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嗜热栖热袍菌中钨辅因子合成蛋白MoaB热稳定性的结构基础

Structural basis of thermal stability of the tungsten cofactor synthesis protein MoaB from Pyrococcus furiosus.

作者信息

Havarushka Nastassia, Fischer-Schrader Katrin, Lamkemeyer Tobias, Schwarz Guenter

机构信息

Institute of Biochemistry, Department of Chemistry, University of Cologne, Cologne, Germany.

Cluster of Excellence in Cellular Stress Responses in Aging-associated Diseases (CECAD), University of Cologne, Cologne, Germany.

出版信息

PLoS One. 2014 Jan 20;9(1):e86030. doi: 10.1371/journal.pone.0086030. eCollection 2014.

Abstract

Molybdenum and tungsten cofactors share a similar pterin-based scaffold, which hosts an ene-dithiolate function being essential for the coordination of either molybdenum or tungsten. The biosynthesis of both cofactors involves a multistep pathway, which ends with the activation of the metal binding pterin (MPT) by adenylylation before the respective metal is incorporated. In the hyperthermophilic organism Pyrococcus furiosus, the hexameric protein MoaB (PfuMoaB) has been shown to catalyse MPT-adenylylation. Here we determined the crystal structure of PfuMoaB at 2.5 Å resolution and identified key residues of α3-helix mediating hexamer formation. Given that PfuMoaB homologues from mesophilic organisms form trimers, we investigated the impact on PfuMoaB hexamerization on thermal stability and activity. Using structure-guided mutagenesis, we successfully disrupted the hexamer interface in PfuMoaB. The resulting PfuMoaB-H3 variant formed monomers, dimers and trimers as determined by size exclusion chromatography. Circular dichroism spectroscopy as well as chemical cross-linking coupled to mass spectrometry confirmed a wild-type-like fold of the protomers as well as inter-subunits contacts. The melting temperature of PfuMoaB-H3 was found to be reduced by more than 15 °C as determined by differential scanning calorimetry, thus demonstrating hexamerization as key determinant for PfuMoaB thermal stability. Remarkably, while a loss of activity at temperatures higher than 50 °C was observed in the PfuMoaB-H3 variant, at lower temperatures, we determined a significantly increased catalytic activity. The latter suggests a gain in conformational flexibility caused by the disruption of the hexamerization interface.

摘要

钼和钨辅因子共享一个类似的基于蝶呤的支架结构,该结构具有一个烯二硫醇盐功能基团,这对于钼或钨的配位至关重要。两种辅因子的生物合成均涉及一个多步途径,该途径在各自的金属被掺入之前,以通过腺苷酸化激活金属结合蝶呤(MPT)而告终。在嗜热生物激烈火球菌中,已证明六聚体蛋白MoaB(PfuMoaB)可催化MPT的腺苷酸化。在此,我们确定了PfuMoaB在2.5 Å分辨率下的晶体结构,并鉴定了介导六聚体形成的α3螺旋的关键残基。鉴于来自嗜温生物的PfuMoaB同源物形成三聚体,我们研究了PfuMoaB六聚化对热稳定性和活性的影响。使用结构导向诱变,我们成功破坏了PfuMoaB中的六聚体界面。通过尺寸排阻色谱法测定,所得的PfuMoaB-H3变体形成单体、二聚体和三聚体。圆二色光谱以及化学交联与质谱联用证实了原体具有类似野生型的折叠以及亚基间的接触。通过差示扫描量热法测定,发现PfuMoaB-H3的解链温度降低了超过15℃,从而证明六聚化是PfuMoaB热稳定性的关键决定因素。值得注意的是,虽然在PfuMoaB-H3变体中观察到在高于50℃的温度下活性丧失,但在较低温度下,我们测定其催化活性显著增加。后者表明由六聚化界面的破坏导致构象灵活性增加。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/991e/3896444/83a3d4074df2/pone.0086030.g001.jpg

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