Department of Food Science and Technology, National University of Singapore, Singapore 117542, Singapore.
School of Food Science and Technology, Jiangnan University, Wuxi 214122, People's Republic of China.
Acta Crystallogr D Struct Biol. 2022 Sep 1;78(Pt 9):1180-1191. doi: 10.1107/S2059798322007707. Epub 2022 Aug 30.
D-Allulose, a low-calorie rare sugar with various physiological functions, is mainly produced through the isomerization of D-fructose by ketose 3-epimerases (KEases), which exhibit various substrate specificities. A novel KEase from a Clostridia bacterium (CDAE) was identified to be a D-allulose 3-epimerase and was further characterized as thermostable and metal-dependent. In order to explore its structure-function relationship, the crystal structure of CDAE was determined using X-ray diffraction at 2.10 Å resolution, revealing a homodimeric D-allulose 3-epimerase structure with extensive interactions formed at the dimeric interface that contribute to structure stability. Structural analysis identified the structural features of CDAE, which displays a common (β/α)-TIM barrel and an ordered Mn-binding architecture at the active center, which may explain the positive effects of Mn on the activity and stability of CDAE. Furthermore, comparison of CDAE and other KEase structures revealed several structural differences, highlighting the remarkable differences in enzyme-substrate binding at the O4, O5 and O6 sites of the bound substrate, which are mainly induced by distinct hydrophobic pockets in the active center. The shape and hydrophobicity of this pocket appear to produce the differences in specificity and affinity for substrates among KEase family enzymes. Exploration of the crystal structure of CDAE provides a better understanding of its structure-function relationship, which might provide a basis for molecular modification of CDAE and further provides a reference for other KEases.
D-阿洛酮糖是一种低热量的稀有糖,具有多种生理功能,主要通过酮糖 3-差向异构酶(KEases)将 D-果糖异构化生成,其具有不同的底物特异性。从梭菌(Clostridia bacterium)中鉴定到一种新型的 KEase(CDAE),它是一种 D-阿洛酮糖 3-差向异构酶,并且具有热稳定性和金属依赖性。为了探索其结构-功能关系,使用 X 射线衍射技术在 2.10 Å 的分辨率下确定了 CDAE 的晶体结构,揭示了其具有广泛相互作用的同源二聚体 D-阿洛酮糖 3-差向异构酶结构,这些相互作用有助于结构稳定性。结构分析确定了 CDAE 的结构特征,其显示出常见的(β/α)-TIM 桶和在活性中心处有序的 Mn 结合结构,这可能解释了 Mn 对 CDAE 活性和稳定性的积极影响。此外,与其他 KEase 结构的比较揭示了几个结构差异,突出了结合底物的 O4、O5 和 O6 位点处酶-底物结合的显著差异,这主要是由活性中心中不同的疏水性口袋引起的。口袋的形状和疏水性似乎在 KEase 家族酶的底物特异性和亲和力方面产生了差异。探索 CDAE 的晶体结构提供了对其结构-功能关系的更好理解,这可能为 CDAE 的分子修饰提供基础,并为其他 KEases 提供参考。