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Reversible Compartmentalization of De Novo Purine Biosynthetic Complexes in Living Cells

机译:De Novo嘌呤生物合成复合物在活细胞中的可逆区划

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Although the biosynthetic pathway for purines is well established,most studies have focused on the properties of the individual enzymes catalyzing the different steps of the pathway.The interactions of these enzymes have not been fully understood.In this study,fluorescence microscopy techniques were used to monitor enzyme interaction in both purine-rich and purine-depleted environments.GFP-tagged human TrifGART(hTrifGART),which catalyzes steps 2,3,and 5 of the pathway shown in Figure 1,and human formylglycinamidine ribonucleotide synthase(hFGAMS),which catalyzes step 4,expressed in HeLa cells showed cytoplasmic clustering and exhibited a high degree of colocalization when coexpressed in a purine-depleted environment.In contrast,clustering and colocalization were not observed in a purine-rich environment.Endogenous and GFP-tagged hTrifGART were also seen to colocalize.The six other enzymes in the pathway [PRPP ami-dotransferase(hPPAT)(step 1),hTrifGART,hFGAMS,hPAICS,adenylosuccinate lyase(hASL)(step 8),and hATIC(steps 9 and 10)] showed the same clustering activity with hFGAMS in purine-depleted media.The presence of exogenous pathway disrupters such as hypoxanthine resulted in the retention of the clusters.Collectively,these findings suggest that enzyme complex association and dissociation occurs in response to changing purine levels in the cell.
机译:尽管嘌呤的生物合成途径已经建立,但大多数研究集中在催化该途径不同步骤的单个酶的性质上。这些酶的相互作用尚未得到充分的了解。在这项研究中,荧光显微镜技术被用于监测富含嘌呤和嘌呤耗尽的环境中的酶相互作用.GFP标记的人类TrifGART(hTrifGART)催化图1所示途径的步骤2、3和5,以及人类甲酰基甘氨in啶核糖核苷酸合酶(hFGAMS)催化第4步在HeLa细胞中表达时,在嘌呤贫化的环境中共表达时,细胞质聚集并表现出高度的共定位;相反,在富含嘌呤的环境中未观察到聚类和共定位。路径中的其他六种酶[PRPP氨基转移酶(hPPAT)(步骤1),hTrifGART,hFGAMS,hPAICS,腺苷酸琥珀酸lya se(hASL)(步骤8)和hATIC(步骤9和10)]在嘌呤耗尽的培养基中与hFGAMS表现出相同的聚类活性。外源途径干扰物(如次黄嘌呤)的存在导致了簇的保留。这些发现表明,酶复合物的缔合和解离是对细胞中嘌呤水平变化的反应。

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