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光谱和量热法分析显示,曼氏血吸虫脱氧胞苷(dCMP)脱氨酶的酶活性依赖于 dCTP 和两种金属(Zn+Mg)。

Spectroscopic and calorimetric assays reveal dependence on dCTP and two metals (Zn+Mg) for enzymatic activity of Schistosoma mansoni deoxycytidylate (dCMP) deaminase.

机构信息

Physics Institute of São Carlos, University of São Paulo, São Carlos, SP CEP 13566-590, Brazil.

Physics Institute of São Carlos, University of São Paulo, São Carlos, SP CEP 13566-590, Brazil; Department of Neurobiology, Harvard Medical School, Boston, MA 02115, USA.

出版信息

Biochim Biophys Acta Proteins Proteom. 2017 Nov;1865(11 Pt A):1326-1335. doi: 10.1016/j.bbapap.2017.07.015. Epub 2017 Aug 12.

Abstract

The parasite Schistosoma mansoni possess all pathways for pyrimidine biosynthesis, whereby deaminases play an essential role in the thymidylate cycle, a crucial step to controlling the ratio between cytidine and uridine nucleotides. In this study, we heterologously expressed and purified the deoxycytidylate (dCMP) deaminase from S. mansoni to obtain structural, biochemical and kinetic information. Small-angle X-ray scattering of this enzyme showed that it is organized as a hexamer in solution. Isothermal titration calorimetry was used to determine the kinetic constants for dCMP-dUMP conversion and the role of dCTP and dTTP in enzymatic regulation. We evaluated the metals involved in activating the enzyme and show for the first time the dependence of correct folding on the interaction of two metals. This study provides information that may be useful for understanding the regulatory mechanisms involved in the metabolic pathways of S. mansoni. Thus, improving our understanding of the function of these essential pathways for parasite metabolism and showing for the first time the hitherto unknown deaminase function in this parasite.

摘要

曼氏血吸虫拥有嘧啶生物合成的所有途径,其中脱氨酶在胸苷酸循环中发挥着重要作用,胸苷酸循环是控制胞苷酸和尿苷酸核苷酸比例的关键步骤。在这项研究中,我们异源表达和纯化了曼氏血吸虫的脱氧胞苷酸(dCMP)脱氨酶,以获得结构、生化和动力学信息。该酶的小角度 X 射线散射表明,它在溶液中以六聚体的形式存在。等温热滴定法用于测定 dCMP-dUMP 转化的动力学常数以及 dCTP 和 dTTP 在酶调节中的作用。我们评估了参与激活酶的金属,并首次显示出正确折叠依赖于两种金属的相互作用。这项研究提供的信息可能有助于理解曼氏血吸虫代谢途径中的调节机制。因此,提高我们对寄生虫代谢中这些必需途径的功能的理解,并首次展示了这种寄生虫中迄今未知的脱氨酶功能。

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