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1.
The EtOH extract from the leaves of Oxandra sessiliflora R. E. Fries (Annonaceae) was partitioned using hexane and CH2Cl2. After several chromatographic steps, caryophyllene oxide and spathulenol were isolated from hexane phase while, from CH2Cl2 phase, we isolated (E)-phytol, spathulenol, 4β,10α-dihydroxyaromadendrane, 1β,6α-dihydroxyeudesm-4(15)-ene, and 4α,7β,10α-trihydroxyguai-5-ene, the latter being a new sesquiterpene derivative. Additionally, a mixture of steroids (campesterol, sitosterol, and stigmasterol) was obtained from the CH2Cl2 phase. The isolated compounds were characterized by mass spectrometry and analysis of their 1H and 13C NMR spectroscopic data, including bidimensional analysis.  相似文献   

2.
Two new unsymmetric tetracyclic triterpenoids onocer-7-ene-3α,21β-diol and onocer-7-ene-3β,21α-diol together with sitosterol, δ-amyrin and δ-amyrone have been isolated from Cissus quadrangularis. The structures of the new compounds were elucidated on the basis of 1H NMR, mass spectral and chemical evidence.  相似文献   

3.
Uncertainties surrounding the structures of the Δ7-sterols in the seeds of Cucurbita maxima have been resolved. Seven components were found by TLC, GLC, HPLC, mass spectrometry and 1H NMR. They were 24β-ethyl-5α-cholesta-7,22,25(27)-trien-3β-ol, 24β-ethyl-5α-cholesta-7,25(27)-dien-3gb-ol, avenasterol, spinasterol, 24-dihydrospinasterol, 24ζ-methyllathosterol and 25(27)-dehydrofungisterol. The 1H NMR spectra indicated that the sterols with an ethyl substituent at C-24 occurred in the absence of their C-24 epimers. This seems to be the first instance of the detection of 25(27)-dehydrofungisterol in a higher plant.  相似文献   

4.
Malignant gliomas are common and aggressive brain tumours in adults. The rapid proliferation and diffuse brain migration are the main obstacles to successful treatment. Here, we show 25(R)-spirostan-3β,5α,6β,19-tetrol, a polyhydroxy steroid, is capable of suppressing proliferation and migration of C6 malignant glioma cells in a concentration-dependent manner. The compound 25(R)-spirostan-3β,5α,6β,19-tetrol was synthesised by seven steps starting from diosgenin in 8.55% overall yield. The structures of the synthetic compounds were characterised by infrared (IR), 1H nuclear magnetic resonance (NMR), 13C NMR spectra and EA.  相似文献   

5.
Three new germacranolides, including two heliangolides (niveusin C-2′,3′-epoxide and 1,2-dehydroniveusin C-2′,3′-epoxide) and a germacrolide (3β-hydroxy-8β-epoxyangeloyloxycostunolide-1β,10α-epoxide) were isolated from Viguiera microphylla. Their structures were established by spectroscopic analyses, including extensive 1H NMR and 13C NMR decoupling experiments and chemical transformations. X-ray diffraction analysis confirmed the structure of niveusin C-2′,3′-epoxide.  相似文献   

6.
Sebiferenic acid, isolated from the bark of Sapium sebiferum, has been characterized as 2α,3β-dihydroxytaraxer-14-en-28-oic acid on the basis of 1H NMR, 13C NMR and mass spectral evidence and chemical transformations. The structure of sebiferic acid has been revised.  相似文献   

7.
24-Methyl-5α-cholest-7-en-3β-ol (24-methyllathosterol) isolated from the seed oil of Helianthus annuus was shown to have 24α-configuration by 1H NMR spectroscopy. The stereochemistry at C-24 of some other 24-alkylsterols isolated from this plant material also was determined.  相似文献   

8.
Three new bridged 14β,26-epoxy-C-homo-pentacyclic triterpenes isolated from Primula rosea have been shown to be 14β,26-epoxy-serratane-3,21-dione, 21α-hydroxy-14β,26-epoxy-serratane-3-one and 21β-hydroxy-14β,26-epoxy-serratane-3-one, respectively, on the basis of 1H NMR, 13C NMR and mass spectral and chemical evidence.  相似文献   

9.
A novel polyhydroxylated C29-sterol, 25ξ-methyl-22-homo-5α-cholest-7,22-diene-3β,6β,9α-triol, designated globosterol (1), together with one known tetrahydroxylated ergosterol (22E, 24R)-ergosta-7,22-diene-3β,5α,6β,9α-tetraol (2) has been isolated from the cultures of an endophytic fungus, Chaetomium globosum ZY-22 originated from the plant Ginkgo biloba. The structures and relative configurations of 1 and 2 were established on the basis of extensive spectroscopic analyses including 1D and 2D NMR (1H-1H COSY, HSQC, HMBC, and NOESY) experiments and comparison with the literature. Globosterol (1) possesses an unprecedented 25-methyl Δ22-C10-side chain and Δ7-3β,6β,9α-hydroxy-steroid nucleus, which represents the first example for C29-steroids of the group.  相似文献   

10.
3α-Tigloyloxytropane-[14CO] [N-14Me], ratio 1·6:1 and valtropine-[14CO] [N-14Me], ratio 1·75:1 were separately fed via cotton wicks to 4-month-old Datura innoxia plants. After 8 days the root alkaloids 3α-tigloyloxytropane, 3α,6β-ditigloyloxytropane and 3α,6β-ditigloyloxytropan-7β-ol were isolated and the distribution of radioactivity in the acid and alkamine moieties was determined by hydrolysis. The precursor ratios were not maintained in the isolated ditigloyl esters, a result which does not support our hypothesis that the ditigloyl esters are formed by the progressive hydroxylation of 3α-tigloyloxytropane.  相似文献   

11.
Datura innoxia plants were wick fed with angelic acid-[1-14C] and l-isoleucine-[U-14C] to act as a positive control. After 7 days the root alkaloids 3α-tigloyloxytropane, 3α,6β-ditigloyloxytropane, and 3α,6β-ditigloyloxytropan-7β-ol were isolated and it was determined that angelic acid is not a precursor for the tigloyl moiety of these alkaloids. Tiglic acid-[1-14C] which was fed via the roots to hydroponic cultures of Datura innoxia, was incorporated to a considerable degree after 8 days.  相似文献   

12.
Datura innoxia plants were wick fed with (±)-2-methylbutyric acid-[1-14C] and harvested after 7 days. The root alkaloids 3α,6β-ditigloyloxytropane and 3α,6β-ditigloyloxytropan-7β-ol were isolated and degraded. In each case the radioactivity was located in the ester carbonyl group indicating that this acid is an intermediate in the biosynthesis of tiglic acid from l-isoleucine. On the other hand, (±)-2-hydroxy-2-methylbutyric acid-[1-14C], which was fed to hydroponic cultures of Datura innoxia alongside isoleucine[U-14C] positive control plants, is not an intermediate.  相似文献   

13.
α,β-Dipyridyl isolated from Nicotiana tabacum plants which had been fed anatabine-[2′-14C, 13C], and then allowed to dry in air for 20 days was radioactive (82% specific incorporation)An examination of its 13C NMR spectra established that it was enriched only at C-2, indicative of its direct formation from anatabineThe labelled anatabine was also fed to Nglauca and Nglutinosa plants, which were extracted immediately after harvestingIn these experiments no radioactive α,β-dipyridyl was detected, suggesting that α,β-dipyridyl is an artifact produced by the oxidation of anatabine in the drying leaves of tobaccoAnabasine isolated from the Nicotiana species which had been fed anatabine-[2′- 14C, 13C] was unlabelled, indicating that none of this alkaloid is formed by the reduction of anatabine.  相似文献   

14.
It has been shown that the cultured cells of Digitalis purpruea are capable of transforming progesterone (I) to 5α-pregnane-3,20-dione (II), 5α-pregnan-3β-ol-20-one (III), its glucoside (IV), 5α-pregnane-3β,20α-diol (V), its glucoside (VI), 5α-pregnane-3β,20β-diol (VII), its glucoside (VIII), Δ4-pregnen-20α-ol-3-one (IX), its glucoside (X), Δ-pregnen-20β-ol-3-one (XI) and its glucoside (XII). 5α-Pregnan-3β-ol-20-one glucoside (IV), 5α-pregnane-3β,20α-diol glucoside (VI), 5α-pregnane-3β,20β-diol glucoside (VIII), Δ4-pregnen-20α-ol-3-one glucoside (X) and Δ4-pregnen-20β-ol-3-one glucoside (XII) have been found for the first time as new metabolises by plant tissue cultures. A scheme for the biotransformation of progesterone (I) has been proposed, and the reduction and glucosidation activities distinctly have been observed in these cultured cells.  相似文献   

15.
From Acnistus breviflorus the new 27-hydroxy-5β,6β-epoxy-1-oxo-(22R)-witha-24-enolide (2,3-dihydrojaborosalactone A) as well as seven known withanolides, withaferin A, 2,3-dihydrowithaferin A, 6α-chloro-5β-hydroxywithaferin A, 5,6-deoxywithaferin A, jaborosalactone A, jaborosalactone D and jaborosalactone E were isolated and characterized by means of spectroscopic (1H NMR, 13 C NMR and mass spectral) methods. Depending on the extraction solvent (methanol or ethanol), a known artifact (3β-methoxy-2,3-dihydrowithaferin A) and the new 5α-methoxy-4,5-dihydrojaborosalactone B and 5α-ethoxy-4,5-dihydrojaborosalactone B were also isolated and characterized.  相似文献   

16.
Sterols were isolated from ten mushrooms, Hygrocybe punicea, Lampteromyces japonicus, Leucopaxillus giganteus, Lentinus edodes, Flammulina velutipes, Amanita caesarea, Coprinus atramentarius, Russula foetens, R. nigricans and R. senecis. The compositions of the sterol fractions were determined by GLC, combined GC/MS, and 1H NMR. Ergosterol was present in all the mushrooms. Other sterols found were 5α-cholest-7-en-3β-ol and ergosta-5,7-dien-3β-ol. Ergosta-5,8,22-trien-3β-ol was isolated from F. velutipes.  相似文献   

17.
The synthesis of 3β-hydroxy-androsta-5,7-dien-17-one from 3β-hydroxy-androst-5-en-17-one (dehydroepiandrosterone, DHEA) via microbial 7α-hydroxylation has been accomplished. At the first stage, 3β,7α-dihydroxy-androst-5-en-17-one was obtained in high yield (71.2%) using a strain of Gibberella zeae VKM F-2600, which was first applied for DHEA conversion. The further route included the substitution of 7α-hydroxyl group with chlorine followed by a dehydrochlorination stage, and required minimal purifications of the intermediate products. The steroids obtained at every step were characterized by TLC,1H NMR, MS, UV- and IR-spectrometry.The combination of microbial and chemical steps ensured 54.6% yield of the target 3β-hydroxy-androsta-5,7-dien-17-one from DHEA and can be applied for obtaining novel vitamin D derivatives.  相似文献   

18.
It has been shown that the cultured cells of Nicotiana tabacum “Bright Yellow” are capable of transforming testosterone to Δ4-androstene-3, 17-dione, 5α-androstan-17β-ol-3-one, 5α-androstane-3β, 17β-diol, its dipalmitate and 3- and 17-monoglucosides, epiandrosterone, its palmitate and glucoside, testosterone glucoside. 5α-Androstane-3β, 17β-diol dipalmitate and 3- and 17-monoglucosides, epiandrosterone palmitate and glucoside, and testosterone glucoside have been found for the first time as metabolites of testosterone in plant systems. Δ4-Androstene-3,17-dione was converted to testosterone. 5α-Androstan-17β-ol-3-one, which has been recognized as an active form of testosterone in mammals, was also detected. It has also been demonstrated that [4-14C]testosterone is actively incorporated in these transformations.  相似文献   

19.
The aim of the present study was to identify the enzymes in human liver catalyzing hydroxylations of bile acids. Fourteen recombinant expressed cytochrome P450 (CYP) enzymes, human liver microsomes from different donors, and selective cytochrome P450 inhibitors were used to study the hydroxylation of taurochenodeoxycholic acid and lithocholic acid. Recombinant expressed CYP3A4 was the only enzyme that was active towards these bile acids and the enzyme catalyzed an efficient 6α-hydroxylation of both taurochenodeoxycholic acid and lithocholic acid. The Vmax for 6α-hydroxylation of taurochenodeoxycholic acid by CYP3A4 was 18.2 nmol/nmol P450/min and the apparent Km was 90 μM. Cytochrome b5 was required for maximal activity. Human liver microsomes from 10 different donors, in which different P450 marker activities had been determined, were separately incubated with taurochenodeoxycholic acid and lithocholic acid. A strong correlation was found between 6α-hydroxylation of taurochenodeoxycholic acid, CYP3A levels (r2=0.97) and testosterone 6β-hydroxylation (r2=0.9). There was also a strong correlation between 6α-hydroxylation of lithocholic acid, CYP3A levels and testosterone 6β-hydroxylation (r2=0.7). Troleandomycin, a selective inhibitor of CYP3A enzymes, inhibited 6α-hydroxylation of taurochenodeoxycholic acid almost completely at a 10 μM concentration. Other inhibitors, such as α-naphthoflavone, sulfaphenazole and tranylcypromine had very little or no effect on the activity. The apparent Km for 6α-hydroxylation of taurochenodeoxycholic by human liver microsomes was high (716 μM). This might give an explanation for the limited formation of 6α-hydroxylated bile acids in healthy humans. From the present results, it can be concluded that CYP3A4 is active in the 6α-hydroxylation of both taurochenodeoxycholic acid and lithocholic acid in human liver.  相似文献   

20.
Human liver microsomes catalyze an efficient 25-hydroxylation of 5β-cholestane-3α,7α,12α-triol. The hydroxylation is involved in a minor, alternative pathway for side-chain degradation in the biosynthesis of cholic acid. The enzyme responsible for the microsomal 25-hydroxylation has been unidentified. In the present study, recombinant expressed human P-450 enzymes have been used to screen for 25-hydroxylase activity towards 5β-cholestane-3α,7α,12α-triol. High activity was found with CYP3A4, but also with CYP3A5 and to a minor extent with CYP2C19 and CYP2B6. Small amounts of 23- and 24-hydroxylated products were also formed by CYP3A4. The Vmax for 25-hydroxylation by CYP3A4 and CYP3A5 was 16 and 4.5 nmol/(nmol×min), respectively. The Km was 6 μM for CYP3A4 and 32 μM for CYP3A5. Cytochrome b5 increased the hydroxylase activities. Human liver microsomes from ten different donors, in which different P-450 marker activities had been determined, were incubated with 5β-cholestane-3α,7α,12α-triol. A strong correlation was observed between formation of 25-hydroxylated 5β-cholestane-3α,7α,12α-triol and CYP3A levels (r2=0.96). No correlation was observed with the levels of CYP2C19. Troleandomycin, a specific inhibitor of CYP3A4 and 3A5, inhibited the 25-hydroxylase activity of pooled human liver microsomes by more than 90% at 50 μM. Tranylcypromine, an inhibitor of CYP2C19, had very little effect on the conversion. From these results, it can be concluded that CYP3A4 is the predominant enzyme responsible for 25-hydroxylation of 5β-cholestane-3α,7α,12α-triol in human liver microsomes.  相似文献   

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