非核苷类逆转录酶抑制剂、抗病毒药物依非韦伦的溶剂依赖性光解研究。

Q2 Pharmacology, Toxicology and Pharmaceutics Antiviral Chemistry and Chemotherapy Pub Date : 2017-12-01 Epub Date: 2017-09-11 DOI:10.1177/2040206617730170
Maryam A Jordaan, Michael Shapi
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引用次数: 6

摘要

本研究旨在研究依非韦伦光解的溶剂依赖性,以深入了解所涉及的光过程。主要机理首先是分子内激发态质子转移(即光变异构)产生亚胺酸光变异构,在高效液相色谱-电喷雾电离-飞行时间质谱负模式下,在m/z 314.0070处观察到[m - h]-准分子离子。其次,在m/z 286.0395处发生光诱导α-裂解,羰基丢失(即光脱羰基化)形成光产物。紫外-可见光谱显示π→π*和n→π*电子跃迁中存在较大的深显色效应和轻微的深显色效应。在氯仿溶剂中存在最大的变色效应,即氯仿(π* = 0.58;β = 0.00;α = 0.44) >甲醇(π* = 0.60;β = 0.66;α = 0.98) >乙腈(π* = 0.75;β = 0.40;α = 0.19)。这是由于氨基与激发的羰基部分的显著相互作用,这是由于分子内光自变性,导致电子态的较大能量转移。一个合理的解释是由于极性甲醇和非极性氯甲烷溶剂的氢键供体能力,它们通过氢键相互作用稳定了极化亚胺酸光变异构体,而非质子乙腈则没有氢键相互作用。该研究将为进一步的光解分析和合成奠定基础,从而基于依非韦伦的生物活性苯并恶嗪酮框架产生大量具有抗hiv活性的新型光产物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Investigation of the solvent-dependent photolysis of a nonnucleoside reverse-transcriptase inhibitor, antiviral agent efavirenz.

This study sought to investigate the solvent-dependency on the photolysis of efavirenz to gain insight into the photoprocesses involved. The primary mechanisms were firstly the excited-state intramolecular proton transfer (i.e. phototautomerization), which generated the imidic acid phototautomer observed as [M-H]- quasimolecular ion at m/z 314.0070 in the high-performance liquid chromatography-electrospray ionization-time-of-flight mass spectrometry in the negative mode. Secondly, the photoinduced α-cleavage with the loss of a carbonyl group occurred (i.e. photodecarbonylation) to form the photoproduct at m/z 286.0395. The ultraviolet-visible spectra illustrated a large, hyperchromic, and slight bathochromic effect in both the π→π* and n→π* electronic transitions. The largest bathochromic effect was prevalent in the chloroform solvent, i.e. chloroform (π* = 0.58; β = 0.00; α = 0.44) > methanol (π* = 0.60; β = 0.66; α = 0.98) > acetonitrile (π* = 0.75; β = 0.40; α = 0.19). This is due to the significant interaction of the amino group with the excited carbonyl moiety which is attributed to intramolecular phototautomerization resulting in a larger energy shift of the electronic state. A plausible explanation is due to the hydrogen bond donor ability of the polar methanol and nonpolar chloroform solvents, which stabilized the polarized imidic acid phototautomer by means of hydrogen bonding interactions, as opposed to the aprotic acetonitrile which exhibits no hydrogen bonding interactions. The study would form the basis for further photolytic analyses and syntheses to generate a plethora of novel photoproducts with anti-HIV activity based on the biologically active benzoxazinone framework of efavirenz.

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来源期刊
Antiviral Chemistry and Chemotherapy
Antiviral Chemistry and Chemotherapy Pharmacology, Toxicology and Pharmaceutics-Pharmacology
CiteScore
5.20
自引率
0.00%
发文量
5
审稿时长
15 weeks
期刊介绍: Antiviral Chemistry & Chemotherapy publishes the results of original research concerned with the biochemistry, mode of action, chemistry, pharmacology and virology of antiviral compounds. Manuscripts dealing with molecular biology, animal models and vaccines are welcome. The journal also publishes reviews, pointers, short communications and correspondence.
期刊最新文献
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