Ko Yeonjin, Ruszczycky Mark W, Choi Sei-Hyun, Liu Hung-wen
Division of Medicinal Chemistry, College of Pharmacy and Department of Chemistry, University of Texas at Austin, Austin, TX 78712 (USA).
Angew Chem Int Ed Engl. 2015 Jan 12;54(3):860-3. doi: 10.1002/anie.201409540. Epub 2014 Nov 21.
DesII is a radical S-adenosylmethionine (SAM) enzyme that catalyzes the C4-deamination of TDP-4-amino-4,6-dideoxyglucose through a C3 radical intermediate. However, if the C4 amino group is replaced with a hydroxy group (to give TDP-quinovose), the hydroxy group at C3 is oxidized to a ketone with no C4-dehydration. It is hypothesized that hyperconjugation between the C4 C-N/O bond and the partially filled p orbital at C3 of the radical intermediate modulates the degree to which elimination competes with dehydrogenation. To investigate this hypothesis, the reaction of DesII with the C4-epimer of TDP-quinovose (TDP-fucose) was examined. The reaction primarily results in the formation of TDP-6-deoxygulose and likely regeneration of TDP-fucose. The remainder of the substrate radical partitions roughly equally between C3-dehydrogenation and C4-dehydration. Thus, changing the stereochemistry at C4 permits a more balanced competition between elimination and dehydrogenation.
DesII是一种自由基S-腺苷甲硫氨酸(SAM)酶,它通过C3自由基中间体催化TDP-4-氨基-4,6-二脱氧葡萄糖的C4脱氨基反应。然而,如果C4氨基被羟基取代(生成TDP-奎诺糖),C3处的羟基会被氧化成酮,且没有C4脱水反应。据推测,自由基中间体的C4 C-N/O键与C3处部分填充的p轨道之间的超共轭作用调节了消除反应与脱氢反应竞争的程度。为了研究这一假设,研究了DesII与TDP-奎诺糖的C4差向异构体(TDP-岩藻糖)的反应。该反应主要导致TDP-6-脱氧葡萄糖的形成以及TDP-岩藻糖的可能再生。其余的底物自由基在C3脱氢和C4脱水之间大致平均分配。因此,改变C4处的立体化学可以使消除反应和脱氢反应之间的竞争更加平衡。