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Life and Death of Glucose-6-Phosphate Dehydrogenase (G6PD) Deficient Erythrocytes – Role of Redox Stress and Band 3 Modifications

机译:葡萄糖-6-磷酸脱氢酶(G6PD)缺乏的红细胞的生与死–氧化还原应激和Band 3修饰的作用

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摘要

SummaryG6PD catalyzes the first, pace-making reaction of pentosephosphate cycle (PPC) which produces NADPH. NADPH maintains glutathione and thiol groups of proteins and enzymes in the reduced state which is essential for protection against oxidative stress. Individuals affected by G6PD deficiency are unable to regenerate reduced glutathione (GSH) and are undefended against oxidative stress. G6PD deficiency accelerates normal senescence and enhances the precocious removal of chronologically young, yet biologically old cells. The term hemolytic anemia is misleading because RBCs do not lyse but are removed by phagocytosis. Acute hemolysis by fava bean ingestion in G6PD deficient individuals (favism) is described being the best-studied natural model of oxidant damage. It bears strong analogies to hemolysis by oxidant drugs or chemicals. Membrane alterations observed in vivo during favism are superimposable to changes in senescent RBCs. In summary, RBC membranes isolated from favic patients contained elevated amounts of complexes between IgG and the complement fragment C3b/C3c and were prone to vesiculation. Anti-band 3 IgG reacted to aggregated band 3-complement complexes. In favism extensive clustering of band 3 and membrane deposition of hemichromes were also observed. Severely damaged RBCs isolated from early crises had extensive membrane cross-bonding and very low GSH levels and were phagocytosed 10-fold more intensely compared to normal RBCs.
机译:总结G6PD催化戊糖磷酸循环(PPC)的第一个起步反应,该反应产生NADPH。 NADPH使蛋白质和酶的谷胱甘肽和硫醇基团保持还原状态,这对于防止氧化应激至关重要。受G6PD缺乏症影响的个体无法再生还原型谷胱甘肽(GSH),也无法抵抗氧化应激。 G6PD缺乏会加速正常衰老,并增强早熟但生物学上老的细胞的早熟清除。溶血性贫血一词具有误导性,因为RBC不会溶解,但会被吞噬作用清除。 G6PD缺乏个体(favism)摄入蚕豆引起的急性溶血被描述为研究最佳的氧化损伤自然模型。它与氧化剂或化学物质的溶血有很强的类比。在favism期间在体内观察到的膜改变可与衰老RBC的改变叠加。总之,从重症患者中分离出的RBC膜的IgG与补体片段C3b / C3c之间的复合物含量较高,并且易于囊泡。抗带3 IgG与聚集的带3补体复合物反应。在favism中,还观察到了带3的广泛聚集和半色素的膜沉积。从早期危机中分离出来的严重受损的红细胞具有广泛的膜交叉键和非常低的谷胱甘肽水平,与正常红细胞相比,其吞噬作用的强度高10倍。

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