Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Hypericum”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 181 records · Page 10Linked to original sources

Determination of hypericin content in Hypericum triquetrifolium Turra (Hypericaceae) growing wild in Jordan.

Hypericin content of methanolic extracts of dried flowers, leaves, stems, and roots of Hypericum triquetrifolium (Turra) were determined by HPLC. Conversion of protohypericin to hypericin was achieved by exposing samples to light for 30 min immediately before HPLC analysis. External standard calibration was used to quantify hypericin. Leaves showed the highest hypericin content of 0.36% w/w. Total aerial parts contained 0.43% w/w of hypericin. The relatively high hypericin content of the H. triquetrifolium in this study encourages the introduction, cultivation, and biological evaluation of hypericum specie in Jordan.

Anthracenes↗

The evaluation of wound-healing potential of Hypericum hookerianum leaf and stem extracts.

OBJECTIVES: Hypericum hookerianum Wight and Arnott of the family Hypericaceae is a well-known plant among the 20 different species of Hypericum found in India. Because of its use as a wound-healing agent in traditional practices and literature references, the present study was undertaken to evaluate the wound-healing potential of this plant. DESIGN: Methanol extracts of the leaves (HHLM) and stems (HHSM) of H. hookerianum were studied for their wound-healing properties in the form of ointment, using two types of wound models in 36 rats. Ointments of the dried extract of the leaves and stems of this plant were applied in two different concentrations (5% w/w and 10% w/w ointment of extracts in simple ointment base) in both the wound models used in the present study. The effects were studied on incision (skin-breaking strength) and excision (percent wound contraction and epithelialization time) wound models. SUBJECT: The methanol extract of both leaves and stem of H. hookerianum; 72 white albino rats of either gender containing six groups for each experimental model with six animals in each group. RESULTS AND CONCLUSION: The extract ointments at both concentrations performed significant in both the wound models. The leaf extract in both concentrations showed greater activity than the stem. Ointments of both extracts of H. hookerianum showed significant effects on wound contraction, wound closure time, tensile strength, regeneration of tissues at the wound site, among other effects. All these effects were comparable to those of a standard drug, nitrofurazone ointment (0.2% w/w). This investigation confirms the use of aerial parts of H. hookerianum as a potential wound-healing agent, a property known from folklore medicine.

Animals↗

Effects of a methanolic extract and a hyperforin-enriched CO2 extract of Hypericum perforatum on alcohol intake in rats.

Hypericum perforatum extracts (HPE) inhibit ethanol intake in rats. Hypericin and hyperforin have been proposed as major active principles of HPE. The present study compared the effect on ethanol intake in alcohol-preferring rats of two Hypericum perforatum extracts: a methanolic extract containing 0.3% hypericin and 3.8% hyperforin (HPE1) and a CO2 extract (HPE2) with 24.33% hyperforin and very low hypericin content. Freely feeding and drinking rats were offered 10% ethanol 2 h/day and HPE were given intragastrically 1 h before access to ethanol. Both extracts dose-dependently reduced ethanol intake, HPE2 being about eight times more potent than HPE1. Food and water intakes were not affected by doses that reduced ethanol intake. HPE2, unlike HPE1, reduced blood-alcohol levels (BAL) at doses of > or = 31.2 mg/kg, whereas the dose of 15.6 mg/kg, which reduced ethanol intake, did not significantly modify BAL; blood-acetaldehyde levels were never increased. As previously observed for HPE1, intracerebroventricular pretreatment with 5,7-dihydroxytryptamine (150 microg/rat) did not affect attenuation of ethanol intake induced by HPE2, but reduced its effect in the forced swimming test (FST). Intraperitoneal pretreatment with the sigma-1 receptor antagonist NE-100 (0.25 mg/kg) did not affect inhibition of ethanol intake induced by HPE1 (250 mg/kg) or HPE2 (125 mg/kg), but abolished the effect of both extracts in the FST. In conclusion, the present results indicate that HPE2 inhibits ethanol intake more potently than HPE1; the higher potency of HPE2 parallels the hyperforin content, suggesting that hyperforin may have an important role in reducing ethanol intake. Moreover, different neurochemical mechanisms are apparently responsible for the reduction of ethanol intake and for the antidepressant-like effect of HPE.

5,7-Dihydroxytryptamine↗

Blockade of gamma-aminobutyric acid receptors does not modify the inhibiton of ethanol intake induced by Hypericum perforatum in rats.

AIMS: Recent studies have shown that Hypericum perforatum extracts (HPE) inhibit ethanol intake in alcohol-preferring rats, but their mechanism of action is still unknown. HPE have been shown to bind at gamma-aminobutyric acid (GABA)(A) and GABA(B) receptors, to inhibit GABA reuptake, to evoke GABA release from synaptosomes and to exert an anxiolytic effect that is blocked by the benzodiazepine antagonist flumazenil. Since GABA-ergic mechanisms are known to influence ethanol intake, the present study was aimed at investigating whether they might mediate the effect of a CO2 Hypericum extract (HPCO2) on ethanol intake in genetically selected Marchigian Sardinian alcohol-preferring (msP) rats. METHODS: The GABA(A) receptor antagonist bicuculline and the GABA(B) receptor antagonists CGP-36742 and phaclofen were tested versus the effect of HPCO2 on ethanol intake. RESULTS: The results of the present study confirm that HPCO2, given by intragastric injection, markedly reduces ethanol intake in msP rats and its effect is behaviourally selective, since the same doses which inhibited ethanol intake did not modify the simultaneous intake of food or water. The GABA(A) receptor antagonist bicuculline, given by intraperitoneal (i.p.) injection at a dose of 2 mg/kg, which effectively antagonizes the effects of GABA(A) receptor agonists, did not modify the effect of HPCO2, 15 or 125 mg/kg. The GABA(B) receptor antagonists CGP-36742, given by i.p. injection at a dose of 100 mg/kg, and phaclofen, given by intracerebroventricular injection at a dose of 25 micro g/rat, did not modify the inhibitory effect on alcohol intake induced by HPCO2, 15 or 125 mg/kg. The same doses of the two GABA(B) receptor antagonists induced a pronounced reduction of the effect of the GABA(B) receptor agonist bacoflen, given by i.p. injection at a dose of 5 mg/kg. CONCLUSIONS: These findings suggest that the inhibitory effects of HPE on ethanol intake are not mediated by GABA agonist actions.

Alcohol Deterrents↗

Effect of Hypericum perforatum CO2 extract on the motivational properties of ethanol in alcohol-preferring rats.

AIMS: Extracts of Hypericum perforatum (HPE) attenuate voluntary ethanol intake in different lines of alcohol-preferring rats. The present study evaluated the effect of the intragastric (IG) administration of a CO(2) Hypericum perforatum extract (HPCO(2)) on operant ethanol self-administration, as well as on voluntary ethanol intake, after a period of ethanol deprivation in genetically selected Marchigian Sardinian alcohol-preferring rats. METHODS: HPCO2 was administered by means of an indwelling IG catheter, 1 h before the tests. For the self-administration experiments, the rats were trained to self-administer 10% (v/v) ethanol in 30-min daily sessions under a fixed ratio 1 schedule of reinforcement. HPCO2 was also tested on 0.2% w/v saccharin self-administration. For the ethanol deprivation experiments, rats that had a previous experience with voluntary ethanol drinking were deprived of ethanol for 9 days, whereas water and food were freely available; HPCO2 was given by IG injection 1 h before the ethanol re-presentation. RESULTS: HPCO2 in doses of 31 or 125 mg/kg but not 7 mg/kg, significantly reduced ethanol self-administration, while it did not modify saccharin self-administration. The same doses of the extract abolished the increased ethanol intake following ethanol deprivation. CONCLUSIONS: These findings provide evidence that HPCO2 markedly reduces the reinforcing properties of ethanol in the self-administration paradigm, as well as the increase of ethanol intake following ethanol deprivation. These findings further support the view that the use of HPE may represent an interesting pharmacological approach in the treatment of alcohol abuse and alcoholism.

Alcohol Drinking↗

Hypericum sampsonii induces apoptosis and nuclear export of retinoid X receptor-alpha.

Natural products derived from plants provide a rich source for development of new anticancer drugs. Recent studies suggest that modulation of subcellular localization of retinoid X receptor-alpha (RXRalpha) represents a potential approach for inducing cancer cell apoptosis. In this study, we screened a herbal library for inducing translocation of RXRalpha from the nucleus to the cytoplasm. Our results revealed that the extract of Hypericum sampsonii, a member of the genus Hypericum, had remarkable effect on RXRalpha subcellular localization in various cancer cells. Treatment of NIH-H460 human lung cancer cells with H. sampsonii extract resulted in relocalization of RXRalpha from the nucleus to the cytoplasm. Cytoplasmic RXRalpha induced by H. sampsonii was associated with mitochondria, accompanied with cytochrome c release and apoptosis. H. sampsonii extract effectively inhibited the growth of various cancer cell lines, including NIH-H460 lung cancer, MGC-803 stomach cancer and SMMC7721 liver cancer cells. The growth inhibitory effect of H. sampsonii extract depended on levels of RXRalpha, as it failed to inhibit the growth of CV-1 cells lacking detectable RXRalpha, whereas transfection of RXRalpha into CV-1 cells restored its apoptotic response to H. sampsonii. Furthermore, the apoptotic effect of H. sampsonii was significantly enhanced when RXRalpha was overexpressed in NIH-H460 cells. Together, our results demonstrate that H. sampsonii contains ingredient(s) that induce apoptosis of cancer cells by modulating subcellular localization of RXRalpha.

Active Transport, Cell Nucleus↗

Attenuation of ethanol withdrawal syndrome by extract of Hypericum perforatum in Wistar rats.

The effects of Hypericum perforatum (St John's wort) on ethanol withdrawal syndrome have been investigated in ethanol-dependent rats. Adult male Wistar rats were subjects. Ethanol (7.2% v/v) was given to rats by a liquid diet for 15 days. Hypericum perforatum extract (HPE) (25-200 mg/kg) and saline were injected to rats intraperitoneally just before ethanol withdrawal. After second, fourth and sixth hour of ethanol withdrawal, rats were observed for 5 min, and withdrawal signs that included locomotor hyperactivity, stereotyped behavior and tremors were recorded or rated. A second series of injections was given at 6 h after the first one, and subjects were then tested for audiogenic seizures. HPE (25-200 mg/kg) produced some dose-dependent and significant inhibitory effects on locomotor hyperactivity at second and sixth hour of ethanol withdrawal. In addition, it significantly reduced the number of stereotyped behaviors at the same dose range. HPE (50 and 100 mg/kg) produced some significant inhibitory effects on tremor and audiogenic seizures during withdrawal period. These results suggest that HPE has some beneficial effects on ethanol withdrawal syndrome in rats.

Animals↗

Sunlight associated hyperthermia as a consistent and rapidly developing clinical sign in sheep intoxicated by St John's wort (Hypericum perforatum).

OBJECTIVE: To assess the usefulness of rectal temperature responses in Australian bred Merino sheep, following the oral administration of Hypericum perforatum (St John's wort), as an early indicator of Hypericum intolerance. DESIGN: Thirty-three Merino ewes were divided into three groups of 11. Each group was dosed with finely ground, dried, flowering growth stage H perforatum plant material at either 5.7, 4.0, or 2.85 g dry plant per kg live weight. This corresponded to 5.3, 3.7 and 2.65 mg hypericin per kg live weight, respectively. PROCEDURE: The sheep were dosed with a plant slurry by stomach tube and then exposed to bright sunlight for up to 5 h per day over successive days. Their clinical responses were observed and rectal temperature measured. RESULTS: Ingestion of H perforatum followed by exposure to bright sunlight frequently resulted in clinical signs attributable to skin irritation and central nervous effects, including an inappropriate increase in body temperature. A decrease in H perforatum ingestion from 5.7 to 2.85 g dry plant per kg live weight and a corresponding decrease in hypericin ingestion from 5.3 to 2.65 mg per kg live weight, was associated with a decrease in the severity of the clinical signs, including the severity of the hyperthermia. CONCLUSIONS: The rectal temperature rise in affected sheep is a reliable indicator of the early development of an adverse clinical effect. There appears to be an absolute requirement for exposure to bright sunlight before any effects of H perforatum will develop. A single dose of H perforatum remains potentially effective for up to 4 days. In the small group of Merino sheep tested a tolerance level for H perforatum, eaten at the flowering stage, of < 1% (plant wet weight) of body weight and a tolerance level for hypericin of < 2.65 mg per kg live weight, were demonstrated.

Animals↗

[St. John' Wort (Hypericum perforatum L.)--multicompound preparations versus single substances].

Aqueous alcoholic extracts of St. John s wort are used for the treatment of mild to moderate depression. Recently, Hypericum extracts were also shown to inhibit the growth of various human malignant cells. We promote the hypothesis that the various biological activities of aqueous Hypericum extracts are based on synergistic interactions of all compounds present therein and not on the pharmacological activities of single compounds.

Antidepressive Agents↗

Clinical investigation of the antidepressant effectiveness of hypericum.

To date, 25 controlled therapy studies have investigated the antidepressive effectiveness of hypericum extracts. A total of 1592 treatment cases have been included. The dosage was typically 300 to 900 mg total extract daily; the therapy duration was 2 to 6 weeks. Fifteen studies were performed comparing hypericum extracts with placebo, 10 studies as comparative studies. This paper presents an overview of their results.

Antidepressive Agents↗

Effects of hypericum extract LI 160 compared with maprotiline on resting EEG and evoked potentials in 24 volunteers.

In a randomized double-blind study, the effect of hypericum extract was compared to that of maprotiline in 24 healthy volunteers. The investigations included measurements of resting EEG as well as visual and acoustic evoked potentials. In resting EEGs, both medications revealed oppositely directed changes in the theta frequencies, and mainly similarly directed changes in alpha and beta frequencies. Measurements of evoked potentials in the theta and beta frequencies supported these results. The results indicate improved cognitive functions mainly with the treatment of hypericum extract.

Adolescent↗

Pharmacokinetics of hypericin and pseudohypericin after oral intake of the hypericum perforatum extract LI 160 in healthy volunteers.

The single- and multiple-dose pharmacokinetics of the naphthodianthrones hypericin and pseudohypericin derived from St. John's wort (Hypericum perforatum, LI 160, Lichtwer Pharma GmbH, Berlin) were studied in 12 healthy male subjects. After a single oral dose of 300, 900, or 1800 mg of dried hypericum extract (250, 750, or 1500 micrograms hypericin and 526, 1578, or 3156 micrograms pseudohypericin), plasma levels were measured with a modified highly sensitive high-pressure liquid chromatography (HPLC) method (lower detection limit 0.1 ng/mL) up to 3 days. The median maximal plasma levels were 1.5, 4.1, and 14.2 ng/mL for hypericin and 2.7, 11.7, and 30.6 ng/mL for pseudohypericin, respectively, for the three doses given above (interim evaluation of four volunteers). The median elimination half-life times of hypericin were 24.8 to 26.5 hours, and varied for pseudohypericin from 16.3 to 36.0 hours. Ranging between 2.0 to 2.6 hours, the median lag-time of absorption was remarkably prolonged for hypericin when compared to pseudohypericin (0.3 to 1.1 hours). The areas under the curves (AUC) showed a nonlinear increase with raising dose; this effect was statistically significant for hypericin. During long-term dosing (3 x 300 mg/day), a steady-state was reached after 4 days. Mean maximal plasma level during the steady-state treatment was 8.5 ng/mL for hypericin and 5.8 ng/mL for pseudohypericin, while mean trough levels were 5.3 ng/mL for hypericin and 3.7 ng/mL for pseudohypericin. In spite of their structural similarities there are substantial pharmacokinetic differences between hypericin and pseudohypericin.

Administration, Oral↗

Inhibition of MAO by fractions and constituents of hypericum extract.

The inhibition of monoamine oxidase (MAO) by six fractions from hypericum extract and three characteristic constituents (as pure substances) were analyzed in vitro and ex vivo to study the antidepressive mechanism of action. Rat brain homogenates were used as the in vitro model, while the ex vivo analysis was performed after intraperitoneal application of the test substances to albino rats. Massive inhibition of MAO-A could be shown with the total extract and all fractions only at the concentration of 10(-3) mol/L. At 10(-4) mol/L, one fraction rich in flavonoides showed an inhibition of 39%, and all other fractions demonstrated less than 25% inhibition. Using pure hypericin as well as in all ex vivo experiments, no relevant inhibiting effects could be shown. From the results it can be concluded that the clinically proven antidepressive effect of hypericum extract cannot be explained in terms of MAO inhibition.

Animals↗

Antidepressant activity of Indian Hypericum perforatum Linn in rodents.

A standardised 50% aqueous ethanolic extract of Indian Hypericum perforatum (IHp) was investigated for its antidepressant activity on various experimental paradigms of depression, viz. behavioural despair (BD), learned helplessness (LH), tail suspension (TS) and reserpine-induced hypothermia (RIH) tests in rats and mice. Pilot studies indicated that single dose administration of IHp had very little or no acute behavioural effects, hence the IHp was administered orally at two dose levels (100 and 200 mg/kg, p.o.) once daily for three consecutive days, while imipramine (15 mg/kg, i.p.), a clinically used antidepressant agent, was administered acutely to rats (CF strain, 150 +/- 10 g) and mice (Wistar strain, 23 +/- 2 g) of either sex as the standard drug. Controls animals were treated similarly with equal volume of vehicle (0.3% carboxymethyl cellulose). Indian Hypericum perforatum extract showed significant antidepressant activity on all the paradigms of depression used. Thus IHp and imipramine treatments significantly reduced the immobility time in BD and TS tests. Significant reduction in escape failures was also observed in LH test. In RIH test IHp and imipramine inhibited reserpine induced hypothermia in a dose dependent manner. The observed antidepressant activity of IHp was qualitatively comparable to that induced by imipramine.

Animals↗

[Biologically active substances isolated from Hypericum attenuatum Choisy].

Four dianthrones, two oxymethylanthraquinones, two reductive forms of anthraquinones and five flavonoids have been isolated from the plant source Hypericum attenuatum Choisy (Guttiferae) firstly investigated for these substances contents. Dianthrones pseudohypericin, protohypericin, protopseudohypericin, oxymethylanthraquinones frangulaemodin, frangulin, reductive anthraquinones emodin anthrone, emodin anthranol, and flavonoids quercetin, quercitrin, isoquercitrin, rutin have been identified for the first time. High hyperoside contents in herb of Hypericum attenuatum is established.

Anthracenes↗

The emerging recognition of herb-drug interactions with a focus on St. John's wort (Hypericum perforatum).

The use of herbal medications and other alternative therapies is accelerating. Survey data clearly indicate that these agents are frequently combined with prescription and over-the-counter medications. The herbal antidepressant St. John's wort (Hypericum perforatum) is one of the most commonly utilized herbal agents. In spite of growing concern and examples of herb-drug interactions, little systematic research has been published or funded in this area. Computerized searches of the biomedical literature were undertaken utilizing MEDLINE, Current Contents, and PsycINFO computer databases (years 1966-December 2000) and by review of bibliographies to identify all pertinent case reports, case series, and formal studies for this review using search terms St. John's wort, hypericum, herb, in vitro, cytochrome P450, and drug interactions. Little in vitro or in vivo data on St John's wort or other herb-drug interactions is available and current in vitro methods for screening conventional medications may have limited applications to herbal agents which generally have numerous constituents of unknown pharmacokinetics and pharmacology. However, available data from clinical studies and case reports suggests that St. John's wort is unlikely to inhibit cytochrome P450 (CYP) 3A4 or 2D6, but is likely an inducer of CYP 3A4 and possibly the P-glycoprotein transporter. Examples of conventional medications which may undergo significant CYP 3A4 induction by St. John's wort include cyclosporine, indinavir, and oral contraceptives. The accumulating evidence of significant drug interactions with St. John's wort should serve as an example to clinicians to be aware of the potential for St. John's wort, and very likely, other herbal products to participate in important herb-drug interactions when used in combination with conventional medications. Concomitant use of herbal agents and conventional medications should generally be discouraged until further information is available. Additional research is urgently needed in this area.

Animals↗

[Species and distribution of medicinal plant Hypericum in Guizhou].

OBJECTIVE: To gain a clear idea on the resources of medicinal plant Hypericum in Guizhou. METHOD: Conducting field investigation and consulting related specimens and data. RESULT: The distribution, growing environment and medicinal parts of 18 species of Hypericun have been clarified, and a key for their identification is given. CONCLUSION: A scientific basis for further study of the medicinal plant Hypericum in Guizhou Province has been provided.

Antiviral Agents↗

[Studies on chemical components of the volatile oil from the leaves of Hypericum perforatum].

OBJECTIVE: To determine the volatile oil of the leaves from Hypericum perforatum L.. METHOD: The essential oil was obtained by simultaneous distillation and solvent extraction. The chemical components were seperated and identified by GC-MS. The relative contents in the volatile oil were determined by area nomalization. RESULTS: 54 chemical constituents were separated and identified representing 92.32% of the total contents. CONCLUSION: Sesquiterpenes are major chemical constituents in the oil from the leaves of Hypericum perforatum L.. They are very different from those of the essential oil from the same species from the other country.

Gas Chromatography-Mass Spectrometry↗