School of Chemical Sciences, The University of Auckland, 23 Symonds St, Auckland, 1142, New Zealand.
Maurice Wilkins Centre for Molecular Biodiscovery, The University of Auckland, Auckland, 1142, New Zealand.
Angew Chem Int Ed Engl. 2018 Mar 26;57(14):3631-3635. doi: 10.1002/anie.201712792. Epub 2018 Feb 14.
The first synthesis of the anti-TB cyclic peptide callyaerin A (1), containing a rare (Z)-2,3-diaminoacrylamide bridging motif, is reported. Fmoc-formylglycine-diethylacetal was used as a masked equivalent of formylglycine in the synthesis of the linear precursor to 1. Intramolecular cyclization between the formylglycine residue and the N-terminal amine in the linear peptide precursor afforded the macrocyclic natural product 1. Synthetic 1 possessed potent anti-TB activity (MIC =32 μm) while its all-amide congener was inactive. Variable-temperature NMR studies of both the natural product and its all-amide analogue revealed the extraordinary rigidity imposed by this diaminoacrylamide unit on peptide conformation. The work reported herein pinpoints the intrinsic role that the (Z)-2,3-diaminoacrylamide moiety confers on peptide bioactivity.
首次报道了抗结核环肽 callyaerin A(1)的合成,其中包含一个罕见的(Z)-2,3-二氨基丙烯酰胺桥接基序。Fmoc-甲酰甘氨酸-二乙缩醛在 1 的线性前体的合成中被用作甲酰甘氨酸的掩蔽等价物。线性肽前体中甲酰甘氨酸残基和 N-末端胺之间的分子内环化生成了大环天然产物 1。合成的 1 具有很强的抗结核活性(MIC=32μm),而其全酰胺同系物则没有活性。天然产物及其全酰胺类似物的变温 NMR 研究揭示了这个二氨基丙烯酰胺单元对肽构象所施加的非凡刚性。本文所报道的工作确定了(Z)-2,3-二氨基丙烯酰胺部分在肽生物活性中赋予的固有作用。