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Synthesis, Characterization and In vitroAntimicrobial Activity of Aspartoyl Derivatives

机译:天冬氨酸衍生物的合成,表征及体外抗菌活性

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Aims: This research focused on synthesizing antifungal N-tosyl-L-aspartoyl derivatives with the aim of relating the structure with the expected biological activities. Elucidation of compounds that had good yiel and were active was done.Study Design: The antimicrobial activities of aspartic acid derivatives was determined against five fungal isolates using the in vitro model.Place and Duration of Study: The experiments were carried out in Makerere University, Department of Chemistry and Department of Botany, between 2012 and 2014.Methodology: Synthesis N-tosyl-L-aspartic acid was prepared by reacting p-tosyl chloride with L-aspartic acid in sodium hydroxide-ether mixture. The anhydride was prepared by refluxing N-Tosyl-L-aspartic acid with acetic anhydride. N-tosyl-L-aspartoylamino acids were obtained using 1:1 mole of the tosyl derivatives with amino acids: glycine, L- alanine, L-Leucine, L-valine and L-tyrosine. N-tosyl-L-aspartoylamino acid methyl esters were prepared by the action of thionyl chloride in methanol on N-tosyl-L-aspartoylamino acid derivatives. N-tosyl-L-aspartoylaniline derivatives and N-tosyl-L-aspartoyl-p-amino benzoic acid were achieved by refluxing the amines and p-amino benzoic acid in glacial acetic acid with the anhydride. The acid chloride was synthesized by refluxing N-tosyl-L-aspartoyl-p-amino benzoic acid in thionyl chloride. Stirring the acid chloride with appropriate amino acid in triethylamine-benzene mixture yielded the N-tosyl-L-aspartoyl-p-aminobenzoylamino acids. Esterifying these derivatives with Methanol in thionyl chloride afforded the methyl esters. The acid azide was prepared by stirring sodium azide in dry benzene with N-tosyl-L-aspartoyl-p-aminobenzoyl chloride. N-tosyl-L-aspartoylamino phenyl ureas were obtained by Curtius rearrangement by coupling of acid azides with appropriate amino acids in dry benzene. The structures of the products were elucidated using micro- and IR-spectral analyses. Confirmation of the structures was done by~( 1)H NMR (Nuclear Magnet Resonance) spectroscopy at 60 MHz with TMS (Tetramethylsaline) as internal standard and elemental analysis.Results: Thirty three compounds were tested for their biological activity against five fungal isolates, Candida albicans, Fusarium solani, Fusarium moniliforme, Penicillium expansum and Cladosporium cladosporioides. Eighteen compounds showed activity on either Candida albicans or Fusarium, while all the derivatives showed no antimicrobial activity on the three fungal isolates Fusarium moniliforme, Penicillium expansum and Cladosporium cladoporioides. All the synthesised compounds were tested against selected micro-organisms. These included: Candida albicans, Fusarium solani, Fusarium moniliforme, Penicillin expansum, Cladosporium cladosporioides . The antimicrobial properties of derivatives were assayed in vitro by agar disc diffusion method. The fungal isolates were locally isolated from rice porridge, milled Pakistan rice and from millet powder while the culture media was prepared using Potato Dextrose Agar (PDA).Conclusion: The study showed that changing the chemical structures of the synthesized compounds (1-33) resulted in change of biological activity, when the structure of the compound was altered. This proves that they could be of practical pharmaceutical application.
机译:目的:本研究致力于合成抗真菌的N-甲苯磺酰基-L-天冬氨酸衍生物,目的是将结构与预期的生物活性联系起来。研究表明:具有良好收率和活性的化合物。研究设计:使用体外模型测定了天冬氨酸衍生物对五种真菌分离物的抗菌活性。研究地点和持续时间:实验在马凯雷雷大学进行。化学系和植物学系,在2012年至2014年之间。方法:合成N-甲苯磺酰-L-天冬氨酸是通过将对甲苯磺酰氯与L-天冬氨酸在氢氧化钠-乙醚混合物中反应制得的。通过使N-甲苯磺酰基-L-天冬氨酸与乙酸酐回流制备酸酐。使用具有摩尔比为1:1的甲苯磺酰基衍生物与氨基酸:甘氨酸,L-丙氨酸,L-亮氨酸,L-缬氨酸和L-酪氨酸获得N-甲苯磺酰基-L-天冬氨酸氨基酸。通过亚硫酰氯在甲醇中对N-甲苯磺酰基-L-天冬氨酸氨基酸衍生物的作用制备N-甲苯磺酰基-L-天冬氨酸氨基酸甲酯。通过使胺和对氨基苯甲酸在冰醋酸中与酸酐回流,可以得到N-甲苯磺酰基-L-天冬氨酰苯胺衍生物和N-甲苯磺酰基-L-天冬氨酰-对氨基苯甲酸。通过在亚硫酰氯中回流N-甲苯磺酰基-L-天冬酰-对氨基苯甲酸来合成酰氯。在三乙胺-苯混合物中,将酰氯与适当的氨基酸一起搅拌,得到N-甲苯磺酰基-L-天冬酰-对氨基苯甲酰基氨基酸。用甲醇在亚硫酰氯中酯化这些衍生物,得到甲酯。通过将叠氮化钠在无水苯中与N-甲苯磺酰基-L-天冬氨酰-对氨基苯甲酰氯搅拌来制备酰基叠氮化物。 N-甲苯磺酰基-L-天冬氨酰氨基苯基脲是通过Curtius重排反应得到的,方法是将叠氮化物与适当的氨基酸在干苯中偶联。使用微观和红外光谱分析阐明了产品的结构。结构的确认是通过1MHz NMR(核磁共振波谱)在60 MHz下进行的,并以TMS(四甲基盐水)作为内标和元素分析。结果:测试了33种化合物对5种真菌分离物的生物学活性,白色念珠菌,茄形镰刀菌,巨型镰刀菌,扩张青霉和梭状芽孢杆菌。十八种化合物对白色念珠菌或镰刀菌均具有活性,而所有衍生物对三种真菌分离株镰刀菌,扩张青霉和克氏梭菌均无抗菌活性。对所有合成的化合物进行了针对所选微生物的测试。这些包括:白色念珠菌,茄镰刀菌,褐霉镰刀菌,扩展青霉素,cladosporium cladosporioides。通过琼脂圆盘扩散法在体外测定衍生物的抗菌性能。使用马铃薯右旋糖琼脂(PDA)制备培养基时,从米粥,碾碎的巴基斯坦大米和小米粉中局部分离了真菌分离物。结论:研究表明,改变了合成化合物的化学结构(1-33)当化合物的结构改变时,导致生物活性的改变。这证明它们可能具有实际的制药应用。

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