State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics , Chinese Academy of Sciences , Zhongshan Road 457 , Dalian 116023 , China.
University of Chinese Academy of Sciences , No. 19A Yuquan Road , Beijing 100049 , China.
J Phys Chem B. 2019 Sep 19;123(37):7794-7800. doi: 10.1021/acs.jpcb.9b05968. Epub 2019 Aug 6.
Phosphorylation of glucose is the prime step in sugar metabolism and energy storage. Two key glucose phosphates are involved, that is, glucose 6-phosphate (G6P) and α-glucose 1-phosphate (αG1P). The chiral conformation of glucose, G6P, and αG1P plays an essential role in enzyme-mediated conversions. However, few techniques were able to give a direct view of the conformational changes from glucose to G6P and αG1P. Here, Raman optical activity (ROA) was used to elucidate the stereochemical evolution of glucose upon phosphorylation. ROA was found to be extremely sensitive to different phosphorylation sites. A characteristic ROA marker of (+)980 cm, originated from the phosphate group symmetric stretching vibration, is observed for αG1P with phosphorylation at chiral C1, while no corresponding ROA signal for G6P with phosphorylation at achiral C6 is observed. Phosphorylation-induced gauch-gauch (gg)/gauch-trans (gt) rotamer distribution changes can be sensitively probed by the sign of the ROA band around 1460 cm. A positive ROA band at 1465 cm of glucose corresponds to a higher gt ratio, while a negative band at 1455 cm of G6P suggests a dominant gg population, and the disappearance of this ROA band for αG1P indicates a nearly balanced gg/gt distribution. Meanwhile, the phosphorylation at C6 and C1 could cause dramatic reduction of the conformational flexibility of the adjacent C4-OH and C2-OH, respectively. These stereochemical changes revealed by ROA spectra offer a structural basis on the understanding of sugar phosphorylation from the perspective of chirality.
葡萄糖的磷酸化是糖代谢和能量储存的首要步骤。涉及两种关键的葡萄糖磷酸酯,即葡萄糖 6-磷酸 (G6P) 和 α-葡萄糖 1-磷酸 (αG1P)。葡萄糖、G6P 和 αG1P 的手性构象在酶介导的转化中起着至关重要的作用。然而,很少有技术能够直接观察到葡萄糖到 G6P 和 αG1P 的构象变化。在这里,拉曼光学活性 (ROA) 被用于阐明磷酸化过程中葡萄糖的立体化学演变。ROA 被发现对不同的磷酸化位点非常敏感。在 C1 手性位发生磷酸化的 αG1P 中,观察到源于磷酸基团对称伸缩振动的 (+)980 cm 的特征 ROA 标记,而在非手性 C6 位发生磷酸化的 G6P 中则没有观察到相应的 ROA 信号。ROA 带在 1460 cm 左右的符号可以灵敏地探测到磷酸化诱导的 gauch-gauch (gg)/gauch-trans (gt) 构象分布变化。葡萄糖在 1465 cm 处的正 ROA 带对应于较高的 gt 比,而 G6P 在 1455 cm 处的负 ROA 带表明存在主导的 gg 群体,而 αG1P 中该 ROA 带的消失表明 gg/gt 分布几乎平衡。同时,C6 和 C1 的磷酸化分别导致相邻 C4-OH 和 C2-OH 的构象灵活性显著降低。ROA 光谱揭示的这些立体化学变化为从手性角度理解糖磷酸化提供了结构基础。