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胆酸盐中环型和双环三级酰胺类似物的设计、合成及对艰难梭菌孢子发芽的抑制作用。

The design, synthesis, and inhibition of Clostridioides difficile spore germination by acyclic and bicyclic tertiary amide analogs of cholate.

机构信息

Department of Pharmaceutical Sciences, Eugene Applebaum College of Pharmacy and Health Sciences, Wayne State University, 259 Mack Avenue, Detroit, MI, 48201, USA.

Department of Chemistry and Biochemistry, University of Nevada -Las Vegas, 4505 S. Maryland Pkwy, Las Vegas, NV, 89154, USA.

出版信息

Eur J Med Chem. 2023 Dec 5;261:115788. doi: 10.1016/j.ejmech.2023.115788. Epub 2023 Sep 4.

Abstract

Clostridioides difficile infection (CDI) is a major identifiable cause of antibiotic-associated diarrhea. In our previous study (J. Med. Chem., 2018, 61, 6759-6778), we have identified N-phenyl-cholan-24-amide as a potent inhibitor of spore germination. The most potent compounds in our previous work are N-arylamides. We were interested in the role that the conformation of the amide plays in activity. Previous research has shown that secondary N-arylamides exist exclusively in the coplanar trans conformation while tertiary N-methyl-N-arylamides exist in a non-planar, cis conformation. The N-methyl-N-phenyl-cholan-24-amide was 17-fold less active compared to the parent compounds suggesting the importance of the orientation of the phenyl ring. To lock the phenyl ring into a trans conformation, cyclic tertiary amides were prepared. Indoline and quinoline cholan-24-amides were both inhibitors of spore germination; however, the indoline analogs were most potent. Isoindoline and isoquinoline amides were inactive. We found that the simple indoline derivative gave an IC value of 1 μM, while the 5'-fluoro-substituted compound (5d) possessed an IC of 400 nM. To our knowledge, 5d is the most potent known spore germination inhibitor described to date. Taken together, our results indicate that the trans, coplanar conformation of the phenyl ring is required for potent inhibition.

摘要

艰难梭菌感染(CDI)是抗生素相关性腹泻的主要可识别原因。在我们之前的研究(J. Med. Chem.,2018,61,6759-6778)中,我们已经确定 N-苯基胆烷-24-酰胺是一种有效的孢子萌发抑制剂。我们之前工作中最有效的化合物是 N-芳基酰胺。我们对酰胺的构象在活性中的作用很感兴趣。先前的研究表明,仲 N-芳基酰胺仅以共面反式构象存在,而叔 N-甲基-N-芳基酰胺以非平面顺式构象存在。N-甲基-N-苯基胆烷-24-酰胺的活性比母体化合物低 17 倍,这表明苯环的取向很重要。为了将苯环锁定在反式构象中,制备了环状叔酰胺。吲哚啉和喹啉胆烷-24-酰胺都是孢子萌发的抑制剂;然而,吲哚啉类似物的活性最强。异吲哚啉和异喹啉酰胺均无活性。我们发现,简单的吲哚啉衍生物的 IC 值为 1 μM,而 5'-氟取代化合物(5d)的 IC 值为 400 nM。据我们所知,5d 是迄今为止报道的最有效的已知孢子萌发抑制剂。总之,我们的结果表明,苯环的反式、共面构象是强效抑制所必需的。

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