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色胺及其相关类似物与 CoASH 靶向亲电试剂的 AANAT 动力学。

AANAT kinetics of CoASH-targeted electrophiles of tryptamine and related analogs.

机构信息

Department of Chemistry, University of Nebraska at Kearney, Kearney, NE 69949, USA.

Department of Biology, University of Nebraska at Kearney, Kearney, NE 69949, USA.

出版信息

Bioorg Med Chem Lett. 2024 Nov 15;113:129975. doi: 10.1016/j.bmcl.2024.129975. Epub 2024 Sep 25.

Abstract

Arylalkylamine N-acetyltransferase (AANAT) catalyzes the rate-limiting step in melatonin synthesis and is a potential target for disorders involving melatonin overproduction, such as seasonal affective disorder. Previously described AANAT inhibitor bromoacetyltryptamine (BAT) and benzothiophenes analogs were reported to react with CoASH to form potent bisubstrate inhibitors through AANAT's alkyltransferase function, which is secondary to its role as an acetyltransferase. We replaced the bromoacetyl group in BAT with various Michael acceptors to mitigate possible off-target activity of its bromoacetyl group. Additionally, we modified the length of the carbon linker between the Michael acceptor and indole bicycle of tryptamine to determine its effect on potency. An AANAT enzymatic assay showed a two-carbon linker present in BAT was optimal, while none of the new warheads had activity. Kinetic analysis indicated that these Michael acceptors reacted with CoASH much slower than BAT and not within the timeframe of our enzymatic assay. Additionally, we confirmed earlier reports that the acetyltransferase function of AANAT follows an ordered bi bi mechanism in which AcCoA binds before serotonin. In contrast, BAT's alkyltransferase kinetics revealed a bi uni mechanism in which BAT binds to AANAT before CoASH. Our model combines both functions of AANAT into one kinetic mechanism.

摘要

芳烷基胺 N-乙酰基转移酶 (AANAT) 催化褪黑素合成的限速步骤,是涉及褪黑素过度产生的疾病(如季节性情感障碍)的潜在靶点。先前描述的 AANAT 抑制剂溴乙酰色胺 (BAT) 和苯并噻吩类似物被报道与 CoASH 反应,通过 AANAT 的烷基转移酶功能形成有效的双底物抑制剂,该功能次于其作为乙酰转移酶的作用。我们用各种迈克尔受体取代 BAT 中的溴乙酰基,以减轻其溴乙酰基可能的脱靶活性。此外,我们修饰了迈克尔受体和色胺吲哚环之间的碳连接子的长度,以确定其对效力的影响。AANAT 酶促测定显示,BAT 中的两个碳连接子是最佳的,而新的弹头都没有活性。动力学分析表明,这些迈克尔受体与 CoASH 的反应速度比 BAT 慢得多,而且不在我们酶促测定的时间范围内。此外,我们证实了早先的报告,即 AANAT 的乙酰转移酶功能遵循一个有序的双生物机制,其中 AcCoA 先于血清素结合。相比之下,BAT 的烷基转移酶动力学显示出一个双 uni 机制,其中 BAT 先于 CoASH 与 AANAT 结合。我们的模型将 AANAT 的两个功能结合到一个动力学机制中。

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