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缺氧对正常人红细胞中主动和被动Ca2+转运及细胞质Ca2+缓冲的影响。

Effects of deoxygenation on active and passive Ca2+ transport and cytoplasmic Ca2+ buffering in normal human red cells.

作者信息

Tiffert T, Etzion Z, Bookchin R M, Lew V L

机构信息

Physiological Laboratory, University of Cambridge.

出版信息

J Physiol. 1993 May;464:529-44. doi: 10.1113/jphysiol.1993.sp019649.

Abstract
  1. The effects of deoxygenation on cytoplasmic Ca2+ buffering, saturated Ca2+ extrusion rate through the Ca2+ pump (Vmax), passive Ca2+ influx and physiological [Ca2+]i level were investigated in human red cells to assess whether or not their Ca2+ metabolism might be altered by deoxygenation in capillaries and venous circulation. 2. The study was performed in fresh human red cells maintained in a tonometer either fully oxygenated or deoxygenated. Cytoplasmic Ca2+ buffering was estimated from the equilibrium distribution of 45Ca2+ induced by the divalent cation ionophore A23187 and the Vmax of the Ca2+ pump was measured either by the Co(2+)-exposure method or following ionophore wash-out. The passive Ca2+ influx and physiological [Ca2+]i were determined in cells preloaded with the Ca2+ chelator benz-2 and resuspended in autologous plasma. 3. Deoxygenation increased the fraction of ionized Ca2+ in cell water by 34-74% and reduced the Vmax of the Ca2+ pump by 18-32%. 4. To elucidate whether or not these effects were secondary to deoxygenation-induced pH shifts, the effects of deoxygenation on cell and medium pH, and of pH on cytoplasmic Ca2+ binding and Ca2+ pump Vmax in oxygenated cells were examined in detail. 5. Deoxygenation generated large alkaline pH shifts that could be explained if the apparent isoelectric point (pI) of haemoglobin increased by 0.2-0.4 pH units in intact cells, consistently higher than the value of 0.15 reported for pure haemoglobin solutions. 6. In oxygenated cells, the fraction of ionized cell calcium, alpha, was little affected by pH within the 7.0-7.7 range. Ca2+ pump Vmax was maximal at a medium pH of about 7.55. Comparison between pH effects elicited by HCl-NaOH additions and by replacing Cl- with gluconate suggested that Vmax was inhibited by both internal acidification and external alkalinization. Since deoxygenation alkalinized cells and medium within a range stimulatory for Vmax, the inhibition observed was not due to pH. 7. There was no significant effect of deoxygenation on passive Ca2+ uptake, or steady-state physiological [Ca2+]i level. 8. The deoxygenation-induced reduction in Ca2+ binding capacity may result from the increased protonation of haemoglobin on deoxygenation and from binding of 2,3-diphosphoglyceric acid (2,3-DPG) and ATP to deoxyhaemoglobin; inhibition of the Ca2+ pump may result from shifts in the [Mg2+]i/[ATP]i ratio away from a near optimal stimulatory value in the oxygenated state.
摘要
  1. 研究了脱氧对人红细胞胞质钙缓冲、通过钙泵的饱和钙外排速率(Vmax)、被动钙内流和生理[Ca2+]i水平的影响,以评估其钙代谢是否可能因毛细血管和静脉循环中的脱氧而改变。2. 该研究在保持于张力计中的新鲜人红细胞中进行,红细胞处于完全氧合或脱氧状态。通过二价阳离子离子载体A23187诱导的45Ca2+平衡分布估算胞质钙缓冲,通过Co(2+)暴露法或离子载体洗脱后测量钙泵的Vmax。在预先加载钙螯合剂苯并-2并重悬于自体血浆中的细胞中测定被动钙内流和生理[Ca2+]i。3. 脱氧使细胞内水中离子化钙的比例增加34 - 74%,并使钙泵的Vmax降低18 - 32%。4. 为阐明这些效应是否继发于脱氧诱导的pH变化,详细研究了脱氧对细胞和培养基pH的影响,以及pH对氧合细胞中胞质钙结合和钙泵Vmax的影响。5. 脱氧产生了较大的碱性pH变化,如果完整细胞中血红蛋白的表观等电点(pI)增加0.2 - 0.4个pH单位,这一现象就能得到解释,该值始终高于纯血红蛋白溶液报道的0.15。6. 在氧合细胞中,离子化细胞钙的比例α在7.0 - 7.7范围内受pH影响较小。钙泵Vmax在培养基pH约为7.55时最大。比较HCl - NaOH添加和用葡萄糖酸盐替代Cl-引起的pH效应表明,Vmax受内部酸化和外部碱化的抑制。由于脱氧使细胞和培养基碱化至对Vmax有刺激作用的范围内,观察到的抑制并非由pH引起。7. 脱氧对被动钙摄取或稳态生理[Ca2+]i水平无显著影响。8. 脱氧诱导的钙结合能力降低可能源于脱氧时血红蛋白质子化增加以及2,3 - 二磷酸甘油酸(2,3 - DPG)和ATP与脱氧血红蛋白的结合;钙泵的抑制可能源于[Mg2+]i/[ATP]i比值偏离氧合状态下接近最佳刺激值的变化。

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