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N-琥珀酰基-l,l-二氨基庚二酸脱琥珀酰酶(DapE)替代底物类似物 N,N-二甲基-l,l-SDAP 的合成与表征。

Synthesis and characterization of the N-succinyl-l,l-diaminopimelic acid desuccinylase (DapE) alternate substrate analog N,N-dimethyl-l,l-SDAP.

机构信息

Department of Chemistry and Biochemistry, Loyola University Chicago, 1032 West Sheridan Road, Chicago, IL 60660, United States.

Department of Chemistry and Biochemistry, Loyola University Chicago, 1032 West Sheridan Road, Chicago, IL 60660, United States.

出版信息

Bioorg Med Chem. 2023 Aug 15;91:117415. doi: 10.1016/j.bmc.2023.117415. Epub 2023 Jul 12.

DOI:10.1016/j.bmc.2023.117415
PMID:37459673
Abstract

Growing antibiotic resistance by pathogenic bacteria has led to a global crisis. The bacterial enzyme N-succinyl-l,l-diaminopimelic acid desuccinylase (DapE) provides a very attractive target for the discovery of a new class of antibiotics, as it resides exclusively in many pathogenic bacterial strains and is a key enzyme in the lysine biosynthetic pathway. This pathway is responsible for the production of lysine as well as meso-diaminopimelate (m-DAP), both of which are required for peptidoglycan cell-wall synthesis, and lysine for peptide synthesis. The enzyme DapE catalyzes the hydrolysis of N-succinyl-l,l-diaminopimelic acid (l,l-SDAP) to succinate and l,l-diaminopimelic acid (l,l-DAP), and due to its absence in humans, inhibition of DapE avoids mechanism-based side effects. We have executed the asymmetric synthesis of N,N-dimethyl-SDAP, an l,l-SDAP substrate analog and an analog of the synthetic substrate of our previously described DapE assay. Previous modeling studies advocated that N,N-dimethyl-SDAP might function as an inhibitor, however the compound behaves as a substrate, and we have demonstrated the use of N,N-dimethyl-SDAP as the substrate in a modified ninhydrin-based DapE assay. Thermal shift experiments of DapE in the presence of N,N-dimethyl-SDAP are consistent with a melt temperature (T) shifted by succinate, the product of enzymatic hydrolysis.

摘要

致病细菌对抗生素耐药性的不断增强已经引发了全球性危机。细菌酶 N-琥珀酰基-l,l-二氨基庚二酸脱琥珀酰酶(DapE)为发现新型抗生素提供了一个极具吸引力的目标,因为它仅存在于许多病原菌株中,并且是赖氨酸生物合成途径中的关键酶。该途径负责生产赖氨酸和中间二氨基庚二酸(m-DAP),两者都是肽聚糖细胞壁合成所必需的,而赖氨酸则是肽合成所必需的。酶 DapE 催化 N-琥珀酰基-l,l-二氨基庚二酸(l,l-SDAP)水解为琥珀酸和 l,l-二氨基庚二酸(l,l-DAP),由于其在人体中不存在,因此抑制 DapE 可以避免基于机制的副作用。我们已经完成了 N,N-二甲基-SDAP 的不对称合成,N,N-二甲基-SDAP 是 l,l-SDAP 的底物类似物,也是我们之前描述的 DapE 测定的合成底物的类似物。先前的建模研究表明,N,N-二甲基-SDAP 可能作为抑制剂发挥作用,但该化合物实际上是一种底物,我们已经证明了在改良的茚三酮基 DapE 测定中可以将 N,N-二甲基-SDAP 用作底物。在存在 N,N-二甲基-SDAP 的情况下 DapE 的热移位实验与琥珀酸(酶水解的产物)所引起的熔解温度(T)的变化一致。

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