丙烯海松酸衍生物的合成、生物活性及OSAR研究
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摘要
松香作为我国一种重要的天然可再生资源,具有广泛的生物活性。丙烯海松酸是松香发生D-A加成反应的深加工产品,由于其独特的结构和反应活性,越来越受到广泛关注。本文以丙烯海松酸为原料,经酯化、SWERN还原、硫代、溴代等反应,制备了丙烯海松酰胺、丙烯海松肟酯、丙烯海松希夫碱、丙烯海松酰腙、丙烯海松酰基硫脲、丙烯海松噻二唑六大类共53个新化合物;采用IR、NMR、元素分析、质谱等手段对所合成的化合物进行结构表征,确定了化合物的结构;对合成的化合物分别进行了抑菌和体外抗肿瘤活性研究,并建立了抑菌活性定量构效关系模型,以期指导下一步生物活性化合物的合成。
     采用滤纸片法对丙烯海松酰胺、丙烯海松肟酯、丙烯海松希夫碱、丙烯海松酰腙、丙烯海松酰基硫脲、丙烯海松噻二唑六大类化合物进行了抑菌性能研究。受试菌种选择具有代表性的金黄色葡萄球菌(革兰氏阳性菌)和大肠杆菌(革兰氏阴性菌)。研究结果表明所合成的化合物对金黄色葡萄球菌大肠杆菌和大肠杆菌具有一定的抑制效果。其中丙烯海松肟酯类化合物:3c(12.17mm)、3d(10.00mm)、3f(10.33mm);丙烯海松希夫碱类化合物:4a(15.70mm)、4b(17.00mm)和4c(16.70mm);丙烯海松酰腙类化合物:5a(10.00mm)、5c(10.00mm);丙烯海松酰基硫脲类化合物:6f(10.00mm);丙烯海松噻二唑类化合物:7f(10.66mm)对大肠杆菌具有较好的抑菌活性,表现在256μg/mL浓度下,抑菌环直径比市售杀菌剂新洁尔灭(7.90mm)的抑菌环直径要大,这些化合物可以作为抑菌剂进一步分离提纯和开发。
     采用MTT比色法对丙烯海松酰胺、丙烯海松肟酯、丙烯海松希夫碱、丙烯海松酰腙、丙烯海松酰基硫脲、丙烯海松噻二唑六大类化合物进行了体外抗肿瘤活性研究。受试细胞以处于对数生长期的细胞(人非小细胞肺癌NCI-H460细胞、人肝癌SMMC-7721细胞、人乳腺癌MCF-7细胞)为受试细胞,根据改进寇氏法计算半数抑制浓度(IC_(50)),当IC_(50)<10μg/mL时,判断该化合物具有体外抗肿瘤活性。研究结果表明所合成的化合物对NCI-H460细胞、SMMC-7721细胞和MCF-7细胞具有一定的抑制作用。其中丙烯海松肟酯类化合物3k对NCI-H460
     细胞、SMMC-7721细胞、MCF-7细胞的半数抑制浓度IC_(50)均接近于10μg/mL,显示对肿瘤细胞具有一定的杀伤抑制作用,同时对肿瘤细胞的抑制率随化合物的浓度增加而呈S型曲线变化;丙烯海松希夫碱衍生物对体外培养的NCI-H460细胞、SMMC-7721细胞、MCF-7细胞均有较好的抑制作用,表现在他们的半数抑制浓度IC_(50)均接近或小于10μg/mL,其中化合物4h对NCI-H460细胞和MCF-7细胞的半数抑制浓度IC_(50)分别为6.75μg/mL和5.58μg/mL;化合物4i对MCF-7细胞的半数抑制浓度IC_(50)达到5.19μg/mL,这些结果表明4h和4i对肿瘤细胞具有较好的杀伤抑制作用。
     对合成的丙烯海松酸衍生物的抑菌活性进行了定量构效关系研究(QSAR,Quantitative Structure Activity Relationship)。用量子化学软件Gaussian03W对合成的丙烯海松酰胺、丙烯海松肟酯、丙烯海松希夫碱、丙烯海松酰腙、丙烯海松酰基硫脲、丙烯海松噻二唑六大类化合物进行最低能量计算和构型的几何优化,再通过Codessa2.7.15中的最佳线性回归方法分别得到了对应于大肠杆菌的抑菌活性(IZ),相关系数为R2=0.9423的包含了5个结构描述符的最佳定量构效关系计算模型和对应于金黄色葡萄球菌的抑菌活性(IZ),相关系数为R2=0.8928的包含了5个结构描述符的最佳定量构效关系计算模型。该模型显示影响这些化合物抑制大肠杆菌活性的5个结构描述符分别是:N原子的最大静电荷、最大静电荷、H原子的最小静电荷、C原子的最大静电荷、被占据的电子水平或原子数;抑制金黄色葡萄球菌活性的5个结构描述符分别是:N原子的最小静电荷、C原子的最小静电荷、H原子的最小静电荷、分子偶极的总杂化组成、Onsager-Kirkwood溶剂能。
Rosin as an important natural resource, is widely available throughout China. Rosin, aswell as its derivatives, has been developed as a starting material for synthesizing variouschemicals and/or intermediates, which are renewable alternatives/substitutes ofpetrochemical-based chemicals. Acrylopimaric acid (APA) is a Diels-Alder adduct of rosin andacrylic acid and has attracted more and more attention because of its unique structure andreactivity. In this paper, amide derivatives, oxime ester derivatives, Shiff bases derivatives,dihydrazone derivatives, diacylthiourea derivatives, thiadiazole derivatives from APA weresynthesized, and their structures were characterized by IR,1H NMR, MS, and elementalanalysis. Meanwhile, their antimicrobial activities and antitumor activities in vitro were alsoinvestigated. In the final, quantitative structure activity relationship (QSAR) of antibacterialactivities of the derivatives from APA were explored. This study was expected to guide thesynthesis of the active compounds.
     The antibacterial activities of the derivatives of amide, oxime ester, Shiff bases,dihydrazone, diacylthiourea, thiadiazole from APA were estimated by a disc paper method.Staphylococcus aureus (gram-positive bacteria) and Escherichia coli (Gram-negative bacteria)were selected as test species. The result shows the derivatives from APA displayed extensiveanti-bacterial activity against Staphylococcus aureus and Escherichia coli. Among them, oximeester derivatives3c (12.17mm),3d (10.00mm) and3f (10.33mm); Shiff bases derivatives4a(15.70mm),4b(17.00mm)and4c (16.70mm); dihydrazone derivatives5a (10.00mm) and5c(10.00mm); diacylthiourea derivatives6f (10.00mm); thiadiazole derivatives7f (10.66mm)exhibited excellent anti-bacterial activity against Escherichia coli, whereas, the diameter ofinhibition zone of reference Bromogeramine was7.90mm. Further investigation on thestructure antibacterial activity relationship is needed.
     The antitumor activities in vitro of the derivatives of amide, oxime ester, Shiff bases,dihydrazone, diacylthiourea, thiadiazole from APA were estimated by MTT method. Thehuman non-small cell lung cancer NCI-H460cells, human hepatoma SMMC-7721cells,human breast cancer MCF-7cells under the logarithmic growth phase were selected as testcells. The half inhibitory concentration (IC_(50)) was calculated according to improved Kou'smethod. When the IC_(50)<10μg/mL, the compound has the antitumor activity in vitro. The resultshows the derivatives from APA displayed extensive antitumor activities in vitro againstNCI-H460cells, SMMC-7721cells and MCF-7cells. Among them, the oxime ester derivative3k exhibited good antitumor activities in vitro against NCI-H460cells, SMMC-7721cells andMCF-7cells and their IC_(50)were closed to10μg/mL; the Shiff bases derivatives exhibitedexcellent antitumor activities in vitro against NCI-H460cells, SMMC-7721cells and MCF-7cells and their IC_(50)were closed to or less than10μg/mL, among the Shiff bases derivatives, thecompound4h exhibited good antitumor activities in vitro against NCI-H460cells and MCF-7cells and their IC_(50)were6.75μg/mL and5.58μg/mL respectively; the compound4i alsoexhibited good antitumor activities in vitro against MCF-7cells and its IC_(50)was5.19μg/mL.The promising results obtained from these new derivatives justify their consideration aspotential candidates.
     The lowest energy conformers of the derivatives of amide, oxime ester, Shiff bases,dihydrazone, diacylthiourea, thiadiazole from APA were optimized at the HF/6-31G (d) levelusing the Gaussian03W package of programs. The quantitative structure activity relationship(QSAR) corresponding to against Staphylococcus aureus and Escherichia coli activities werebuilt using the best multilinear regression in Codessa2.7.15. The statistical modelings revealthat against Escherichia coli activity was affected by the following descriptors: Max net atomiccharge for a N atom, Max net atomic charge, Min net atomic charge for a H atom, Max netatomic charge for a C atom, No. of occupied electronic levels/#of atoms; and againstStaphylococcus aureus activity was affected by the following descriptors: Min net atomiccharge for a N atom, Min net atomic charge for a C atom, Min net atomic charge for a H atom, Tot hybridization comp. of the molecular dipole, Image of the Onsager-Kirkwood solvationenergy. Such results are of great benefit to synthetic efforts to discover better compoundshaving practical uses.
引文
[1]程芝.天然树脂生产工艺学.北京:中国林业出版社,1996,1-136
    [2]哈成勇.天然产物化学与利用.北京:化学工业出版社,2003,53-54
    [3]李健,饶小平,商士斌等.松香多元酸的制备及其应用研究进展.化工进展,2010,29(11):2103-2107
    [4] L. Ruzicka,P. J. Ankersmit,B. Frank. Polyterpene und Polyterpenoide LXXIII. Anlagerung vonMaleins ure-anhydrid an Abietins ure und Dextro-pimars ure. Helvetica Chimica Acta,1924,15(1):1289-1294
    [5] O. Diels and K. Alder. Synthesen in der hydroaromatischen Reihe. XII. Mitteilung. Justus LiebigsAnnalen der Chemie,1930,490(1):243-257
    [6] J. H. Noah,A. W. John,V. L. Ray. A Preparation and Some of the Reactions of the Diels-Alder Adductsof Levopimaric Acid and Acrylonit[J]. Journal of Organic Chemistry,1961,26(8):2641-2643
    [7] P. H. Aldrich.Process for Separate on of Rosin Adducts from Mixtures with Rosin. US patent,1971,3562243
    [8] B. Ioan. Polymers from a Levopimaric Acid-Acrylic Acid Diels-Alder Adduct:Synthesis andCharacterization. Journal of Polymer Science Part A:Polymer Chemistry,2007,45(24):5979-5990
    [9]王宏晓.松香改性水性聚氨酯的合成研究.北京:中国林业科学研究院,2009,1-50
    [10] H. H. Wang,S. B. Shang,Y. B.Yin,et al.16-Isopropyl-5,9-dimethyltetracyclo-[10.2.2.01,10.04,9]hexadec-15-ene-5,14-dicarboxylic Acid Ethanol Hemisolvate. Acta Crystallographica Section E:Structure Reports Online,2009,E65,o1521
    [11]尹红梅,郭虹,徐峰等.马来海松酸的合成及应用研究.沈阳化工学院学报,1998,12(2):92-93
    [12] G. George,F. B. Slezak,N. E. Lawson. Preparation of Maleopimaric Acid. Industrial&EngineeringChemistry Product Research and Development,1973,12(4):326-327
    [13]刘治猛,沈敏敏,哈成勇等.马来海松酸缩水甘油酯及其制备方法.中国专利,2001,1297011A
    [14] X. P. Rao,Z. Q. Song,X. J. Yao,et al. Synthesis and Crystal Structure of Maleopimaric Acid. NaturalProduct Research,2008,22(10):854-859
    [15]宋湛谦,徐徐,商士斌等.富马海松酸的制备方法.中国专利,2009,200910033428
    [16] X. Xu, Z. Q. Song, S. B. Shang, et al.15-Hydroxyethyl-19-isopropyl-5,9-dimethyl-14,16-dioxo-15-azapentacyclo-[10.5.2.01,10.04,9.013,
    [17]nonadec-18-ene-5-carboxylic Acid. Acta Crystallographica Section E:Structure Reports Online,2009,E65,o2443
    [17] L. L.Wang,I. Yasuyuki,O. Hajime,et al. Determination of Fortified Rosin-Glycerin Ester SizingAgents in Paper by Reactive Pyrolysis-Gas Chromatography in the Presence of an Organic Alkali.Analytical Sciences,1998,14(2):431
    [18]张少华.富马松香胶的制备及使用.浙江化工,1996,3(27):40-41
    [19]哈成勇,袁金伦,夏建汉.马来海松酸乙烯酯/丙烯酰胺共聚物及其制法.中国专利,1997,1158863A
    [20] H. G. Boswell,G. H. Thomas, R. C. Houser. Modified Rosin Esters and Their Use in Pringting Inks.US patent,1992,5164446.
    [21] G. Hutter. Rosin Ester-Amide Support Resins for Acrylic Latex. US patent,1997,656679
    [22]陈学恒.改性松香水性油墨树脂的合成.化学世界,2005,46(6):344
    [23]肖多闻.两种水性油墨用新型聚酰胺树脂的合成研究.长沙:湖南大学,2007,1-125
    [24] U. S. Mishra,M. C. Shukla. Maleopimaric Acid Based Water Thinnable Coatings for AnodicElectrodeposition. Pigment and Resin Technology,1992,21(6):4-17
    [25]商士斌,张跃冬,王定选.马来海松酸酐合成酯多元醇反应的研究.林产化学与工业,1996,16(2):1-2
    [26]杨成武,谢晖,黄莉.马来海松酸新戊二醇酯多元醇的制备及性能.南京工业大学学报,2007,29(1):85-88
    [27] M. C. Shukla. Maleopimaric Acid Based Water Soluble Stoving Coating Compositions. Paintindia,1996,46(12):27-30
    [28]瞿金清,涂伟萍,陈焕钦.马来海松酸快干醇酸树脂涂料的研制.林产化学与工业,2002,22(1):59-62
    [29]赵娇娇,王久芬,张军科等.热熔型改性松香一醇酸树脂路标涂料的研制.化工生产与技术,2007(1):12-14
    [30]李春成,宋湛谦.双马来海松酸型聚(氨酯–酰胺亚胺)烘漆制备及性能.林产化学与工业,2000,20(1):41-42
    [31] M. A. Ayman,M. E.Shyma,K. F. Reem. New Vinyl Ester Resins Based on Rosin for Coating.Applications Reactive&Functional Polymers,2006,66(12):1596–1608
    [32] M. A. Ayman,M. E.Shyma,K. F. Reem. Synthesis of Unsaturated Polyester Resins Based on RosinAcrylic Acid Adduct for Coating Applications. Reactive and Functional Polymers,2007,67(6):549-563
    [33]谢晖.丙烯酸改性松香聚氨酯涂料的研究.北京:中国林科院,1997,1-30
    [34]唐爱新.松香-丙烯酸加成二元酸的制备及其应用.中国涂料,1996,96(1):26-29
    [35] T. Tanaka,Arakawa. Chemical Industry,Japan.Kokai Tokyo:Koho,1997,1-120
    [36]崔建国,樊平.马来松香胶粘剂的制备.广西化工,1991,47(2):47-49
    [37]黄莉,陆冬燕,谢晖.松香基丙烯酸酯核-壳共聚压敏胶的研制.中国胶粘剂,2006,15(02):58-61
    [38]冯练享.改性松香共聚PVB胶粘剂的研制.中国人造板,2007,35(09):35-37
    [39] R. O. Clinton. Maleimide Adduct of Levopimaric Acid and Derivatives. US patent,1964,3135749
    [40] H. S. Walter. Deritives of Maleopimaric Acid Useful as Nematocides: US patent,1972,3636215
    [41] R. Panda,H. Panda. Ammonolysis of Maleopimaric Acid. Paintindia,1987,3(11):25-27
    [42] S. C. Hess,M. Farah,S. Y. Eguchib. Synthetic Studies with Pinus Elliottiis Rosin Derivatives Oxidationof Maleopimaric Anhydride Methyl Ester and Trimethyl Fumaropimarate. Journal of the BrazilianChemical Societ,2000,11(1):59-63
    [43]王恒山,谢建武,潘英明等.马来海松酸系列衍生物的合成.精细化工,2005,22(11):878-879
    [44]王定选,吕宏斌,张健等.马来海松酸酐合成耐热电缆增塑剂的研究.林产化学与工业,1994,(ZK)
    [45] R. Panda, H. Panda. Mould Growth Inhibitor from Maleopimaric Acid. Chemistry and Industry ofForest Products,1995,15(1):40-42
    [46] Lee J S, Hong S.Synthesis of acrylic rosin derivatives and application as negative photoresist. EuropeanPolymer Journal,2002,38(2):387-392
    [47]钟海涛.松香基聚氧乙烯醚琥珀酸单酯磺酸钠的合成及性能.南京工业大学学报,2003,25(1):46-50
    [48]范洪波.一种新型水基防锈剂的研究.材料与表面处理,2004,63(11):62-64
    [49] C. Hansch, T. Fujita. p-s-p Analysis: A Method for the Correlation of Biological Activity andChemical Structure. Journal of the American Chemical Society,1964,86(8):1616-1626
    [50]安丽英,相玉红,张卓勇等.定量构效关系研究进展及其应用.首都师范大学学报,2006,27(3):52-57
    [51]郭宗儒.药物化学总论.北京:中国医药科技出版社,1994,1-108
    [52] H. R. Bakulh,R. Shyam, Asolekar.QSAR Models to Predict Effect of Ionic Strength on Sorption ofChlorinated Benzenes and Phenols at Sediment-Water interface.Water Research,2001,35(14):3391-3401
    [53] B. Jin,C. Liu,Q. Jin. Quantitative Structure-activity Relationship for Heterogeneous PhenolCompounds Using Zero Point Energy,Chinese Journal of Structurel Chemistry,2010,29(9):1353-1361
    [54] K. X. Qiu,H. D.Xie,Y. P. Guo,et al. QSAR Studies on the Calanolide Analogues as Anti-HIV-1Agents.Chinese Journal of Structurel Chemistry,2010,29(10):1477-1482
    [55] G. H. Jing, X. L. Li, Z. M. Zhou. Quantitative Structure-activity Relationship(QSAR)Study ofToxicity of Substituted Aromatic Compounds to Photobacterium Phosphoreum,Chinese Journal ofStructurel Chemistry,2010,29(8):1189-1196
    [56] S. C. Aleksandar.QSAR Models for Estimating Properties of Persistent Organic Pollutants Requiredin Evaluation of Their Environmental Fate and Risk.Chemosphere,2001,43(3):363-367
    [57]徐筱杰,侯廷军.计算机辅助药物分子设计.北京:化学工业出版社,2004,1-19
    [58]许禄,胡昌玉.应用化学图论.北京:科学出版社,2000,1-50
    [59]纪彩虹.定量构效关系的原理、方法及其研究进展.甘肃联合大学学报(自然科学版),2011,25(2):58-62.
    [60] D. Vesna,P. Nada. QSAR Study by1,2,4-Triazaoles Using Several Physicochemical DescriptorsMacedonian. Journal of Chemistry and Chemical Engineering,2009,28(1):79-89
    [61] P. M. Sivakumar,V. Prabhawathi,M. Doble. Antibacterial Activity and QSAR of Chalcones AgainstBiofilm-Producing Bacteria Isolated from Marine Waters. SAR and QSAR in Environmental Research,2010,21(3-4):247-263
    [62] S. Kovarich,E. Papa,J. Li, et al. QSAR Classification Models for the Screening of theEndocrine-Disrupting Activity of Perfluorinated Compounds. SAR and QSAR in EnvironmentalResearch,2012,1-14
    [63] X. J. You, H. Liu, G. Y. Yang,et al. Determination and QSAR Study on the Toxicity of SubstitutedPhenol against Qinghaiensis sp (Q67).Chinese Journal of Structural Chemistry,2009,28(10):1311-1316
    [64] Y. L. Gu,J. Q. Tao,Z. H.Fei,et al.A DFT-based Quantum Theoretic QSAR Study of NitrobenzenesToxicity to Tetrahymena Pyriformis.Chinese Journal of Structurel Chemistry,2010,29(1):86-92
    [65]崔毅,蒋军成,潘勇等.羧酸及其衍生物急性毒性的QSAR研究.环境科学与技术,2010,33(4):29-34
    [66] R. Fabiana, F. Marcia. QSAR Model of the Phototoxicity of Polycyclic AromaticHydrocarbons.Journal of Molecular Structure:THEOCHEM,2005,719(1-3):191-200
    [67]张庆友,许禄.分子三维投影法在苯酚类化合物构效关系研究中的应用.高等学校化学学报,2002,23(11):2125-2128
    [68] Y. Liu,J. N. Chen,J. S. Zhao et a1. Three-dimensional Quantitative Structure Activity Relationship(3D-QSAR) Analysis for in Vitro Toxicity of Chlorophenols to HepG2ceHs.Chemosphere,2005,60(6):791-795
    [69]唐桂刚,白乃彬.醛类化合物分子结构与大鼠急性毒性关系.环境科学,2000,21(5):89-93
    [70]许旋,罗一帆,向云彩.苯醛和含氮芳香化合物毒性与电子结构关系的研究.卫生研究,2004,3(1):105-107
    [71]林志芬,孔德洋,殷克东等.腈醛混合化合物对发光菌联合毒性的QSAR研究.环境化学,2005,24(3):296-301
    [72]李颖娇,叶非.定量构效关系在农药设计合成中的应用进展.农药科学与管理,2002,23(6):20-23
    [73] Z. D. Wang,J. Song,Z. J. Han,et al. Quantitative Structure Activity Relationship of Terpenoid AphidAntifeedants. Journal of Agricultural and Food Chemistry2008,56,11(3):61–66
    [74] Z. D. Wang,J. Song,J. Z. Chen, et al QSAR Study of Mosquito Repellents from Terpenoid with aSix-Member-Ring. Bioorganic&Medicinal Chemistry Letters,2008,18:2854–2859
    [75]陈海峰,董喜城,谷妍.抗小麦赤霉病类含氟农药的3D-QSAR.化学学报,2000,58(9):1074-1078
    [76]崔紫宁,张莉,黄娟等.含呋喃环双酰肼类衍生物的合成、杀虫活性及3D-QSAR研究.有机化学,2010,30(10):73-82
    [77]刘兴泉,许禄.拟除虫菊酯类农药结构-急性毒性的三维定量构效关系研究.浙江林学院学报,2002,19(4):337-341
    [78]柳爱平,陆爱军,黄明智.含硫(氧)肟醚化合物杀虫活性三维定量构效关系研究.高等学校化学学报,2005,26(3):464-466
    [79] A. Okazawa,M. Akamatsu,H. Nishiwaki, et al. Prediction of the Binding Mode of Imidacloprid andRelated Compounds to House-fly Head Acetylcholine Receptors Using Three-Dimensional QSARanalysis. Pesticide Science,1998,54(2):134-144
    [80] J. A. Calder,J. A. Wyatt,D. A. Frenkel,et al. CoMFA Validation of the Superposition of Six Classes ofCompounds which Block GABA Receptors Non-competitively. Journal of Computer-Aided MolecularDesign,1993,7(1):45-60
    [81] M. Akamatsu,Y. Ozoe,T. Ueno,et al. Sites of Action of Noncompetitive GABA Antagonists inHouseflies and Rats:Three-Dimensional QSAR Analysis. Pesticide Science,1997,49(4):319-332
    [82]苏华庆,王瑾玲,李爱秀等.嘧啶(氧)苯甲酸类除草剂的3D-QSAR研究.化学研究与应用,1999,11(6):626-629
    [83]杨光富,刘华银,杨秀凤等.以ALS为靶标的新除草剂的分子设计合成及生物活性-磺酰脲类和三唑并嘧啶-2-磺酰胺类ALS抑制剂的比较分子力场分析.中国科学(B辑),2000,30(2):160-166
    [84]杨蕾,王鹏.新型氯喹酸酯类除草剂的定量构效关系分析.清华大学自然科学(自然科学版),2004,44(3):323-325
    [85] S. Gayen.QSAR Study on Some Anti-HIV HEPT Analogues Using Physieochemical and TopologicalParameters. Bioorganic&Medicinal Chemistry,2004,12(6):1493-1503
    [86] X. P. Rao,Z. Q. Song,Z. D. Wang, et al. QSAR Study of SMMC7721Inhibitors from Diterpenoidswith a Dehydroabietyl Skeleton. Letters in Drug Design&Discovery,2012,9:177-184
    [87]夏树伟,毛雅斌,薛倩倩等.取代喹啉类化合物抗菌活性的定量构效关系及分子设计.高等学校化学学报,2011,32(10):2415-2420
    [88]林红卫,李志良.抗艾滋病新药吡喃酮类化合物的结构表征及其生物活性的定量预测.有机化学,2003,23(12):1370-1374
    [89] K. Roy, T. Leonard J. QSAR by LFER Model of Cytotoxicity Data ofAnti-HIV5-phenyl-1-phenylamino-1H-imidazole Derivatives Using Principal Component FactorAnalysis and Genetic Function Approximation. Bioorganic&Medicinal chemistry,2005,13(8):2967-2973
    [90]何嫦,黄蓉,盛柳钦.氟喹诺酮类药物与牛血清白蛋白结合的理论研究.广东化工,2011,38(10):226-231
    [91] H. P. Sun,J. Zhu,Y. D. Chen,et al. Docking Study and Three-Dimensional Quantitative Structure-Activity Relationship (3D-QSAR) Analyses and Novel Molecular Design of a Series of4-Aminoquinazolines as Inhibitors of Aurora B Kinase.Chinese Journal of Chemistry,2011,29(9):1785-1799
    [92] S. F. Zhang,Y. F. Fan,Z. Y. Shi,et al. DFT-based QSAR and Action Mechanism of Phenylalkylamineand Tryptamine Hallucinogens.Chinese Journal of Chemistry,2011,29(4):623-630
    [93] Y. Wu,F. Y. Wang,H. X. Yu,et al.3D-QSAR Study on the Inhibitory Activity of Flavonoids on PIM-1Kinase,Chinese Journal of Structurel Chemistry,2010,29(8):1147-1154
    [94]方浩,卢景芬,张礼和等.苯氧烷胺类ɑ1-肾上腺素受体拮抗剂三维定量构效关系.科学通报,2000,45(15):1630-1634
    [95]韩莹,屠树滋,吉念宁.香豆素磺酰脲类化合物降血糖活性的定量构效关系研究.计算机与应用化学,2004,21(5):786-788
    [96]肖景发,郭宗儒,郭彦伸等.二肽肽酶Ⅳ抑制剂的三维定量构效关系研究.化学学报,2005,30(8):2l3-2l6
    [97]柴宝山,杨吉春,刘长令.新型邻苯二甲酰胺类杀虫剂的研究进展.精细化工中间体,2007,37(1):1-8
    [98]黄明智,罗晓艳,任叶果等.N-(4,6-二取代嘧啶-2-基)苯甲酰胺类化合物的合成与杀菌活性.农药学学报,2007,9(1):76-79
    [99]黄姣,柏连阳,刘香英.酰胺类除草剂及其安全剂研究进展.江西植保.2005,28(4):163-165
    [100]刘新华,白林山,王世犯.5-(2-羟基苯基)-3-甲基吡唑酰胺衍生物的合成与杀菌活性.合成化学,2006,14(2):147-149
    [101] E. H. Pommer,B.Girgensohn,K. H. Koning,et al. Development of New Systemic Fungicides withCarboxamide Structure. Kemia-Kemi,1974,l(9):617-618
    [102] K. Yabutani,K. Ikeda,Hatta, S. Fungicidal benzoylanilide derivatives. DE Patent,1978,2731522
    [103] G. H. Alt,W. G. Phillip,J. K. Pratt, et al. Substituted Thiazoles and Their Use as Fungicides.USPatent,1991,0371950
    [104] B. V. Schmeling,M. Kulka. Systemic Fungicidal Activity of1,4-Oxathiin derivation.Science,1966,152(3722):659-660
    [105]李勤耕,骆永鹏,陈捷等.叠氮法合成谷氨酰胺类化合物及其抗肿瘤活性.合成化学,2002,25(5):157-160
    [106]张三奇,左淼,吕社民等.水杨酰胺类抗肿瘤化合物及其合成方法和用途.中国专利,2011,201110112464
    [107]饶小平.松香树脂酸衍生物的合成、表征及生物活性研究.中国林业科学研究院博士论文,2007,1-138
    [108]尹延柏.蒎酮酸衍生物的合成、表征及生物活性研究.中国林业科学研究院博士论文,2009,1-128
    [109] J. H. Noah, A. W. John, V. L. Ray. A Preparation and Some of the Reactions of the Diels-AlderAdducts of Levopimaric Acid and Acrylonit. Journal of Organic Chemistry,1961,26(8):2641-2643
    [110] J. H. Noah,V. L. Ray. Preparation of Acrylic Modified Rosin. Industrial&Engineering ChemistryProduct Research and Development,1972,11(2):200-202
    [111]武文洁,赵小华,温佩.丙烯酸改性松香的合成工艺研究.林业科技,2007,32(1):59-61
    [112] A. W. Bauer, D. M. Perry, W. M. M. Kirby. Single Disc Antibiotic Sensitivity Testingof Staphylococci. The Archives of Internal Medicine,1959,04(2):208-216
    [113] W. M. Li. New Therapeutic Aspects of Flavones: the Anticancer Properties of Scutellaria and ItsMain Active Constituents Wogonin Baicalein and Baicalin. Cancer Treatment Reviews,2009,35(1):57-68
    [114]黄银久,宋宝安,金林红等.SRB法和MTT法抗肿瘤药物筛选结果相关性研究.生物学杂志,2009,26(04):13-16
    [115]徐淑云.药理实验方法学.北京:人民卫生出版社,2010,1-1354
    [116] H. W. Zhang,Y. Yang,K. Zhang,et al. Wogonin Induced Differentiation and G1Phase Arrest ofHuman U-937Leukemia Cells via PKCδ Phosphorylation. European Journal of Pharmacology,2008,591:7-12
    [117] J. A. Ma,R. Q. Huang,Y. X. Chai. Synthesis and Insecticidal Activities of New Pyrethroid AcidOxime Ester Derivatives. Progress in Natural Science,2002,12(4):271-277
    [118] G.Y. Jin,Y. C. Li,Z. F. Liu,et al. Synthesis and Biological Activity of Oximino-phosphorothioateContaining1,2,4-Triazole. Chinese Journal of Applied Chemistry,1997,14(6):5-8
    [119] X. H. Liu,L. P. Zhi,B. A. Song, et al. Synthesis,Characterization and Antibacterial Activity ofNew5-Aryl Pyrazole Oxime Ester Derivatives. Chemical Research in Chinese Universities,2008,24(4):454-458
    [120] T. G. Li, J. P. Liu, T. B. Han, et al. Synthesis and Herbicidal Activity ofα-Phenylsulfonylcyclododecanone Oxime Esters. Chinese Journal of Organic Chemistry,2009,29(6):898-903
    [121] G. W. William,M. Roderick,E. R. Sally,et al. The Synthesis of Novel Imidazolinones as PotentialFungicides. Synthesis and Chemistry of Agrochemicals VI,2001,800(29):314-326
    [122] V. Stefan,P. Kathleen,P. Muriel,et al. Inhibition of Cellobiohydrolases from Trichoderma Reesei.Synthesis and Evaluation of Some Glucose-, Cellobiose, and Cellotriose-derived Hydroximolactamsand Imidazoles. Helvetica Chimica Acta,1999,82(7):963-980
    [123] B. A. Song,D. Y. Hu,X. H. Liu,et al. Synthesis and Anticancer Activity of2,3,4-Trimethoxyacetophenoxime Ester Containing BenzothiazoIe Moiety. Chinese Journal of Chemistry,2005,23:1236-1240
    [124] M. B. Steven,B. Frank,C. Frederick,et al. Design of [R-(Z)]-(+)-α-(Methoxyimino)-1-azabicyclo
    [2.2.2]octane-3-acetonitrile (SB202026), a Functionally Selective Azabicyclic Muscarinic M1AgonistIncorporating the N-Methoxy Imidoyl Nitrile Group as a Novel Ester Bioisostere. Journal ofMedicinal Chemistry,1997,40(26):4265-4280
    [125] A. A. Bekhit,H. M. Abdel-Rahman,A. A. Guemei. Synthesis and Biological Evaluation of SomeThiazolyl and Thiadiazolyl Derivatives of1H-pyrazole as Anti-inflammatory AntimicrobialAgents. European Journal of Medicinal Chemistry,2008,43(3):456-463
    [126]马军安,黄润秋,冯磊等.取代苯甲醛肟羧酸酯的合成及生物活性研究(IV)--拟除虫菊酸4-二甲(乙)氨基苯甲醛肟酯的合成及生物活性.农药学学报,1999,1(3):8-13
    [127]杨丽敏,华水波,刘钊杰.含氯羧酸吡唑醛肟酯化合物的合成及生物活性.应用化学,2005,22(8):829-834
    [128]杨松,宋宝安,刘新华等.2-(苯并噻唑-2-基硫代)-1-(2,3,4-三甲氧)苯乙酮肟酯和肟醚新化合物合成与抗烟草花叶病毒活性研究.有机化学,2005,25(9):11l6-1120
    [129]孟香清,梁晓梅,芮昌辉等.12-(取代苯氧异丁酰氧亚氨基)-1,15-十五内酯的合成及除草活性.农药学学报,2003,5(2):33-38
    [130] H. Schiff. Mittheilungen aus Dem universita Tslaboratorium in Pisa: Eine Neue Reihe OrganischerBasen. Justus Liebigs Annalen der Chemie,1864,131:118-119
    [131] P. Przybylski,A. Huczynski,K. Pyta,et al. Biological Properties of Schiff Bases and AzoDerivatives of Phenols. current organic chemistry,2009,13(2):124-148
    [132] Z. Guo,R. Xing,S. Liu, et al. Antifungal Properties of Schiff Bases of Chitosan, N-substitutedChitosan and Quaternized Chitosan. Carbohydrate Research,2007,342(10):1329-1332
    [133] L. Shi,H. M. Ge,S. H. Tan,et al. Synthesis and Antimicrobial Activities of Schiff Bases Derivedfrom5-Chloro-salicylaldehyde. European Journal of Medicinal Chemistry,2007,42(4):558-564
    [134] M. J. Hearn,M. H. Cynamon. Design and Synthesis of Antituber Culars: Preparation and EvaluationAgainst Mycobacterium Tuberculosis of an Isoniazid Schiff Base. Journal of AntimicrobialChemotherapy,2004,53:185-191
    [135]宋红,毛会玉,石德清.2-(4,6-二甲氧基嘧啶-2-氧基)苯亚甲基]-2-芳氧乙酰腙的合成与除草活性.应用化学,2011,28(10):1173-1178
    [136]高元磊,林选福,韩菲菲等.N-[3-(4-喹唑啉基)氨基-1H-吡唑-4-甲酰基]醛腙类衍生物的合成及抗菌活性研究.有机化学,2011,31(10):1648-1652
    [137]韩春蕊.枞酸型树脂酸分离及其衍生物合成与生物活性研究.中国林业科学研究院博士论文,2008,1-120
    [138]杜子秀,叶文法,汪炎钢.相转移催化法合成二芳基对苯双氧乙酰基二硫脲类衍生物.化学试剂,2003,25(1):23-24
    [139]胡昌秋,秦敬东,胡冰等.N-(3-氟苯甲酰基)-N′-芳基硫脲衍生物的合成及其生物活性.合成化学,2010,18(1):44-47
    [140]吕献海,张袖丽,唐文明.肉桂酰基硫脲衍生物的合成及杀菌活性.应用化学.2008,25(11):1286-1289
    [141]薛思佳,段李平,朱剑明等.含取代嘧啶环的戊菊酰基硫脲及其稠环化合物的合成和除草活性测定.有机化学,2004,24(6):686-690
    [142] S. Joshi,N. Khosla, D. Khare, et al. Synthesis and in Vitro Study of Novel Mannich Bases asAntibacterial Agents. Bioorganic&Medicinal Chemistry Letters,2005,15(1):221-226
    [143] K. Umetani,T. Shimaoka,Y M.amaguchi,et al. Preparation of4-Cyclop ropyl-1,2,3-thiadiazoleCompounds Agrohortcultural Plant Disease Controlling Agents. WO patent,2006,2006098128
    [144]魏学,郑玉国,薛伟等.新型1,2,4-三唑并[3,4-b]-1,3,4-噻二唑类衍生物合成及其抗病毒活性.合成化学,2010,l8(5):595-598
    [145] W. G. Duan,X. R. Li, X. L. Ma,et al. Synthesis and Herbicidal Activity of5-Dehydroabietyl-1,3,4-thiadiazole Derivatives.Chemistry and Industry of Forest Products,2011,31(1):1-8
    [146] M. J. S. Dewar,A. J. Holder,R. D. Dennington,et al. AMPAC9.1. KS, Shawnee: Semichem,Inc.,2004,1-25
    [147] A. R. Katritzky,M. Karelson,V. S.Lobanov,et al. CODESSA2.7.10. KS, Shawnee: Semichem,Inc.,2004,1-120
    [148] Semichem.The University of Florida. Reference Manual. KS, Shawnee,1997,1-45
    [149] A. R. Katritzky,D. A. Dobchev,I.Tulp,et al. QSAR Study of Mosquito Repellents Using CodessaPro. Bioorganic&Medicinal Chemistry Letters,2006,16(8):2306-2311.
    [150]盛骤,谢式千,潘承毅.概率论与数理统计.北京:高等教育出版社,2001,1-207

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