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首页> 外文期刊>Blood: The Journal of the American Society of Hematology >Oxidative modifications of glyceraldehyde 3-phosphate dehydrogenase regulate metabolic reprogramming of stored red blood cells
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Oxidative modifications of glyceraldehyde 3-phosphate dehydrogenase regulate metabolic reprogramming of stored red blood cells

机译:甘油醛3-磷酸脱氢酶的氧化修饰调节储存红细胞的代谢重编程

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Glyceraldehyde 3-phosphate dehydrogenase (GAPDH) plays a key regulatory function in glucose oxidation by mediating fluxes through glycolysis or the pentose phosphate pathway (PPP) in an oxidative stress-dependent fashion. Previous studies documented metabolic reprogramming in stored red blood cells (RBCs) and oxidation of GAPDH at functional residues upon exposure to pro-oxidants diamide and H2O2. Here we hypothesize that routine storage of erythrocyte concentrates promotes metabolic modulation of stored RBCs by targeting functional thiol residues of GAPDH. Progressive increases in PPP/glycolysis ratios were determined via metabolic flux analysis after spiking C-13(1,2,3)-glucose in erythrocyte concentrates stored in Additive Solution-3 under blood bank conditions for up to 42 days. Proteomics analyses revealed a storage-dependent oxidation of GAPDH at functional Cys152, 156, 247, and His179. Activity loss by oxidation occurred with increasing storage duration and was progressively irreversible. Irreversibly oxidized GAPDH accumulated in stored erythrocyte membranes and supernatants through storage day 42. By combining state-of-the-art ultra-high-pressure liquid chromatography-mass spectrometry metabolic flux analysis with redox and switch-tag proteomics, we identify for the first time ex vivo functionally relevant reversible and irreversible (sulfinic acid; Cys to dehydroalanine) oxidations of GAPDH without exogenous supplementation of excess pro-oxidant compounds in clinically relevant blood products. Oxidative and metabolic lesions, exacerbated by storage under hyperoxic conditions, were ameliorated by hypoxic storage. Storage-dependent reversible oxidation of GAPDH represents a mechanistic adaptation in stored erythrocytes to promote PPP activation and generate reducing equivalents. Removal of irreversibly oxidized, functionally compromised GAPDH identifies enhanced vesiculation as a self-protective mechanism in ex vivo aging erythrocytes.
机译:甘油醛3-磷酸脱氢酶(GAPDH)通过糖醇分解或戊糖磷酸途径(PPP)以氧化应激依赖性方式介导葡萄糖氧化的关键调节功能。先前的研究记录了在暴露于促氧化剂酰胺和H2O2时在杂种中的储存红细胞(RBC)中的代谢重编程和GAPDH的氧化。在这里,我们假设通过靶向GAPDH的官能硫醇残基来促进红细胞浓缩物的常规储存促进了储存的RBC的代谢调节。通过代谢助熔剂在储存溶液-3在血库条件下储存的红细胞浓缩物中的C-13(1,2,3) - 葡萄糖在血库条件下储存最多42天后通过代谢助熔剂分析测定PPP /糖酵解比率的渐进式增加。蛋白质组学分析揭示了功能性Cys152,156,247和HIS179的GAPDH的依赖性氧化。随着储存持续时间的增加而发生氧化的活动损失,并且逐渐不可逆转。通过储存天42,在储存的红细胞膜和上清液中累积的不可逆转氧化的GAPDH。通过用氧化还原和切换标签蛋白质组织组合最先进的超高压液相色谱 - 质谱代谢通量分析,我们识别第一个时间以外的功能相关的可逆和不可逆转(亚磺酸; Cys至Deydroalanine)GAPDH的氧化,无需外源补充临床相关的血液制品中的过量助剂化合物。通过缺氧条件下储存加剧的氧化和代谢病变,通过缺氧储存来改善。 GAPDH的储存依赖性可逆氧化表示储存的红细胞中的机械适应,以促进PPP活化并产生还原等同物。除去不可逆转氧化的功能受损的GAPDH鉴定了增强的混凝剂作为离体老化红细胞的自我保护机制。

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