Meng Shuai, Bhetuwal Bishwa Raj, Nguyen Hai, Qi Xiaotian, Fang Cheng, Saybolt Kevin, Li Xiaohua, Liu Peng, Zhu Jianglong
Department of Chemistry and Biochemistry and School of Green Chemistry and Engineering, The University of Toledo, 2801 W. Bancroft Street, Toledo, Ohio 43606, United States.
Department of Chemistry, University of Pittsburgh, 219 Parkman Avenue, Pittsburgh, Pennsylvania 15260, United States.
European J Org Chem. 2020 Apr 23;2020(15):2291-2301. doi: 10.1002/ejoc.202000313. Epub 2020 Mar 19.
A number of structurally diverse D-mannose-derived lactols, including various deoxy-D-mannoses and conformationally restricted bicyclic D-mannoses, have been synthesized and investigated in mechanistic studies of -mannosylation via CsCO-mediated anomeric -alkylation. It was found that deoxy mannoses or conformationally restricted bicyclic D-mannoses are not as reactive as their corresponding parent mannose. This type of -mannosylation proceeds efficiently when the C2-OH is left free, and protection of that leads to inferior results. NMR studies of D-mannose-derived anomeric cesium alkoxides indicated the predominance of the equatorial -anomer after deprotonation. Reaction progress kinetic analysis suggested that monomeric cesium alkoxides be the key reactive species for alkylation with electrophiles. DFT calculations supported that oxygen atoms at C2, C3, and C6 of mannose promote the deprotonation of the anomeric hydroxyl group by CsCO and chelating interactions between Cs and these oxygen atoms favour the formation of equatorial anomeric alkoxides, leading to the highly -selective anomeric -alkylation. Based on experimental data and computational results, a revised mechanism for this -mannosylation is proposed. The utilization of this -mannosylation was demonstrated by an efficient synthesis of the hexasaccharide core of complex fucosylated -linked glycans.
通过碳酸铯介导的端基α-烷基化反应进行甘露糖基化的机理研究中,已经合成并研究了许多结构多样的D-甘露糖衍生的乳糖醇,包括各种脱氧-D-甘露糖和构象受限的双环D-甘露糖。发现脱氧甘露糖或构象受限的双环D-甘露糖的反应活性不如其相应的母体甘露糖。当C2-OH游离时,这种类型的α-甘露糖基化反应有效地进行,而对其进行保护则会导致较差的结果。对D-甘露糖衍生的端基铯醇盐的核磁共振研究表明,去质子化后赤道α-异构体占主导。反应进程动力学分析表明,单体铯醇盐是与亲电试剂烷基化的关键反应物种。密度泛函理论计算支持,甘露糖C2、C3和C6上的氧原子促进碳酸铯对端基羟基的去质子化,并且铯与这些氧原子之间的螯合相互作用有利于赤道端基醇盐的形成,从而导致高度α-选择性的端基α-烷基化。基于实验数据和计算结果,提出了这种α-甘露糖基化反应的修正机理。通过高效合成复杂岩藻糖基化N-连接聚糖的六糖核心,证明了这种α-甘露糖基化反应的实用性。