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A direct mechanism for sensing low oxygen levels by central neurons.

机译:由中枢神经元感测低氧水平的直接机制。

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摘要

The cascade of cellular events that is triggered by low O2 levels in the central nervous system depends on initial sensing mechanisms that can be crucial in determining the overall cell response, adaptation, or injury. In this report, we demonstrate that the activity of an identified K+ channel is regulated directly by environmental O2. Membrane ionic currents were recorded from neurons of the neocortex and the substantia nigra and studied by using whole-cell or excised membrane patches. O2 deprivation reversibly induced an initial transient increase in whole-cell outward currents, and this was followed by a pronounced decrease in these currents. In cell-free excised membrane patches, lack of O2 reversibly inhibited a class of K+ channels that are inhibited by ATP and activated by Ca2+. K+ channel inhibition depended on pO2 level, with a 50% inhibition at approximately 11 torr (1 torr = 6.9 kPa). By the use of specific agents that chelate metal in metal-containing O2-sensing centers, including heme, nonheme iron, copper, and flavin, we also demonstrated that iron-center but not copper-center blockers inhibited the channel in excised patches in a similar fashion as low pO2. These results strongly suggest that K+ channel activity is modulated during O2 deprivation by nonheme iron-containing proteins that are associated with channel molecules, thus providing evidence for a direct O2-sensing mechanism in neuronal membranes.
机译:由中枢神经系统中低氧水平触发的细胞事件的级联取决于初始传感机制,这对于确定总体细胞反应,适应性或损伤至关重要。在本报告中,我们证明了已识别的K +通道的活性直接受环境O2的调节。从新皮层和黑质的神经元记录膜离子电流,并通过使用全细胞或切除的膜片进行研究。 O2剥夺可逆地引起全细胞外向电流的初始瞬时增加,然后是这些电流的明显减少。在无细胞的切除的膜片中,O2的缺乏可逆地抑制了一类被ATP抑制并被Ca2 +激活的K +通道。 K +通道抑制取决于pO2水平,约11托(1托= 6.9 kPa)时有50%的抑制。通过使用在含金属的O2感测中心(包括血红素,非血红素铁,铜和黄素)中螯合金属的特定试剂,我们还证明了铁中心而不是铜中心的阻滞剂抑制了被切除的斑块中的通道。与低pO2类似。这些结果强烈表明,在O2剥夺过程中,K +通道活性受到与通道分子相关的非血红素铁蛋白的调控,从而为神经元膜中直接的O2感应机制提供了证据。

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  • 作者

    Jiang, C; Haddad, G G;

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  • 年度 1994
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  • 原文格式 PDF
  • 正文语种 en
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