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Functional and structural alterations induced by copper in xanthine oxidase

机译:黄嘌呤氧化酶中铜诱导的功能和结构改变

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Xanthine oxidase (XO), a key enzyme in purine metabolism, produces reactive oxygen species causing vascular injuries and chronic heart failure. Here, copper's ability to alter XO activity and structure was investigated in vitro after pre-incubation of the enzyme with increasing Cu2+ concentrations for various periods of time. The enzymatic activity was measured by following XO-catalyzed xanthine oxidation to uric acid under steady-state kinetics conditions. Structural alterations were assessed by electronic absorption, fluorescence, and circular dichroism spectroscopy. Results showed that Cu2+ either stimulated or inhibited XO activity, depending on metal concentration and pre-incubation length, the latter also determining the inhibition type. Cu2+–XO complex formation was characterized by modifications in XO electronic absorption bands, intrinsic fluorescence, and α-helical and β-sheet content. Apparent dissociation constant values implied high- and low-affinity Cu2+ binding sites in the vicinity of the enzyme's reactive centers. Data indicated that Cu2+ binding to high-affinity sites caused alterations around XO molybdenum and flavin adenine dinucleotide centers, changes in secondary structure, and moderate activity inhibition; binding to low affinity sites caused alterations around all XO reactive centers including FeS, changes in tertiary structure as reflected by alterations in spectral properties, and drastic activity inhibition. Stimulation was attributed to transient stabilization of XO optimal conformation. Results also emphasized the potential role of copper in the regulation of XO activity stemming from its binding properties.
机译:黄嘌呤氧化酶(XO)是嘌呤代谢中的关键酶,可产生活性氧,引起血管损伤和慢性心力衰竭。在此,在铜与Cu 2 + 浓度升高的条件下预孵育不同时间后,体外研究了铜改变XO活性和结构的能力。在稳态动力学条件下,通过XO催化的黄嘌呤氧化成尿酸来测量酶活性。通过电子吸收,荧光和圆二色性光谱法评估结构改变。结果表明,Cu 2 + 可以刺激或抑制XO活性,这取决于金属浓度和预孵育长度,后者也决定了抑制类型。 Cu 2 + –XO络合物的形成特征在于XO电子吸收带,固有荧光以及α-螺旋和β-折叠含量的改变。表观解离常数值暗示了酶反应中心附近的高亲和力和低亲和力Cu 2 + 结合位点。数据表明,Cu 2 + 与高亲和力位点的结合导致XO钼和黄素腺嘌呤二核苷酸中心附近的改变,二级结构的改变和适度的活性抑制。与低亲和力位点的结合导致所有XO反应中心(包括FeS)周围的变化,三级结构的变化(如光谱性质的变化所反映)以及剧烈的活性抑制。刺激归因于XO最佳构象的瞬时稳定。结果还强调了铜由于其结合特性而在XO活性调节中的潜在作用。

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