Lawande Pravin P, Sontakke Vyankat A, Kumbhar Navanath M, Bhagwat Tanay R, Ghosh Sougata, Shinde Vaishali S
Department of Chemistry, Savitribai Phule Pune University (Formerly, University of Pune), Pune 411007, India.
Department of Microbiology, Modern College of Arts, Science and Commerce, Savitribai Phule Pune University, Ganeshkhind, Pune 411016, India.
Bioorg Med Chem Lett. 2017 Dec 1;27(23):5291-5295. doi: 10.1016/j.bmcl.2017.10.025. Epub 2017 Oct 14.
An efficient and practical strategy for the synthesis of unknown azetidine iminosugars (2S,3R,4S)-2-((R)-1,2-dihydroxyethyl)-3-hydroxy-4-(hydroxymethyl)azetidine 2, (2S,3r,4R)-3-hydroxy-2,4-bis(hydroxymethyl)azetidine 3 and (2S,3R,4S)-3-hydroxy-4-(hydroxymethyl)-N-methylazetidine-2-carboxylic acid 4, starting from the d-glucose has been reported. The methodology involves preparation of the 3-amino-N-benzyloxycarbonyl-3-deoxy-6-O-tert-butyldimethylsillyl-1,2-O-isopropylidene-α-d-glucofuranose 9, which was converted to the C-5-OMs derivative 11. Intramolecular nucleophilic displacement of the C-5-OMs group with in situ generated 3-amino functionality provided the required key azetidine ring skeletons 10 with additional hydroxymethyl group. Removal of 1,2-acetonide protection, followed by reduction and hydrogenolysis afforded azetidine iminosugar 2. Alternatively, removal of 1,2-acetonide group and chopping of C1-anomeric carbon gave C2-aldehyde that on reduction or oxidation followed by hydrogenolysis gave 2,4-bis(hydroxymethyl) azetidine iminosugars 3 and N-methylazetidine-2-carboxylic acid 4 respectively. The glycosidase inhibitory activity of 2-4 iminosugars was screened against various glycosidase enzymes and compared with a standard miglitol. Amongst synthesized targets, the compound 2 was found to be more potent amyloglucosidase inhibitor than miglitol. These results were supported by molecular docking studies.
已报道了一种从d-葡萄糖出发合成未知氮杂环丁烷亚氨基糖(2S,3R,4S)-2-((R)-1,2-二羟基乙基)-3-羟基-4-(羟甲基)氮杂环丁烷2、(2S,3r,4R)-3-羟基-2,4-双(羟甲基)氮杂环丁烷3和(2S,3R,4S)-3-羟基-4-(羟甲基)-N-甲基氮杂环丁烷-2-羧酸4的高效实用策略。该方法包括制备3-氨基-N-苄氧羰基-3-脱氧-6-O-叔丁基二甲基甲硅烷基-1,2-O-异亚丙基-α-d-葡萄糖呋喃糖9,其被转化为C-5-OMs衍生物11。C-5-OMs基团与原位生成的3-氨基官能团进行分子内亲核取代,得到所需的带有额外羟甲基的关键氮杂环丁烷环骨架10。去除1,2-丙酮叉保护基,然后进行还原和氢解,得到氮杂环丁烷亚氨基糖2。或者,去除1,2-丙酮叉基团并切断C1-异头碳,得到C2-醛,其经还原或氧化后再进行氢解,分别得到2,4-双(羟甲基)氮杂环丁烷亚氨基糖3和N-甲基氮杂环丁烷-2-羧酸4。针对各种糖苷酶对2-4亚氨基糖的糖苷酶抑制活性进行了筛选,并与标准米格列醇进行了比较。在合成的目标化合物中,发现化合物2是比米格列醇更有效的淀粉葡糖苷酶抑制剂。分子对接研究支持了这些结果。