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Synthesis and chemoinformatics analysis of N-aryl-beta-alanine derivatives

机译:N-芳基-β-丙氨酸衍生物的合成及化学信息学分析

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Carbohydrazides of N-substituted beta-amino acids exhibit a variety of different biological activities including antibacterial, antiviral, fungicidal, antihelminthic, anticancer, antiinflammatory, etc. New potentially biologically active N-(4-iodophenyl)-beta-alanine derivatives, N-(4-iodophenyl)-N-carboxyethyl-beta-alanine derivatives, and their cyclization products were designed and synthesized. To determine the most propitious directions for further investigation of the obtained compounds, we tried to appraise their biological activity in silico using the ChemSpider and chemical structure lookup service (CSLS), chemical similarity assessment (Integrity and SuperPred), and machine learning methods [prediction of activity spectra for substances (PASS)]. No useful hints on potential biological activity of the obtained novel compounds were delivered by ChemSpider, CSLS, Integrity or SuperPred. In contrast, PASS predicted some biological activities that could be verified experimentally. Neither antibacterial nor antifungal activity was predicted for the compounds under study despite these actions being known for compounds from this chemical class. Evaluation of antibacterial (Escherichia coli B-906, Staphylococcus aureus 209-P, and Mycobacterium luteum B-91) and antifungal (Candida tenuis VKM Y-70 and Aspergillus niger F-1119) activities in vitro did not reveal any significant antimicrobial action, which corresponds to the computational prediction. Advantages and shortcomings of chemical similarity and machine learning techniques in computational assessment of biological activities are discussed. Based on the obtained results, we conclude that academic organic chemistry studies could provide a significant impact on drug discovery due to the novelty and diversity of the designed and synthesized compounds; however, practical utilization of this potential is narrowed by the limited facilities for assaying biological activities.
机译:N-取代的β-氨基酸的碳酰肼表现出多种不同的生物活性,包括抗菌,抗病毒,杀真菌,抗蠕虫,抗癌,抗炎等。新的具有潜在生物活性的N-(4-碘苯基)-β-丙氨酸衍生物,N-设计并合成了(4-碘苯基)-N-羧乙基-β-丙氨酸衍生物及其环化产物。为了确定进一步研究所得化合物的最有利方向,我们尝试使用ChemSpider和化学结构查找服务(CSLS),化学相似性评估(Integrity和SuperPred)以及机器学习方法来评估它们在计算机中的生物学活性。活性谱图(PASS)]。 ChemSpider,CSLS,Integrity或SuperPred没有提供有关所获得的新型化合物潜在生物活性的有用提示。相反,PASS预测了一些可以通过实验验证的生物学活性。尽管对于这些化学类别的化合物已知这些作用,但未预测其对化合物的抗菌活性和抗真菌活性。体外对抗菌药(大肠杆菌B-906,金黄色葡萄球菌209-P和黄褐分枝杆菌B-91)和抗真菌药(tenandus tenuis VKM Y-70和黑曲霉F-1119)的活性评估未显示任何显着的抗菌作用,对应于计算预测。讨论了化学相似性和机器学习技术在生物活性计算评估中的优缺点。根据获得的结果,我们得出结论,由于设计和合成化合物的新颖性和多样性,学术有机化学研究可能会对药物发现产生重大影响。然而,由于分析生物活性的设施有限,这种潜力的实际利用受到了限制。

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