Synthesis of Novel Dihydropyridine‐Iminium Salts Containing a Selenazine Core

IF 2.7 4区 化学 Q1 CHEMISTRY, ORGANIC
Dr. Reinier Lemos , Dr. Mauro De Nisco , Dr. Yoana Pérez‐Badell , Dr. Gabriella Pinto , Dr. Marco Morelli , Prof. Margarita Suárez , Dr. Silvana Pedatella
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Abstract

Functionalizing organic molecules with selenium‐containing fragments is a strategy to increase the biological properties of natural products and biomolecules. Therefore, in the present study, this strategy was followed to develop a new series in which the 1,3‐selenazine ring is condensed with a 1,4‐dihydropyridine, a nitrogen‐containing six‐membered heterocycle, as both entities are known to have proven biological activity. The 2‐iminium chloride salts of 5,8‐dihydro‐2H‐pyrido[3,2‐e][1,3]selenazine derivatives were easily synthesized in one step from the corresponding o‐chloroformyl‐1,4‐dihydropyridine and selenourea in good yields. Also, a comparative study of selenourea towards thiourea and urea was carried out to assess the contribution of chalcogen to the reaction pathway. All derivatives have been fully characterized by a whole set of instrumental techniques to determine their chemical structure. Further, theoretical calculations at the DFT level have predicted the optimized minimum energy structure for the hybrid compounds. Molecular docking was used to predict the potential application of the new compounds as inhibitors of the main protease of SARS‐CoV‐2, paving the way to study the possible application of these compounds in medicinal chemistry.

Abstract Image

新型含硒化嘧啶核二氢吡啶-亚胺盐的合成
用含硒片段功能化有机分子是提高天然产物和生物分子生物学特性的一种策略。因此,在本研究中,遵循这一策略开发了一个新的系列,其中1,3-硒化嗪环与1,4-二氢吡啶(一种含氮的六元杂环)缩合,因为已知这两种实体都具有已证实的生物活性。以邻氯甲酰基-1,4-二氢吡啶和硒脲为原料,一步合成了5,8-二氢- 2h -吡啶[3,2-e][1,3]硒嘧啶衍生物的2-氯化亚胺盐,收率高。此外,还对硒脲与硫脲和尿素进行了对比研究,以评估硫对反应途径的贡献。所有的衍生物都通过一整套仪器技术来确定它们的化学结构。此外,在DFT水平上的理论计算预测了杂化化合物的优化最小能量结构。通过分子对接预测新化合物作为SARS-CoV-2主要蛋白酶抑制剂的潜在应用前景,为研究新化合物在药物化学中的潜在应用铺平道路。
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来源期刊
CiteScore
4.70
自引率
3.70%
发文量
372
期刊介绍: Organic chemistry is the fundamental science that stands at the heart of chemistry, biology, and materials science. Research in these areas is vigorous and truly international, with three major regions making almost equal contributions: America, Europe and Asia. Asia now has its own top international organic chemistry journal—the Asian Journal of Organic Chemistry (AsianJOC) The AsianJOC is designed to be a top-ranked international research journal and publishes primary research as well as critical secondary information from authors across the world. The journal covers organic chemistry in its entirety. Authors and readers come from academia, the chemical industry, and government laboratories.
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