由酮和氯甲酸乙酯合成的β-酮酯:吡唑酮类化合物的快速、通用、高效合成及其抗微生物、硅和体外细胞毒性研究。

Ramasamy Venkat Ragavan, Kalavathi Murugan Kumar, Vijayaparthasarathi Vijayakumar, Sundaramoorthy Sarveswari, Sudha Ramaiah, Anand Anbarasu, Sivashanmugam Karthikeyan, Periyasamy Giridharan, Nalilu Suchetha Kumari
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引用次数: 17

摘要

背景:传统的吡唑酮类化合物是由β-酮酯与肼及其衍生物反应合成的。由酯类和醛类合成β-酮酯的方法很多,但主要局限于取代基的变化。通常,有许多方法,例如烯醇酸酯的酰化,其中使用锂和镁盐采用螯合效应来锁定烯醇酸阴离子;然而,在脂肪酰化的情况下,这些方法的产率不一致。在钯或过渡金属催化剂的存在下,利用二氧化碳和一氧化碳源,从酮类合成β-酮酯的方法有:酮烯醇化羧基化。目前合成β-酮酯最通用、最简单的方法是碳酸二甲酯或碳酸乙酯在强碱存在下与酮反应,但反应时间长、试剂用量大、产率不稳定。这些因素促使我们开发了一种通过改变碱和试剂合成β-酮酯的简单方法。结果:以酮和氯甲酸乙酯为原料,在碱的存在下合成了一系列β-酮酯,并将其转化为吡唑啉酮,对各种癌细胞进行了细胞毒性研究,并对各种细菌和真菌菌株进行了抑菌活性研究。结论:成功地从氯甲酸乙酯中提取了β-酮酯,所建立的方法简单、快速,适用于含有烷基卤素的酮类,可耐受Boc和Cbz等保护基团,可有效地利用环酮合成融合双环和三环吡唑酮。由于该方法对不同的酮类都是成功的,因此也可用于合成具有重要药学意义的吡唑酮类化合物。对合成的吡唑酮类化合物进行了抗微生物、对接和对人肾细胞癌(ACHN)、人胰腺腺癌(Panc-1)和人结肠癌(HCT-116)细胞系的细胞毒性实验,并鉴定出铅分子。其中一些化合物对不同的细菌和真菌菌株具有良好的活性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

β-Keto esters from ketones and ethyl chloroformate: a rapid, general, efficient synthesis of pyrazolones and their antimicrobial, in silico and in vitro cytotoxicity studies.

β-Keto esters from ketones and ethyl chloroformate: a rapid, general, efficient synthesis of pyrazolones and their antimicrobial, in silico and in vitro cytotoxicity studies.

β-Keto esters from ketones and ethyl chloroformate: a rapid, general, efficient synthesis of pyrazolones and their antimicrobial, in silico and in vitro cytotoxicity studies.

β-Keto esters from ketones and ethyl chloroformate: a rapid, general, efficient synthesis of pyrazolones and their antimicrobial, in silico and in vitro cytotoxicity studies.

Background: Pyrazolones are traditionally synthesized by the reaction of β-keto esters with hydrazine and its derivatives. There are methods to synthesize β-keto esters from esters and aldehydes, but these methods have main limitation in varying the substituents. Often, there are a number of methods such as acylation of enolates in which a chelating effect has been employed to lock the enolate anion using lithium and magnesium salts; however, these methods suffer from inconsistent yields in the case of aliphatic acylation. There are methods to synthesize β-keto esters from ketones like caboxylation of ketone enolates using carbon dioxide and carbon monoxide sources in the presence of palladium or transition metal catalysts. Currently, the most general and simple method to synthesize β-keto ester is the reaction of dimethyl or ethyl carbonate with ketone in the presence of strong bases which also requires long reaction time, use of excessive amount of reagent and inconsistent yield. These factors lead us to develop a simple method to synthesize β-keto esters by changing the base and reagent.

Results: A series of β-keto esters were synthesized from ketones and ethyl chloroformate in the presence of base which in turn are converted to pyrazolones and then subjected to cytotoxicity studies towards various cancer cell lines and antimicrobial activity studies towards various bacterial and fungal strains.

Conclusion: The β-keto esters from ethyl chloroformate was successfully attempted, and the developed method is simple, fast and applicable to the ketones having the alkyl halogens, protecting groups like Boc and Cbz that were tolerated and proved to be useful in the synthesis of fused bicyclic and tricyclic pyrazolones efficiently using cyclic ketones. Since this method is successful for different ketones, it can be useful for the synthesis of pharmaceutically important pyrazolones also. The synthesized pyrazolones were subjected to antimicrobial, docking and cytotoxicity assay against ACHN (human renal cell carcinoma), Panc-1 (human pancreatic adenocarcinoma) and HCT-116 (human colon cancer) cell line, and lead molecules have been identified. Some of the compounds are found to have promising activity against different bacterial and fungal strains tested.

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