于L-NAME孵育,卵母细胞内的[NO]明显减少(减少了70-75%),这表明NO的测量值是真正基于NOS的,而不是由我们系统中的未知干扰物质引起的。我们相信,完整细胞复合物中原位[NO]的直接定量测量的首次演示应可用于跟踪纳摩尔水平的实时和快速变化。此外,这一发现证实并扩展了我们以前的工作,表明添加NO可以延缓卵母细胞的衰老过程。

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