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Effect of naturally occurring triterpenoids glycyrrhizic acid, ursolic acid, oleanolic acid and nomilin on the immune system.

The effect of naturally occurring triterpenoid compounds such as glycyrrhizic acid, ursolic acid, oleanolic acid, and nomilin on the immune system was studied using Balb/c mice. Intraperitoneal treatments with 5 doses of these terpenoid compounds were found to enhance the total white blood cells (WBC) count. In ursolic acid, oleanolic acid and nomilin treated animals the maximum total WBC count was observed on the 6th day, while in glycyrrhizic acid treated animals it was observed only on the 9th day after the drug treatment. In ursolic acid, oleanolic acid and nomilin treated animals the percentage of increase in the total WBC count was to 91.48 +/- 4.6%, 135.75 +/- 6.4% and 117.33 +/- 17.9% respectively. In the glycyrrhizic acid treated animals the total WBC count was increased to 114.9 +/- 18%. Bone marrow cellularity and alpha-esterase positive cells were also enhanced by the treatment with these terpenoids. Treatment with various triterpenoids along with antigen produced an enhancement in the specific antibody titre and the number of plaque forming cells (PFC) in the spleen. Triterpenoids remarkably inhibited delayed type hypersensitivity reaction (DTH). These results indicate the immunomodulatory activity of naturally occurring triterpenoids such as glycyrrhizic acid, ursolic acid, oleanolic acid and nomilin.

Animals↗

Inhibition of ultraviolet-A-modulated signaling pathways by asiatic acid and ursolic acid in HaCaT human keratinocytes.

Premature aging of the skin (photoaging) is a well-documented consequence of exposure to ultraviolet-A (UVA). Enhanced generation of reactive oxygen species and induction of matrix metalloproteinases (MMPs) appear to be the most important components of UVA-modulated signal transduction pathways, ultimately leading to photoaging. In this study, we investigated the effects of asiatic acid and ursolic acid, triterpene compounds, on the UVA-modulated signaling pathways using HaCaT human keratinocytes as a model cellular system. In the cells, we confirmed that UVA irradiation induced oxidative stress and increased the expression of MMP-2. Asiatic acid and ursolic acid significantly suppressed the UVA-induced reactive oxygen species production and lipid peroxidation. Pretreatment with asiatic acid or ursolic acid significantly reduced the UVA-induced activation and expression of MMP-2. In addition, UVA-induced enhanced expression of p53, a hallmark of UV-induced DNA damage and cell death, was also significantly inhibited by pretreatment with asiatic acid or ursolic acid. Taken together, these results suggest that asiatic acid and ursolic acid may be an effective inhibitor of UVA-modulated signal transduction pathways in human skin cells. These results further suggest that these agents may be useful in the prevention of UVA-induced photoaging.

Cell Survival↗

Pharmacology of oleanolic acid and ursolic acid.

Oleanolic acid and ursolic acid are triterpenoid compounds that exist widely in food, medicinal herbs and other plants. This review summarizes the pharmacological studies on these two triterpenoids. Both oleanolic acid and ursolic acid are effective in protecting against chemically induced liver injury in laboratory animals. Oleanolic acid has been marketed in China as an oral drug for human liver disorders. The mechanism of hepatoprotection by these two compounds may involve the inhibition of toxicant activation and the enhancement of the body defense systems. Oleanolic acid and ursolic acid have also been long-recognized to have antiinflammatory and antihyperlipidemic properties in laboratory animals, and more research is warranted to develop a therapy for patients. Recently, both compounds have been noted for their antitumor-promotion effects, which are stimulating additional research in this field. Oleanolic acid and ursolic acid are relatively non-toxic, and have been used in cosmetics and health products. The possible mechanisms for the pharmacological effects and the prospects for these two compounds are discussed.

Antineoplastic Agents, Phytogenic↗

Determination of oleanolic acid and ursolic acid in cornel by cyclodextrin-modified micellar electrokinetic chromatography.

A cyclodextrin-modified micellar electrokinetic chromatography (CD-MEKC) method was established for the determination of oleanolic acid and ursolic acid in cornel. The two components were separated in the running buffer of 40 mmol/L sodium borate containing 5% methanol, 25 mmol/L SDS and 15 mmol/L hydroxypropyl-beta-cyclodextrin (HP-beta-CD). The applied voltage was 24 kV. The wavelength of detection was 200 nm. The temperature was kept at 25 C. Cinnamic acid was used as the internal standard. The analytical performance of the method was tested with respect to linearity, precision and recovery. The calibration curves were linear in the range of 10.15-243.6 microg/mL, r=0.9993 (oleanolic acid) and 10.07-241.7 microg/mL, r=0.9994 (ursolic acid); the intra-day precision (RSD) was less than 3.7% (oleanolic acid) and 4.1% (ursolic acid); the inter-day precision (RSD) was less than 4.2% (oleanolic acid) and 4.9% (ursolic acid). The limits of detection were 1.6 microg/mL for both components. The method proved to be sensitive, rapid, accurate and suitable for the determination of oleanolic acid and ursolic acid in cornel.

Chromatography, Micellar Electrokinetic Capillary↗

MECC determination of oleanolic acid and ursolic acid isomers in Ligustrum lucidum Ait.

In this paper, a novel method to separate and determine oleanolic acid and ursolic acid isomers in Ligustrum lucidum Ait was studied by micellar electrokinetic capillary chromatography (MECC). The baseline separation of the two analytes were obtained on the condition that the buffer contained 15 mmol/l disodium hydrogen phosphate, 15 mmol/l disodium tetreborate, 10 mmol/l SDS and 5% (v/v) alcohol. The contents of the oleanolic acid and ursolic acid were determined in L. lucidum Ait, Folium photiniae and Flos campsis; they were 78.3 (R.S.D. = 2.75%) and 20.7 mg/g (R.S.D. = 2.97%), 27.9 (R.S.D. = 3.67%) and 79.8 mg/g (R.S.D. = 3.44%), 65.5 (R.S.D. = 3.73%) and 60.4 mg/g (R.S.D. = 4.06%) (n = 5), respectively. The recoveries of the analytes in the extract of L. lucidum Ait were 102%, (R.S.D. = 2.85%) for oleanolic acid and 104% (R.S.D. = 3.21%) for ursolic acid (n = 5). With the emphasis on the effects of SDS and alcohol concentrations on the separation of the isomers were investigated.

Algorithms↗

Determination of free isomeric oleanolic acid and ursolic acid in Pterocephalus hookeri by capillary zone electrophoresis.

A rapid capillary zone electophoresis (CZE) method for the quantification of two bioactive terpenes in Pterocephalus hookeri was developed. With beta-cyclodextrin as an additive, excellent resolution for these hydrophobic isomers can be obtained in less than 11 min. Linear calibration range for oleanolic acid was between 15.6 and 1000 microg/ml (r=0.9998), for ursolic acid between 31.2 and 1000 microg/ml (r=0.9992). The limits of detection for oleanolic acid and ursolic acid were 3.4 and 3.8 microg/ml, respectively. The contents of the free oleanolic acid and ursolic acid in P. hookeri were determined with recoveries ranging from 95.2 to 106.0%. The contents of oleanolic and ursolic acids were found to be 0.21 mg/g (RSD 5.49%) and 0.53 mg/g (RSD 3.37%), respectively. After hydrolysis by acid, these values were 1.12 mg/g (RSD 3.29%) and 0.43 mg/g (RSD 3.42%).

Drugs, Chinese Herbal↗

[Determination of oleanolic acid and ursolic acid in spica Prunellae by derivative GC method].

OBJECTIVE: To develop a GC method to determine the oleanolic acid and ursolic acid in Spica Prunellae. METHOD: Before GC analysis, the sample was derivatized with CH2N2 solution. The GC conditions were as follows: comumn-10% SE-30(2m x 3mm) and column temperature -270 degrees C. RESULT: The two constituents were well separated and had good linearity in the range of 0.0025-0.4000 mg/ml. The average recoveries and RSD of oleanolic acid were 93.53% and 3.5%, 94.18% and 3.0% respectively. CONCLUSION: The method is good for determining oleanolic acid and ursolic acid in Chinese medicines.

Chromatography, Gas↗

Isolation, characterization and biological activity of betulinic acid and ursolic acid from Vitex negundo L.

Two pentacyclic triterpenoids, betulinic acid (3beta-hydroxylup-20-(29)-en-28-oic acid) (3), and ursolic acid (2beta-hydroxyurs-12-en-28-oic acid) (4), were isolated for the first time from leaves of Vitex negundo L. along with three other compounds; an aliphatic alcohol n-hentriacontanol (1), beta-sitosterol (2) and p-hydroxybenzoic acid (5). Their antifeedant activity against the larvae of an agricultural pest, the castor semilooper (Achoea janata), in a no-choice laboratory assay and their antibacterial activity against Bacillus subtilis and Escherichia coli, by the paper disc method, were tested. Ursolic acid (4) showed more effective antifeedant activity than the betulinic acid (3). However, both these compounds have shown a very mild antibacterial activity. The other three compounds; n-hentriacontanol (1), beta-sitosterol (2) and p-hydroxybenzoic acid (5) have shown a little antifeedant activity against the larvae and did not show any antibacterial activity.

Animals↗

Involvement of cytokines in the hepatic expression of metallothionein by ursolic acid.

Ursolic acid (UA), a pentacyclic triterpene acid, is reported to have inducing activity of hepatic metallothionein (MT) which responsible for the detoxification of heavy metals; however, the mechanism underlying its effects is poorly understood. To further determine the underlying mechanism of UA, this study investigated the effects of UA on the induction of hepatic MT expression in an in vitro model, using murine hepatoma cell line Hepa-1c1c7 and murine macrophage cell line RAW 264.7 cell cultures. The UA added directly to Hepa-1c1c7 cells had no effect on MT induction. However, MT and its mRNA levels were markedly increased when Hepa-1c1c7 cells were cultured with UA-treated conditioned media from RAW 264.7. Concomitant treatment with UA and pentoxifylline, a TNF-alpha synthesis inhibitor, to RAW 264.7 cells decreased the effects of UA on the MT induction. In UA-exposed RAW 264.7 cell cultures, TNF-alpha and IL-6 production and TNF-alpha and IL-6 mRNA levels increased. When antibodies to TNF-alpha or/and IL-6 were added to UA-treated conditioned media from RAW 264.7, the MT induction activity was inhibited. These results demonstrate that UA induces hepatic MT expression through TNF-alpha and IL-6 released from UA-activated macrophages, which may be the mechanism, whereby UA elicits its biological effects.

Animals↗

Protective effect of oleanolic acid and ursolic acid against lipid peroxidation.

In a search for plant products against cancer, the protective effect of two plant products, ursolic acid isolated from Ocimum sanctum and oleanolic acid from Eugenia jumbolana against free radical induced damage was studied. Three different standard systems viz., ascorbic acid, carbon tetrachloride, ADP/Iron were used to induce lipid peroxidation in isolated rat liver microsomes in vitro. Both oleanolic acid and ursolic acid offered remarkable protection of 90% and 60% respectively. Both the compounds did not induce lipid peroxidation by themselves that improved the therapeutic application.

Adenosine Diphosphate↗

Oleanolic acid and ursolic acid: research perspectives.

Oleanolic acid and ursolic acid are ubiquitous triterpenoids in plant kingdom, medicinal herbs, and are integral part of the human diet. During the last decade over 700 research articles have been published on their research, reflecting tremendous interest and progress in our understanding of these triterpenoids. This included the isolation and purification of these tritepernoids from various plants and herbs, the chemical modifications to make more effective and water soluble derivatives, the pharmacological research on their beneficial effects, the toxicity studies, and the clinical use of these triterpenoids in various diseases including anticancer chemotherapies. A briefly commentary is attempted here for their research perspectives.

Animals↗

Induced accumulation of oleanolic acid and ursolic acid in cell suspension cultures of Uncaria tomentosa.

Increasing sucrose from 20 to 50 g l(-1) in Uncaria tomentosa cell suspension cultures enhanced ursolic acid and oleanolic acid production from 129 +/- 61 to 553 +/- 193 microg g(-1) cell dry wt. The maximal concentration of both triterpenes (1680 +/- 39 microg g(-1) cell dry wt) was 8 days after elicitation by jasmonic acid, while yeast extract or citrus pectin treatments produced 1189 +/- 20 or 1120 +/- 26 microg g(-1) cell dry wt, respectively. The ratio of ursolic acid:oleanolic acid was constant at 70:30.

Biomass↗

Oleanolic acid and ursolic acid stabilize liposomal membranes.

The effects of oleanolic acid (OA) and ursolic acid (UA) on the fluidity and stability of dipalmitoyl phosphatidylcholine (DPPC) liposomal membrane were monitored by measuring the fluorescence polarization of 1,6-diphenyl-1,3,5-hexatriene labeled in the liposomal membrane and the leakage of calcein from the probe-encapsulated liposomes. The experiments with the liposomes made of DPPC and OA or UA showed that OA and UA exhibited a moderate fluidity-modulating effect for the liquid-crystalline liposomal membrane, and a strong condensing effect for both crystalline and liquid-crystalline liposomal membranes. Their effects were comparable to those of cholesterol. These results suggest that their fluidity-modulating and condensing effects might have some implications in their biological functions.

Diphenylhexatriene↗

Effects of oleanolic acid and ursolic acid on inhibiting tumor growth and enhancing the recovery of hematopoietic system postirradiation in mice.

Two triterpene acids, oleanolic acid (OA) and ursolic acid (UA) were examined for their ability to inhibit the tumor growth and modify hematopoiesis after irradiation in three experimental systems: (a) in vivo anti-tumor activity of implanted tumor by ascitic cells was found to be augmented by addition of OA and UA at a high concentration and inhibited in a dose-dependent manner; (b) in the sublethal whole-body irradiated mice treated with the drugs in the 30 min preirradiation period, enhanced effects of OA and UA on peripheral leukocytes were observed by a different significance, and (c) when these chemicals were administered i.p. to mice 30 min before 4 Gy irradiation, both OA and UA enhanced the postirradiation responses of splenic blastogenesis by PHA. UA was a more potent tumorigenic inhibitor than OA. Combining with the gamma-irradiation, however, there was no significant synergetic effect on their anti-tumor activity. The beneficial effects of OA and UA on hematopoiesis and immunocompetence under this study, suggested they might partially play a role in anti-cancer and, furthermore, with the ability to decrease undesirable radiation damage to the hematopoietic tissue after radiotherapy.

Animals↗

Phytocomponents of triterpenoids, oleanolic acid and ursolic acid, regulated differently the processing of epidermal keratinocytes via PPAR-alpha pathway.

Naturally occurring triterpenoids such as oleanolic acid (OA) and ursolic acid (UA) are known to have anti-inflammatory and anticarcinogenic activities in some types of cells. Although it has been reported that UA increases the amount of ceramide in keratinocytes, there is little study on the mechanism of triterpenoids involved in the differentiation of keratinocytes as well as their effects on epidermal permeability barrier. A study was therefore conducted to determine whether OA and UA could stimulate the differentiation of epidermal keratinocytes through peroxisome proliferator-activated receptor (PPAR)-alpha activation. This work was then extended to investigate the rate of formation of cornified envelope as a marker in the terminal differentiation of keratinocytes and the amount of transglutaminase in human keratinocytes treated with OA and UA. It was shown that OA induced the differentiation of keratinocytes, whereas UA had little effect. In addition, reporter gene assay using PPAR response element activity demonstrated that OA might be related to the increase of PPAR-alpha activity in CV-1 cells. Moreover, it enhanced the recovery of epidermal permeability barrier function as well as increased ceramides in epidermis after topical application. We therefore propose that the effect of OA on the stimulation of differentiation in epidermal keratinocytes seems to be highly related to activation of PPAR-alpha.

Animals↗

Inhibition of cytochrome P450 activities by oleanolic acid and ursolic acid in human liver microsomes.

Oleanolic acid (OA) and ursolic acid (UA), triterpene acids having numerous pharmacological activities including anti-inflammatory, anti-cancer, and hepato-protective effects, were tested for their ability to modulate the activities of several cytochrome P450 (CYP) enzymes using human liver microsomes. OA competitively inhibited CYP1A2-catalyzed phenacetin O-deethylation and CYP3A4-catalyzed midazolam 1-hydroxylation, the major human drug metabolizing CYPs, with IC50 (Ki) values of 143.5 (74.2) microM and 78.9 (41.0) microM, respectively. UA competitively inhibited CYP2C19-catalyzed S-mephenytoin 4'-hydroxylation with an IC50 (Ki) value of 119.7 (80.3) microM. However, other CYPs tested showed no or weak inhibition by both OA and UA. The present study demonstrates that OA and UA have inhibitory effects on CYP isoforms using human liver microsomes. It is thus likely that consumption of herbal medicines containing OA or UA, or administration of OA or UA, can cause drug interactions in humans when used concomitantly with drugs that are metabolized primarily by CYP isoforms. In addition, it appears that the inhibitory effect of OA on CYP1A2 is, in part, related to its anti-inflammatory and anticancer activities.

Chromatography, High Pressure Liquid↗