1.A new amide alkaloid from Cannabis Fructus.
Rui-Wen XU ; Yong-Zhuo ZHAO ; Yu-Guo MA ; Hui LIU ; Yan-Jun SUN ; Wei-Sheng FENG ; Hui CHEN
China Journal of Chinese Materia Medica 2025;50(11):3043-3048
Eight amide alkaloids(1-8) were isolated from the 70% ethanol extract of Cannabis Fructus using silica gel column chromatography, MCI column chromatography, and semi-preparative high-performance liquid chromatography(HPLC). Their structures were identified as hempspiramide A(1), N-[(4-hydroxyphenyl)ethyl]formamide(2), N-acetyltyramide(3), N-trans-p-coumaroyltyramine(4), N-trans-caffeoyltyramine(5), N-trans-feruloyltyramine(6), N-cis-p-coumaroyltyramine(7), N-cis-feruloyltyramine(8) by using spectroscopic methods such as NMR and MS. Among these compounds, compound 1 was a new amide alkaloid, while compounds 2 and 3 were isolated from Cannabis Fructus for the first time. Some of the isolates were assayed for their α-glucosidase inhibitory activity. Compounds 5-7 displayed significant inhibitory activity against α-glucosidase with IC_(50) values ranging from 1.07 to 4.63 μmol·L~(-1).
Cannabis/chemistry*
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Alkaloids/pharmacology*
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Amides/isolation & purification*
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Drugs, Chinese Herbal/isolation & purification*
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Fruit/chemistry*
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Molecular Structure
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alpha-Glucosidases/chemistry*
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Chromatography, High Pressure Liquid
2.Qualitative and quantitative analysis of dodecatetraenamides A, B in Asari Radix et Rhizoma.
De-mei XIE ; Guang-xue LIU ; Feng XU ; Ming-ying SHANG ; Zi-wei ZHANG ; Xuan WANG ; Shao-qing CAI
China Journal of Chinese Materia Medica 2015;40(4):691-699
To develop an analytic method for qualitative and quantitative analysis of dodecatetraenamides A, B in 42 samples of two official species of Asari Radix et Rhizoma( ARR) (37 samples of Asarum heterotropoides var. mandshuricum with different collection time and 5 samples of Asarum sieboldiivar. seoulense). The HPLC-IT-TOF-MS/MS methods for the qualitative and UPLC-PDA methods for the quantitative analysis were established. Dodecatetraenamides A, B were identified by comparing the retention time, UV absorption spectrum and quasi-molecular ion peak [ M + H]+ with the reference compound using HPLC-IT-TOF-MS/MS. The content of dodecatetraenamides A and B in ARR were determined by UPLC-PDA. The separation was successfully carried out on a ACQUITY UPLC BEH C18 (2.1 mm x 100 mm, 1.7 µm) column eluted with mobile phases of water (A) and acetonitrile (B) in gradient program (0-3 min, 35% B; 3-5 min, 35%-36% B; 5-6 min, 36%-43% B; 6 min-11 min 43% B; 11-12 min, 43%-100% B). The column temperature was 45 °C, and the detection wavelength was set at 254 nm. The flow rate was 0.6 mL · min(-1). On one level mass spectrometry scanning, the results showed that the quasi-molecular ion [M + H] + of both dodecatetraenamides A and B were m/z 248.20. The quantitative method with UPLC-PDA has made the baseline separation of the constituents, which were reported as mixtures in the most literatures. The average recovery of dodecatetraenamides A and B were 97.90% and 99.86%, the relative standard deviation were 0.4% and 1.1%, respectively. The contents of dodecatetraenamides A, B in all ARR samples was in the range of 0.11-3.89 and 0.24-6.65 mg · g(-1). Their contents reduced with the extension of storage time. Compared with the samples of 2013, the average content of the two constituents in the samples collected in year 2002-2003 reduced 34% and 36%, respectively (P < 0.05). Compared the A. sieboldii var. seoulense and A. heterotropoides var. mandshuricum with the same collective time and production area, the average contents of the two constituents in latter were up to (1.59 ± 0.75) mg · g(-1) and (2.90 ± 1.17) mg · g(-1), respectively, significantly higher than that in A. sieboldii var. seoulense (dodecatetraenamide A were (0.78 ± 0.52) mg · g(-1), dodecatetraenamide B were (1.69 ± 0.83) mg · g(-1)) (P < 0.05). The content of the dodecatetraenamide A in overground part was in the range of 0.11-0.33 mg · g(-1), dodecatetraenamide B was 0. 24-0.60 mg · g(-1), which were much lower than that of the underground part of ARR (dodecatetraenamide A was in the range of 0.73-3.89 mg · g(-1), dodecatetraenamide B was 2.11-6.24 mg · g(-1)). The method was certified to be simple, accurate and reliable and could be used for qualitative and quantitative analysis of dodecatetraenamide A and B in different species of ARR, also can be used for the comprehensive quality control of traditional Chinese medicine, Asari Radix et Rhizoma.
Amides
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chemistry
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Asarum
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chemistry
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Chromatography, High Pressure Liquid
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Drugs, Chinese Herbal
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chemistry
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isolation & purification
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Mass Spectrometry
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Molecular Structure
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Rhizome
;
chemistry
3.A new phenolic amide glycoside from Cimicifuga dahurica.
Fan ZHANG ; Li-Feng HAN ; Gui-Xiang PAN ; Shuang PENG ; Ndagijimana ANDRE
Acta Pharmaceutica Sinica 2013;48(8):1281-1285
A new phenolic amide glycoside, cimicifugamide A (1) along with four known compounds, trans-feruloyl tyramine 4-O-beta-D-glucopyranoside (2), (+)-isolariciresinol 3-O-beta-D-glucopyranoside (3), cimidahurine (4), and 24-epi-7, 8-didehydrocimigenol-3-O-beta-D-xylopyranoside (5) were isolated from the rhizomes of Cimicifuga dahurica. Compound 3 was identified as a lignan and has been obtained from Cimicifuga genus for the first time. The structure of compound 1 was elucidated by IR, UV, HR-MS and NMR spectroscopic methods.
Amides
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chemistry
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isolation & purification
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Cimicifuga
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chemistry
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Glycosides
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chemistry
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isolation & purification
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Lignans
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chemistry
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isolation & purification
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Molecular Structure
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Phenols
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chemistry
;
isolation & purification
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Plants, Medicinal
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chemistry
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Rhizome
;
chemistry
4.Phenolic and amide constituents from Lycianthes marlipoensis.
China Journal of Chinese Materia Medica 2011;36(18):2507-2510
Ten known phenolic compounds including [4]-gingerol (1), [6]-gingerol (2), [10]-gingerol (3), (3S,5S)-3,5-dihydroxy-1-(4-hydroxy-3-methoxyphenyl) decane (4), (3R,5S) -3, 5-dihydroxy-1-(4-hydroxy-3-methoxyphenyl) decane (5), [6]-shogaol (6), [10]-shogaol (7), gingerenone A (8), hexahydrocurcumin (9), and (3R,5R)-3,5-dihydroxy-1,7-bis(4-hydroxy-3-methoxyphenyl) heptane (10), and seven amides including piperine (11), isochavicine (12), isopiperine (13), N-trans-p-coumaroyl tyramine (14), N-trans-feruloyl tyramine (15), N-trans-p-coumaroyl octopamine (16), N-trans-feruloyl octopamine (17), were isolated and identified from the roots of Lycianthes marlipoensis. Compounds 1-13 and 17 were isolated from the genus Lycianthes for the first time.
Amides
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chemistry
;
isolation & purification
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Chromatography
;
methods
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Magnetic Resonance Spectroscopy
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methods
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Phenols
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chemistry
;
isolation & purification
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Plant Extracts
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chemistry
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isolation & purification
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Plant Roots
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chemistry
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metabolism
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Solanaceae
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chemistry
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metabolism
5.Studies on flavonoids and amides from herbs of Solanum lyratum.
Yan REN ; Li SHEN ; Shengjun DAI
China Journal of Chinese Materia Medica 2009;34(6):721-723
OBJECTIVETo investigate the chemical constituents in 95% alcohol extract of Solanum lyratum.
METHODThe compounds were isolated by column chromatography over silica gel, and purified by Sephadex LH-20 column chromatography and preparative TLC. The structures were elucidated on the basis of physicochemical properties and spectral data.
RESULTEleven compounds were isolated and identified as: formononetin (1), vanillic acid (2), genistein (3), apigenin (4), N-trans-feruloyltyramine (5), N-p-coumaroyltyramine (6), daidzein (7), caffeic aicd (8), protocatechuic acid (9), daidzin (10), and N-trans-feruloyl-3-methyldopamine (11).
CONCLUSIONFor the first time, compound 11 was separated from Solanaceae plant, and compounds 5 and 10 were isolated from Solanum, and compounds 1, 3, 4, 7 and 9 were obtained from this plant for the first time.
Alcohols ; chemistry ; Amides ; analysis ; isolation & purification ; Flavonoids ; analysis ; isolation & purification ; Plants, Medicinal ; chemistry ; Solanum ; chemistry
6.Studies on chemical constituents of Prunella vulgaris.
Xiao-Jie GU ; You-Bin LI ; Ping LI ; Shi-Hui QIAN ; Jin-Ao DUAN
China Journal of Chinese Materia Medica 2007;32(10):923-926
OBJECTIVETo study the chemical constituents of Prunella vulgaris.
METHODTo separate the constituents of P. vulgaris by using various kinds of chromatography and identify their structures on the basis of spectral analysis.
RESULTSeven compounds were isolated from the spikes of P. vulgaris. Their structures were established as autantiamide acetate (1), rhein (2), tanshinone I (3), danshensu (4), stigmast-7, 22-dien-3-one (5), 3, 4, alpha-trihydroxy-methyl phenylpropionate (6), butyl rosmarinate (7).
CONCLUSIONCompounds 1-4 were isolated from this genus for the first time.
Amides ; chemistry ; isolation & purification ; Anthraquinones ; chemistry ; isolation & purification ; Chromatography, High Pressure Liquid ; Diterpenes, Abietane ; Flowers ; chemistry ; Lactates ; chemistry ; isolation & purification ; Magnetic Resonance Spectroscopy ; Phenanthrenes ; chemistry ; isolation & purification ; Plants, Medicinal ; chemistry ; Prunella ; chemistry
7.Amides from the stems of Uvaria kweichowensis.
Qiong-ming XU ; Yan-li LIU ; Bao-hua ZHAO ; Li-zhen XU ; Shi-lin YANG ; Shao-hua CHEN
Acta Pharmaceutica Sinica 2007;42(4):405-407
Uvaria kweichowensis is a folk nongovernmental herb used to treat cure inflammation and tumour in the Southwest area of China. During the course of our investigation for antitumour agents from the stems of Uvaria kweichowensis, six amides were obtained by means of solvent extraction, chromatography on silica gel and Sephadex LH-20 repeatedly. And their structures were identified as uvariadiamide (1), cepharanone (2), aristololactam A II (3), enterocarpam II (4), aristololactam A Ia (5), and 4,5-dioxodehydroasimilobine (6) on the basis of chemical methods and spectral analyses (EI-MS, 1H NMR, 13C NMR). Among them, compound 1 is a new compound; the other compounds were obtained from this plant for the first time.
Amides
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chemistry
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isolation & purification
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Aristolochic Acids
;
chemistry
;
isolation & purification
;
Magnetic Resonance Spectroscopy
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Molecular Structure
;
Plant Stems
;
chemistry
;
Plants, Medicinal
;
chemistry
;
Spectrometry, Mass, Electrospray Ionization
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Uvaria
;
chemistry

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