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1.
The desmethyl sterol composition of the oomycete Dictyuchus monosporus is unusual in that it is a mixture of 56.9 % Δ5-sterols and 42.6 % Δ7-sterols. The Δ5-sterols are cholesterol, 24 methylenecholesterol and fucosterol; the Δ7-sterols are cholest-7-enol, ergosta-7,24(28)-dienol and stigmasta-7,E-24(28)-dienol. Stigmasta-7,E-24(28)-dienol, is identified for the first time from natural sources. In addition, traces of lanosterol are present.  相似文献   

2.
Four Δ5-sterols and six Δ7-sterols were isolated from the seed oil of Trichosanthes kirilowii and identified as campesterol, sitosterol, stigmasterol, Δ7-campesterol, Δ7-stigmasterol, Δ7,22-stigmastadienol, 24-ethylcholesta-5,25-diene-3β-ol, 24-ethylcholesta-7,24(25)-diene-3β-ol, 24-ethylcholesta-7,25-diene-3β-ol, and 24-ethylcholesta-7,22,25-trine-3β-ol.  相似文献   

3.
The mutant STE 1 was isolated by screening an ethylmethane sulfonate (EMS)-mutagenized population of Arabidopsis thaliana which consisted of 22 000 M2 plants divided into 1100 pools of 20 plants by gas chromatography of sterols extracted from small leaf samples. STE 1 was characterized by the accumulation of three Δ7-sterols concomitantly with the decrease of the three corresponding Δ5-sterols which are the end products of the sterol pathway in wild-type leaves. The structure of these Δ7-sterols was determined after two steps of purification on HPLC, by gas chromatography coupled with mass spectrometry (GC-MS) and proton nuclear magnetic resonance spectrometry (1H-NMR). The accumulation of Δ7-sterols suggested that the mutant is deficient in the activity of the Δ7-sterol-C-5-desaturase. Genetic analysis showed that the accumulation of Δ7-sterols was due to a single recessive nuclear mutation. The mutant line STE 1 was backcrossed four times to the wild-type. The resulting STE 1 plants had wild-type morphology and set seeds normally, suggesting that the Δ7-sterols in STE 1 are good surrogates of physiologically active Δ5-sterols to sustain normal development. STE 1 roots were transformed with the Saccharomyces cerevisiae ERG 3 gene encoding the Δ7-sterol-C-5-desaturase under the control of the CaMV 35S promoter. Seven transgenic STE 1 root-derived calli showed an increase in Δ5-sterols and a concomitant decrease in Δ7-sterols in comparison with STE 1 untransformed root-derived calli. Northern blot analysis using the ERG 3 probe showed a strong expression of ERG 3 in three of the seven transgenic calli. These results suggest that the accumulation of Δ7-sterols in the STE 1 mutant is due to a deficiency of the Δ7-sterol-C-5-desaturation step in the plant sterol biosynthesis pathway.  相似文献   

4.
Bramble suspension cultures normally contain Δ5-sterols (sitosterol, campesterol and isofucosterol). When the cells were grown in a medium supplemented with 15-aza-24-methylene-d-homocholesta-8,14-dien- 3β-ol, Δ5-sterols disappeared almost completely whereas Δ8,14-sterols accumulated strongly. Five Δ8,14-sterols, including two new compounds, (24R)-24-ethyl-5α-cholesta-8,14-dien-3β-ol and 4α-methyl-5α-stigmasta-8,14, Z-24(28)-trien-3β-ol, were identified. The 15-azasterol probably inhibited the reduction of the Δ14-bond. Cell lines growing permanently in an azasterol-supplemented medium were obtained.  相似文献   

5.
Heliothis zea was reared on artificial diets containing Δ5-sterols (cholesterol, campesterol, or sitosterol), Δ7-sterols (lathosterol, epifungisterol, or spinasterol), or Δ0-sterols (cholestanol, epicoprostanol, campestanol, or sitostanol) in order to determine how different dietary sterols affect the type of sterols present in the tissues of the late-sixth-instar larva. Although all of the dietary sterols (except epicoprostanol) supported the growth of the larvae, not all of the sterols were metabolized to the same end products. In each case, at least 80% of the sterols in the tissues of the larvae retained the same nucleus as that of the dietary sterol, indicating that H. zea carries out very little metabolism of ring B of Δ5-, Δ7-, and Δ0-sterols. The larvae dealkylated the Δ5-, Δ7-, and Δ0-alkylsterols to 24-desalkylsterols, but a greater percentage of the Δ5-alkylsterols were metabolized in this manner. The sterols present as free sterols in the larva were also present as esterifed sterols which accounted for 2–4% of the total sterols. Therefore, the sterol composition of the tissues of H. zea can be altered by varying the dietary sterols.  相似文献   

6.
When mevalonate-[2-14C] was incubated with seeds of Pinus pinea, 23% of the label in sterols was found in trans-24-ethylidenecholesterol, 12% in a mixture of 24α- and 24β-methylcholesterol, and 65% in 24α-ethylcholesterol. However, when the radioactive substrate was lanosterol-[24-3H], label appeared only in the 24-ethylidene- (85%) and the epimeric 24-methylsterols (15%). From the ratios of labels in the ethylidene- and methyl-sterols it was possible to show that the tritium in the 24-C1 -mixture was incorporated only into the 24β-methyl epimer. The labelling patterns are consistent with a pathway to 24β-alkylsterols via Δ25(27)-sterols bypassing 24-ethylidenesterols and to 24α-alkylsterols via Δ24(28)-sterols which are isomerized to Δ24(25)-sterols prior to reduction.  相似文献   

7.
The sterols of Zea mays shoots were isolated and characterized by TLC, HPLC, GC/MS and 1H NMR techniques. In all, 22 4-demethyl sterols were identified and they included trace amounts of the Δ23-, Δ24- and Δ25-sterols, 24-methylcholesta-5,E-23-dien-3β-ol, 24-methylcholesta-5,Z-23-dien-3β-ol, 24-methylcholesta-5,25-dien-3β-ol, 24-ethylcholesta-5,25-dien-3β-ol and 24-ethylcholesta-5,24-dien-3β-ol. In the 4,4-dimethyl sterol fraction, cycloartenol and 24-methylenecycloartanol were the major sterol components but small amounts of the Δ23-compound, cyclosadol, and the Δ25-compound, cyclolaudenol, were recognized. These various Δ23- and Δ25-sterols may have some importance in alternative biosynthetic routes to the major sterols, particularly the 24β-methylcholest-5-en-3β-ol component of the C28-sterols. Radioactivity from both [2-14C]MVA and [methyl-14C]methionine was incorporated by Z. mays shoots into the sterol mixture. Although 24-methylene and 24-ethylidene sterols were relatively highly labelled, the various Δ23- and Δ25-sterols contained much lower levels of radioactivity, which is possibly indicative of their participation in alternative sterol biosynthetic routes. (24R)-24-Ethylcholest-5-en-3β-ol (sitosterol) had a significantly higher specific activity than the 24-methylcholest-5-en-3β-ol indicating that the former is synthesized at a faster rate.  相似文献   

8.
Sterols composition of transformed carrot roots incubated in presence of increasing concentrations of fenpropimorph (0.02; 0.2; 2 mg l−1) and fenhexamid (0.02; 0.2; 2; 20 mg l−1), colonized or not by Glomus intraradices was determined. In mycorrhizal roots treated with fenpropimorph, normal Δ5-sterols were replaced by unusual compounds such as 9β,19-cyclopropylsterols (24-methylpollinastanol), Δ8,14-sterols (ergosta-8,14-dienol, stigmasta-8,14-dienol), Δ8-sterols (Δ8 sitosterol) and Δ7-sterols (ergosta-7,22-dienol). After application of fenpropimorph, a drastic reduction of the mycorrhizal root growth, root colonization and extraradical fungal development was observed. Application of fenhexamid did not modify sterol profiles and the total colonization of roots. But the arbuscule frequency of the fungal partner was significantly affected.Comparison of the effects caused by the tested fungicides indicates that the usual phytosterols may be involved in symbiosis development. Indeed, observed modifications of root sterols composition could explain the high fenpropimorph toxicity to the AM symbiosis. However, the absence of sterolic modifications in the roots treated with fenhexamid could account for its more limited impact on mycorrhization.  相似文献   

9.
Larvae from two populations of Heliothis zea were reared on artificial diets containing various sterols, which supported suboptimal growth, and their tissue sterols were characterized in order to determine how these dietary sterols are utilized by this insect. The sterols studied included Δ5,7-sterols (7-dehydrocholesterol or ergosterol), Δ8-sterols (lanosterol and/or 24-dihydrolanosterol), and a Δ5-sterol (4,4-dimethylcholesterol). Although larvae did not develop on 4,4-dimethylcholesterol, those fed primarily Δ8-4,4,14-trimethylsterols developed to the third instar. When the latter sterols were spared with cholesterol, the larvae reached the sixth instar and contained 4,4,14-trimethylsterols as well as cholesterol in their tissues. When larvae were fed 7-dehydrocholesterol, <1% of the larvae from one population developed to the sixth instar and these larvae contained 7-dehydrocholesterol as their principal sterol. The other larvae successfully completed their larval stage when they were transferred from the diet containing 7-dehydrocholesterol (or no sterol) to a diet containing cholesterol within at least 9 days. The sterol composition of larvae transferred from a diet containing cholesterol to a diet containing 7-dehydrocholesterol, after they had reached 60% of their final weight, was 54% cholesterol and 46% 7-dehydrocholesterol. The major sterol isolated from the tissues of the larvae fed ergosterol was also 7-dehydrocholesterol. Therefore, although the larva of H. zea can dealkylate and saturate the side chain of the Δ5,7,22-24β-methylsterol, it carries out little metabolism of the B ring of the nucleus. These studies demonstrate that, when Δ5,7- or Δ8-sterols are the principal sterols in the diet of H. zea, they are absorbed and incorporated into its tissues, although they slow the rate of growth and may prevent complete development of the larva.  相似文献   

10.
《Phytochemistry》1987,26(2):385-392
The nitrogen substituents present in tridemorph and fenpropimorph, which are systemic fungicides, have been linked to an 8-aza-bicyclic skeleton leading to N-(1,5,9-trimethyldecyl)-4α,10-dimethyl-8-aza-trans-decal-3β-ol and N-(3-(4-tert-butylphenyl-)2-methyl)-propyl-8-aza-4α,10-dimethyl-trans-decal-3β-ol respectively. The latter two compounds present in a stable molecule key structural elements of unstable C-8 and C-9 carbocationic high-energy intermediates which occur during the reactions catalysed by the Δ8 → Δ7-sterol isomerase and the cycloeucalenol-obtusifoliol isomerase, respectively. When given to either bramble cell suspension cultures or maize seedlings, they led to a spectacular accumulation of 9β,19-cyclopropyl sterols and were in that respect much more efficient than any known molecules and in particular than the N-benzyl decalin previously described which led to accumulation of Δ8-sterols. Surprisingly, treatment of the plant cells by the N-oxide derivatives of the N-benzyl decalin resulted in dramatic accumulation of Δ8,14-sterols.  相似文献   

11.
The incorporation of [28 14C] ergosta-7,24(28)-dien-3β-ol into ergosta-7,22-dien-3β,5α-diol by aerobically growing S.cerevisiae has established its presence in this organism. This, coupled with previous work, is considered to be substantive evidence for the operation of a hydroxylation-dehydration mechanism in the introduction of Δ5 unsaturation in ergosterol biosynthesis in yeast.  相似文献   

12.
Giner JL  Wikfors GH 《Phytochemistry》2011,72(14-15):1896-1901
Sterol compositions for three diatom species, recently shown to contain sterols with side chains typically found in dinoflagellates, were determined by HPLC and 1H NMR spectroscopic analyses. The centric diatom Triceratium dubium (= Biddulphia sp., CCMP 147) contained the highest percentage of 23-methylated sterols (37.2% (24R)-23-methylergosta-5,22-dienol), whereas the pennate diatom Delphineis sp. (CCMP 1095) contained the cyclopropyl sterol gorgosterol, as well as the 27-norsterol occelasterol. The sterol composition of Ditylum brightwellii (CCMP 358) was the most complex, containing Δ0- and Δ7-sterols, in addition to the predominant Δ5-sterols. A pair of previously unknown sterols, stigmasta-5,24,28-trienol and stigmasta-24,28-dienol, were detected in D. brightwellii and their structures were determined by NMR spectroscopic analysis and by synthesis of the former sterol from saringosterol. Also detected in D. brightwellii was the previously unknown 23-methylcholesta-7,22-dienol.  相似文献   

13.
Bramble suspension cultures normally contain Δ5-sterols (sitosterol, campesterol and isofucosterol). When the cells were grown in a medium supplemented with fenarimol, 14α-methyl sterols accumulated. Eight 14α-methyl sterols, including two new compounds, 4α,14α-dimethyl-stigmasta-8,Z-24(28)-dien-3β-ol and 14α-methyl-stigmasta-8,Z-24(28)-dien-3β-ol, were identified. Fenarimol probably inhibited the 14α-methyl demethylation. Cell lines growing permanently in 2 fenarimol-supplemented medium were obtained.  相似文献   

14.
Free sterol fractions were isolated from the marine sponges Phyllospongia madagascarensis, Scalarispongia sp., Oceanapia sp., Monanchora clathrata and studied by GLC, GLC–MS, and spectroscopy NMR. P. madagascarensis and Scalarispongia sp. contained common Δ5-sterols; cholesterol was shown to be a main sterol of both the sponges. Oceanapia sp. contained stanols and minor Δ5-sterols with 24R-24,25-methylene-5α-cholestan-3β-ol as a main constituent. Many free sterols from M. clathrata were Δ7-series compounds, and latosterol was a main sterol. Δ4-3-Ketosteroids and Δ5-sterol esters were found in the Antarctic sponge Haliclona sp., but free sterols were practically absent except for trace amount of cholesterol. A chemotaxonomic application of sterols in relation to the genera Phyllospongia, Oceanapia and the family Crambeidae is provided. The known cases of the absence of sterols in sponges and probable reasons of the phenomenon are discussed.  相似文献   

15.
Flowers of Calendula officinalis were incubated with mevalonic acid doubly labelled with 14C in position 2 and 3H in positions 2R, 2S, 4R or 5R,S and the [3H/14C] ratios determined in squalene β-sitosterol, stigmasterol, Δ7-sterols and stigmastan-3 β-ol. The results indicated that in the biosynthesis of these sterols: formation of the Δ7 double bond is associated with elimination of hydrogen from the 7β position, formation of the Δ5 double bond with elimination of hydrogens from the 5 and 6α positions, and formation of the Δ22 double bond with elimination of the 22-pro-S and 23 hydrogens. Demethylation in position 4 is associated with elimination of hydrogen from the 3α position whereas demethylation in position 14 occurs without hydrogen loss from position 15. Alkylation in position 24 is associated with hydrogen elimination from this position.  相似文献   

16.
The composition of the sterol fraction of Gleditsia triacanthos, G. macracantha, Thea sinensis, Medicago sativa and Spinacia oleracea has been determined using GC and GC/MS. The sum of δ7-sterols ranges from 67 to 95%. Among them 24ξ-ethyl-5α-cholest-7,trans-22-dien-3β-ol (28–50%) and 24ξ-ethyl-5α-cholest-7-en-3β-ol (23–49%) are the major components. The co-occurrence of δ5- and δ7-sterols has been observed in all species. The possible biosynthetic pathway of the phytosterol nucleus leading to these sterols is discussed.  相似文献   

17.
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   

18.
《Phytochemistry》1987,26(3):731-733
The sterols from eight species in seven genera of the Cactaceae are 24-alkyl-Δ5-sterols. In all eight species, Echinopsis tubiflora, Pereskia aculeata, Hylocereus undatus, Notocactus scopa, Epiphyllum sp., Schlumbergera bridgesii, Opuntia comonduensis and O. humifusa, the dominant sterol is sitosterol (24α-ethylcholest-5-en-3β-ol) at 66–87% of the total sterol composition with the 24ξ-methylcholest-5-en-3β-ol present at 8–33%. Stigmasterol (24α-ethylcholesta-5,22E-dien-3β-ol) is present at 2–8% of the total sterol in P. aculeata, H. undatus, N. scopa and Epiphyllum sp. whereas cholesterol (cholest-5-en-3β-ol) is present in six species at levels of <0.1–5.0%. Avenasterol (24-ethylcholesta-7,24(28)Z-dien-3/gb-ol) and sitostanol (24α-ethyl-5α-cholestan-3β-ol) are each present in two species.  相似文献   

19.
A substantial amount (ca 18%) of the sterol found in the seeds of Cucurbita maxima had a Δ-bond and consisted of seven components. They were identified as 25(27)-dehydroporiferasterol, clerosterol, isofucosterol, stigmasterol, sitosterol, campesterol and codisterol. The C-24 configuration of each of the sterols was unequivocally established by a 1H NMR spectral comparison with authentic standards. This is the first time codisterol has been found in a higher plant and also the first time the structures and configurations of the Δ5-sterols from a Cucurbitaceae species have been clearly characterized.  相似文献   

20.
In addition to the previously found ergosta-5, E-23-dien-3β-ol and 5α-ergosta-7, E-23-dien-3β-ol, the following Δ23 sterols have been identified in etiolated maize coleoptiles: cyclosadol, 4α, 14α-dimethyl-5α-ergosta-8, E-23-dien-3β-ol, 4α, 14α-dimethyl-9β, 19-cyclo-5α-ergosta-8, E-23-dien-3β-ol and 4α-methyl-5α-ergosta-7, E-23-dien-3β-ol. The incubation of maize coleoptile microsomes in the presence of cycloartenol and of [14C-methyl]S-adenosyl methionine gave a mixture of labelled 24-methylene cycloartanol and cyclosadol. No trace of cyclolaudenol could be detected in these conditions. It is suggested that Δ23 sterols are products of the C-24 methyltransferase reaction and they probably do not arise from a Δ24 → Δ23 isomerization occurring at a later stage of the biosynthesis. The Δ13-sterols may play an intermediary role in the biosynthesis of 24-methyl sterols in this plant material.  相似文献   

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