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Effects of ursolic acid and oleanolic acid on human colon carcinoma cell line HCT15.

AIM: Ursolic acid (UA) and oleanolic acid (OA) are triperpene acids having a similar chemical structure and are distributed wildly in plants all over the world. In recent years, it was found that they had marked anti-tumor effects. There is little literature currently available regarding their effects on colon carcinoma cells. The present study was designed to investigate their inhibitory effects on human colon carcinoma cell line HCT15. METHODS: HCT15 cells were cultured with different drugs. The treated cells were stained with hematoxylin-eosin and their morphologic changes observed under a light microscope. The cytotoxicity of these drugs was evaluated by tetrazolium dye assay. Cell cycle analysis was performed by flow cytometry (FCM). Data were expressed as means +/-SEM and Analysis of variance and Student' t-test for individual comparisons. RESULTS: Twenty-four to 72 h after UA or OA 60 micromol/L treatment, the numbers of dead cells and cell fragments were increased and most cells were dead at the 72nd hour. The cytotoxicity of UA was stronger than that of OA. Seventy-eight hours after 30 micromol/L of UA or OA treatment, a number of cells were degenerated, but cell fragments were rarely seen. The IC(50) values for UA and OA were 30 and 60 micromol/L, respectively. Proliferation assay showed that proliferation of UA and OA-treated cells was slightly increased at 24h and significantly decreased at 48 h and 60 h, whereas untreated control cells maintained an exponential growth curve. Cell cycle analysis by FCM showed HCT15 cells treated with UA 30 and OA 60 for 36 h and 72 h gradually accumulated in G(0)/G(1) phase (both drugs P<0.05 for 72 h), with a concomitant decrease of cell populations in S phase (both drugs P<0.01 for 72 h) and no detectable apoptotic fraction. CONCLUSION: UA and OA have significant anti-tumor activity. The effect of UA is stronger than that of OA. The possible mechanism of action is that both drugs have an inhibitory effect on tumor cell proliferation through cell-cycle arrest.

Antineoplastic Agents, Phytogenic↗

Regulation of the phosphatidylinositol 3-kinase-Akt and the mitogen-activated protein kinase pathways by ursolic acid in human endometrial cancer cells.

The phosphatidylinositol 3-kinase-Akt (PI3K-Akt) pathway and the mitogen activated protein kinase (MAPK) pathway are important in the development and proliferation of various human cancers. It has been found recently that ursolic acid treatment affects growth and apoptosis in cancer cells. We sought to determine whether prominent signaling pathways, including the PI3K-Akt pathway and the MAPK (JNK, P38, and P44/42) pathway mediate these effects. Endometrial cancer cells often have high levels of phosphorylated Akt seen in conjunction with a PTEN mutation or deletion. Elevation in Akt protects the cancer cell from apoptosis. Ursolic acid treatment moderately decreased PI3K levels in SNG-II cells. Treatment also decreased phospho-Akt and phospho-P44/42 in a dose- and time-dependent fashion, dramatically in SNG-II cells and moderately in HEC108 cells. This effect was most pronounced following treatment with 50 mum ursolic acid for 72 h. Our study found inhibition of both the PI3K-Akt pathway and the MAPK pathway in two endometrial cancer cell lines, SNG-II and the poorly differentiated HEC108 cell line.

Cell Line, Tumor↗

[Mechanisms of inhibiting proliferation and inducing apoptosis of human gastric cancer cell line SGC7901 by ursolic acid].

BACKGROUND & OBJECTIVE: Some studies have showed that ursolic acid (UA) can inhibit proliferation and induce apoptosis of many tumor cell lines, however its effect on gastric cancer cells has rarely been reported. Cyclooxygenase-2 (COX-2) is highly expressed in various precursor lesions and cancerous tissues. This study was to investigate the effect of UA on COX-2, Bcl-2 and Bax expression in human gastric cancer cell line SGC7901, and explore its potential mechanisms of inhibiting proliferation and inducing apoptosis. METHODS: MTT assay was used to observe the effect of UA (0, 10, 20, 30, 40 micromol/L) on proliferation of SGC7901 cells. Cell apoptosis was observed by fluorescence microscopy when treated with UA for 24 h. Cell cycle and apoptosis were analyzed by flow cytometry (FCM). The expression of COX-2, Bcl-2 and Bax was detected by Western blot. The level of prostaglandin E2 (PGE2) was measured by radioimmunoassay (RIA). RESULTS: UA (20-40 micromol/L) significantly inhibited the proliferation of SGC7901 cells in dose-and time-dependent manners, the IC50 value of UA at 12 h, 24 h, 36 h, 48 h were (57.50+/-1.18) micromol/L, (34.28+/-2.05) micromol/L, (27.54+/-1.11) micromol/L, and (24.83+/-1.02) micromol/L, respectively. When treated with 20-40 micromol/L UA for 24 h, SGC7901 cells were arrested at G0/G1 phase, and the apoptosis rates were (9.10+/-2.39)%, (26.30+/-1.25)%, and (35.20+/-2.26)%, respectively; meanwhile, COX-2 expression and its catalysate PGE2 were decreased, Bcl-2 expression was also decreased, whereas Bax expression was unchanged. CONCLUSION: UA could inhibit proliferation and induce apoptosis of SGC7901 cells through arresting cell cycle, inhibiting COX-2 expression to reduce PGE2 production and down-regulate Bcl-2 expression.

Antineoplastic Agents, Phytogenic↗

Reduction of DNA-damaging effects of anti-HIV drug 3'-azido-3'-dideoxythymidine on human cells by ursolic acid and lignin biopolymer.

In this study we verified our assumption that the genotoxicity of the effective anti-HIV drug 3'-azido-3'-dideoxythymidine (AZT) on human cells could be reduced by non-toxic concentrations of two antioxidants that occur frequently in nature (ursolic acid and lignin biopolymer). Cytotoxicity of these natural compounds, well-known by their antimutagenic effects, was evaluated by the trypan blue exclusion technique. Genotoxic activity of AZT was measured on the basis of AZT-induced single and double strand breaks to DNA in two histopathologically different types of human cells, hepatoma cells HepG2 and colonic cells Caco-2. Induction of DNA strand breaks was measured by the comet assay processed in parallel at pH > or = 13.0 (standard alkaline technique which enables to recognize single strand DNA breaks of different origin) and at pH = 9.0 (neutral technique which enables to recognize double strand DNA breaks). As the level of AZT-induced double strand DNA breaks was rather low, protective effects of the antioxidants tested were evaluated only against AZT-induced single strand DNA breaks by the standard alkaline comet assay. Our findings showed that 1 h pre-incubation of cells with ursolic acid or lignin preceding to 3 h treatment of cells with AZT (3 mg/ml) significantly decreased in both cell types the level of AZT-induced single strand DNA breaks. Pre-incubation of HepG2 or Caco-2 cells with a mixture of both natural antioxidants did not increase the effects of individual treatments. This study confirms that AZT is genotoxic toward both used cell types of human origin and that ursolic acid and biopolymer lignin can protect the cells studied against genotoxic effect of AZT.

Anti-HIV Agents↗

Topical anti-inflammatory activity of Salvia officinalis L. leaves: the relevance of ursolic acid.

Salvia officinalis L. leaves, obtained from four plant populations of different origin, were investigated for their topical anti-inflammatory properties. The n-hexane and the chloroform extracts dose-dependently inhibited the Croton oil-induced ear oedema in mice, the chloroform extracts being the most active. By contrast, the methanol extracts showed a very low effect and the essential oil was inactive. Chemical and pharmacological investigation of the most potent chloroform extract, issued from an autochthonous sage population grown in the submediterranean climatic region of Slovenia, revealed ursolic acid as the main component involved in its anti-inflammatory activity. The anti-inflammatory effect of ursolic acid (ID50 = 0.14 microMoles/cm2) was two fold more potent than that of indomethacin (ID50 = 0.26 microMoles/cm2), which was used as a reference non-steroidal anti-inflammatory drug (NSAID). The content of ursolic acid in sage and sage-based remedies for the topical treatment of inflammatory diseases is proposed as a parameter for quality control purposes.

Administration, Topical↗

In vivo analgesic and anti-inflammatory activities of ursolic acid and oleanoic acid from Miconia albicans (Melastomataceae).

The aim of this work was to use in vivo models to evaluate the analgesic and anti-inflammatory activities of ursolic acid (UA) and oleanoic acid (OA), the major compounds isolated as an isomeric mixture from the crude methylene chloride extract of Miconia albicans aerial parts in an attempt to clarify if these compounds are responsible for the analgesic properties displayed by this plant. Ursolic acid inhibited abdominal constriction in a dose-dependent manner, and the result obtained at a content of 40 mg kg(-1) was similar to that produced by administration of acetylsalicylic acid at a content of 100 mg kg(-1). Both acids reduced the number of paw licks in the second phase of the formalin test, and both of them displayed a significant anti-inflammatory effect at a content of 40 mg kg(-1). It is noteworthy that the administration of the isolated mixture, containing 65% ursolic acid/35% oleanolic acid, did not display significant analgesic and anti-inflammatory activities. On the basis of the obtained results, considering that the mixture of UA and OA was poorly active, it is suggested that other compounds, rather than UA and OA, should be responsible for the evaluated activities in the crude extract, since the crude extract samples displayed good activities.

Analgesics↗

Characterization of ursolic acid as a lipoxygenase and cyclooxygenase inhibitor using macrophages, platelets and differentiated HL60 leukemic cells.

A new property of ursolic acid, lipoxygenase and cyclooxygenase inhibition, has been described in an acetone-extract of heather flowers (Calluna vulgaris) which could help explain the anti-inflammatory characteristics of this plant. In mouse peritoneal macrophages, human platelets and differentiated HL60 leukemic cells, ursolic acid, at 1 microM, blocks arachidonate metabolism.

Animals↗

Ursolic acid: an anti-tumorigenic and chemopreventive activity. Minireview.

Ursolic acid, UA, as a pentacyclic triterpene is of interest to scientists in the area of oncology because of its cytotoxicity, induction of differentiation, anti-mutagenic, antiviral and anti-invasive activities. UA is capable of inducing apoptosis in tumor cells on one side and to prevent malignant transformation of normal cells on the other side. It also interferes with numerous enzymes, including the ones serving directly to DNA synthesis. The aim of this review is to summarize reports on UA biological properties and to show its main anti-tumor effects and chemopreventive properties in normal cells.

Animals↗

Liposomal ursolic acid (merotaine) increases ceramides and collagen in human skin.

Skin wrinkling and xerosis associated with aging result from decreases of dermal collagen and stratum corneum ceramide content. This study demonstrates that ursolic acid incorporated into liposomes (Merotaine) increases both the ceramide content of cultured normal human epidermal keratinocytes and the collagen content of cultured normal human dermal fibroblasts. In clinical tests, Merotaine increased the ceramide content in human skin over an 11-day period. Merotaine has effects on keratinocyte differentiation and dermal fibroblast collagen synthesis similar to retinoids. However, unlike retinoids, Merotaine increases ceramide content of human keratinocytes. Ursolic acid may bind to members of the glucocorticoid receptor family to initiate changes in keratinocyte gene transcription.

Cell Differentiation↗

Proliferative inhibition, cell-cycle dysregulation, and induction of apoptosis by ursolic acid in human non-small cell lung cancer A549 cells.

Ursolic acid (UA) is a pentacyclic triterpene compound isolated from many types of medicinal plants and is present in human diet. It has been reported to possess a wide range of pharmacological properties, and is one of the most promising chemopreventive agents for cancer. Here, we report that UA inhibits the cell proliferation of human lung cancer cell line A549 and provide a molecular understanding of this effect. The results showed that UA blocked cell cycle progression in the G1 phase that was associated with a marked decrease in the protein expression of cyclin D1, D2, and E and their activating partner cdk2, 4, and 6 with concomitant induction of p21/WAF1. This accumulation of p21/WAF1 might be through a p53-dependent manner. Further, UA treatment also resulted in the triggering of apoptosis as determined by DNA fragmentation assay. This effect was found to correlate with the up-regulation of Fas/APO-1, Fas ligand, and Bax, and down-regulation of NF-kappaB, Bcl-2, and Bcl-XL. Taken together, our study indicated that UA might be a potential chemopreventive agent for lung cancer.

Antineoplastic Agents, Phytogenic↗

Apoptotic activity of ursolic acid may correlate with the inhibition of initiation of DNA replication.

Ursolic acid (UA), a pentacyclic triterpene acid, has been reported to exhibit anti-tumor activity. In this study, we investigated the pro-apoptotic effect of UA on HepG2 human hepatoblastoma cells. Treatment with UA decreased the viability of HepG2 cells in a concentration- and time-dependent manner. Furthermore, 30 microM of UA induced DNA fragmentation and subdiploid cells and enhanced the release of cytochrome c and the activation of caspase-3. These results suggest that UA induces cell death through apoptosis, which may be mediated by cytochrome c-dependent caspase-3 activation. In addition, cell-cycle analysis revealed that UA-treated cells were arrested predominantly in the G(0) and G(1) phases with a concomitant decrease in the cell population of S phase. Moreover, expression of p21(WAF1), a cell-cycle regulator, was increased by UA, indicating that p21(WAF1) might mediate UA-induced cell-cycle arrest. However, UA markedly inhibited SV40 DNA replication in the initiation stage in vitro and significantly reduced the DNA cleaving of topoisomerase I and the ssDNA binding activity of replication protein A. These results indicate that the inhibition of DNA replication by UA may result from blockade of the establishment of the replication fork during initiation stage, consequently contributing to UA-induced cell-cycle arrest. Taken together, we suggest that UA-induced cell-cycle arrest may be mediated by inhibition of DNA replication and the increase of p21(WAF1) expression, which induces the release of cytochrome c and the activation of caspase-3, leading to apoptosis of HepG2 cells.

Antineoplastic Agents, Phytogenic↗

[Study on the extracting of ursolic acid by uniform design].

Uniform design method was adopted to research the extraction of ursolic acid. The ethanol concentration, the extraction time, the liquid to solid ratio and the extraction times were researched by U7 (7(4)). The optimal conditions were achieved by optimization treatment and confirmed by experiment:the ethanol concentration being 75%, liquid to solid ratio being 7, extraction time 60 minutes, extracted two times.

Drugs, Chinese Herbal↗

Inhibition of skin tumorigenesis by rosemary and its constituents carnosol and ursolic acid.

A methanol extract of the leaves of the plant Rosmarinus officinalis L. (rosemary) was evaluated for its effects on tumor initiation and promotion in mouse skin. Application of rosemary to mouse skin inhibited the covalent binding of benzo(a)pyrene [B(a)P] to epidermal DNA and inhibited tumor initiation by B(a)P and 7,12-dimethylbenz[a]anthracene (DMBA). Topical application of 20 nmol B(a)P to the backs of mice once weekly for 10 weeks, followed 1 week later by promotion with 15 nmol 12-O-tetradecanoylphorbol-13-acetate (TPA) twice weekly for 21 weeks, resulted in the formation of 7.1 tumors per mouse. In a parallel group of animals that were treated topically with 1.2 or 3.6 mg of rosemary 5 min prior to each application of B(a)P, the number of tumors per mouse was decreased by 54 or 64%, respectively. Application of rosemary to mouse skin also inhibited TPA-induced ornithine decarboxylase activity, TPA-induced inflammation, arachidonic acid-induced inflammation, TPA-induced hyperplasia, and TPA-induced tumor promotion. Mice initiated with 200 nmol DMBA and promoted with 5 nmol TPA twice weekly for 19 weeks developed an average of 17.2 skin tumors per mouse. Treatment of the DMBA-initiated mice with 0.4, 1.2, or 3.6 mg of rosemary together with 5 nmol TPA twice weekly for 19 weeks inhibited the number of TPA-induced skin tumors per mouse by 40, 68, or 99%, respectively. Topical application of carnosol or ursolic acid isolated from rosemary inhibited TPA-induced ear inflammation, ornithine decarboxylase activity, and tumor promotion. Topical application of 1, 3, or 10 mumol carnosol together with 5 nmol TPA twice weekly for 20 weeks to the backs of mice previously initiated with DMBA inhibited the number of skin tumors per mouse by 38, 63, or 78%, respectively. Topical application of 0.1, 0.3, 1, or 2 mumol ursolic acid together with 5 nmol TPA twice weekly for 20 weeks to DMBA-initiated mice inhibited the number of tumors per mouse by 45-61%.

9,10-Dimethyl-1,2-benzanthracene↗

Ursolic acid induces apoptosis through caspase-3 activation and cell cycle arrest in HaCat cells.

Ursolic acid (UA) is a pentacyclic triterpene compound isolated from many kinds of medicinal plants and present in human diet. In this study, we investigated the pro-apoptotic effect of UA on HaCat derived keratinocyte cell line. Treatment with UA decreased the viability of HaCat cells in a concentration- and time-dependent manner. In addition, cell cycle analysis revealed that UA treated HaCat cells were blocked predominantly in G1 phase. Moreover, expression of p21WAF1, a cell cycle regulator, was increased by UA, indicating that UA-induced cell cycle arrest could be mediated through p21WAF1. During UA treatment, we also demonstrated that p53 was phosphorylated at serine 392 and translocated to the nucleus. It is well established that p53 achieves its tumor suppressor activity by inducing apoptosis on cells. To define the apoptotic process in our system, we examined effect of UA on caspase activities, and demonstrated caspase-3 activation. In conclusion, our results suggest that UA induces: i) cell cycle arrest concomitantly with the apparition of the apoptotic sub group G1 peak, and ii) cell death through apoptosis, which is mediated by caspase-3.

Apoptosis↗

Ursolic acid inhibits proliferation and stimulates apoptosis in HT29 cells following activation of alkaline sphingomyelinase.

BACKGROUND: Ursolic acid (UA) is a plant component with anti-inflammatory and anti-proliferative properties. Its effect on colon cancer is not clear. We studied the anticancer effects of UA on human colon cancer cells. MATERIALS AND METHODS: HT-29 cells were treated with UA. Cell proliferation was determined by cleavage of WST-1. Apoptosis was assayed by cytosolic DNA-histone complex and caspase activity. Sphingomyelinase and alkaline phosphatase were determined against specific substrates. RESULTS: UA dose-dependently decreased cell proliferation and induced apoptosis, accompanied by activation of caspase 3, 8 and 9. Its antiproliferative effect was stronger than those of sulindac and camptothecin and its apoptotic effect stronger than those of boswellic acid and sulindac. UA selectively increased the activity of intestinal alkaline sphingomyelinase, which occurred before activation of caspases. UA had no effect on alkaline phosphatase activity. CONCLUSION: UA has strong anti-proliferative and apoptotic effects on HT-29 cells. The effects may be mediated by alkaline sphingomyelinase activation.

Alkaline Phosphatase↗

[Determination of ursolic acid in herba of Verbena officinalis by HPLC].

OBJECTIVE: To establish a HPLC method for determination of ursolic acid in dried aerial part of Verbena officinalis. METHOD: The column used was a Kromasil C18 (4.6 mm x 250 mm) packed with a 5 microns stationary phase. The mobile phase consisted of methanol-sodium phosphate buffer [monobasic sodium phosphate (MW = 119.98) 1.7997 g and phosphoric acid (85%) 1.02 mL, combined and brought the total volume of 1,000 mL with water] (89:11); the mobile phase was maintained at a flow-rate of 0.8 mL per minute; the column was maintained at 40 degrees C; the DAD detector was set at 210 nm. RESULTS: The liner range was 0.251-10.04 micrograms (r = 1.0000). An average recovery of 98.1% (n = 6) was obtained with a RSD of 1.0%. CONCLUSION: The method is simple, accurate and suitable for the qualify control.

Chromatography, High Pressure Liquid↗