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明氏发光萤光素酶C结构域中的颜色转换突变提供了有关结构域交替机制的新信息。

Color-shifting mutations in the C-domain of L. mingrelica firefly luciferase provide new information about the domain alternation mechanism.

作者信息

Modestova Yulia, Ugarova Natalia N

机构信息

Department of Chemical Enzymology, Faculty of Chemistry, Moscow State University, Moscow 119991, Russia; Lumtek LLC, ul. Vorob'ievy Gory 1/77, Moscow 119992, Russia.

Department of Chemical Enzymology, Faculty of Chemistry, Moscow State University, Moscow 119991, Russia; Lumtek LLC, ul. Vorob'ievy Gory 1/77, Moscow 119992, Russia.

出版信息

Biochim Biophys Acta. 2016 Dec;1864(12):1818-1826. doi: 10.1016/j.bbapap.2016.09.007. Epub 2016 Sep 16.

DOI:10.1016/j.bbapap.2016.09.007
PMID:27645709
Abstract

We identified three color-shifting mutations-Phe467Ser, Glu490Val, and Glu490Lys-in the C-domain of the wild-type recombinant L. mingrelica luciferase. These mutations had moderate effect on the specific activity and thermal stability of the enzyme but changed the pH-dependence of its bioluminescence spectra. We constructed the model structures of the enzyme in three known conformations (open, adenylation, and oxidation conformation). The structural analysis and experimental data provided no evidences that these residues participate in structure-forming interactions in the open or oxidation conformation or that their mutations alter the overall structure of the enzyme. Given that the bioluminescence spectra reflect the microenvironment of the emitter (oxyluciferin in an electronically excited state), we concluded that the mutated residues affect the active site during the emission of light via short-range interactions. We found that it is only in the adenylation conformation that the residues Phe467 and Glu490 approach the N-domain, whereas the domain rotation associated with the oxidation conformation completely removes them from the active site. Therefore, the emission most likely occurs from the adenylation conformation.

摘要

我们在野生型重组明氏发光杆菌荧光素酶的C结构域中鉴定出三个颜色转变突变——Phe467Ser、Glu490Val和Glu490Lys。这些突变对该酶的比活性和热稳定性有中等程度的影响,但改变了其生物发光光谱的pH依赖性。我们构建了该酶处于三种已知构象(开放、腺苷化和氧化构象)时的模型结构。结构分析和实验数据均未提供证据表明这些残基参与开放或氧化构象中的结构形成相互作用,也没有证据表明它们的突变会改变酶的整体结构。鉴于生物发光光谱反映了发光体(处于电子激发态的氧化荧光素)的微环境,我们得出结论,突变残基在发光过程中通过短程相互作用影响活性位点。我们发现,只有在腺苷化构象中,残基Phe467和Glu490才会靠近N结构域,而与氧化构象相关的结构域旋转会使其完全远离活性位点。因此,发光最有可能发生在腺苷化构象中。

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