Production of inflammation by diterpene esters [proceedings].
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From the roots of Croton flavens L., 3 highly irritant and tumor promoting Croton factors F1--F3 and the corresponding 3 cryptic Croton factors F'1--F'3 were isolated and characterized as novel esters of 16-hydroxy- and 4-deoxy-16-hydroxyphorbol, respectively. These findings suggest that tumor promoters of the phorbol ester type, ingested through the widespread and frequent use of Croton flavens according to local habits, may be causally related to the well recognized high rate of esophageal cancer on Curaçao.
The toxic and irritant principles of the seed oil and of the latex of the caper spurge (Euphorbia lathyris L.) were isolated together with several non irritants of similar chemical structure. From the seed oil two irritant Euphorbia factors L5 and L6 and from the latex a mixture of irritant Euphorbia factors were obtained. Euphorbia factor L5 was identified as 3-hexadecanoate of the new tetracyclic, poly-functional diterpene parent alcohol ingenol. Euphorbia factor L6 most probably is the 3-tetradeca-2,4,6,8,10-penta-enoic acid ester of ingenol. The mixture of Euphorbia factors was shown to contain esters of ingenol and of 16-hydroxy-ingenol, respectively, each containing a long chain unsaturated fatty acid, most probably in 3-position. The non irritants from the seed oil comprise ingenol-20-hexadecanoate (compound L4) and several esters of macrocyclic diterpenes of the new lathyrol type (compounds L1-L3, L8, and possibly L7). Compound L4 is a positional isomer of Euphorbia factor L5 and most probably an artefact formed during the isolation procedure. The macrocyclic diterpenes are of interest as possible intermediates in the biogenesis of tetracyclic diterpene parents of cocarcinogenic esters. The parent alcohols ingenol and 16-hydroxy-ingenol are inactive irritants. As compared to croton oil factor A1 (TPA), Euphorbia factor L5 exhibits about 1/10 of its irritant activity on the ear and about 1/10 of its cocarcinogenic activity on the back skin of mice. As an irritant Euphorbia factor L6 shows about 1/5 of the activity of A1. Structure/activity relationships of ingenol and phorbol esters and the possible role of cocarcinogens of plant origin as second order carcinogenic risk factors are discussed.
Within the last 10 years numerous new and typical exogenous cocarcinogens were identified chemically as well as biologically and characterized biochemically as initiation or tumor promoters. They are highly irritant diterpene esters of plant origin. Promoters of this type were recently detected also in the Euphorbiacea Croton flavens L., the multiple use of which for stimulants according to local habits was previously held responsible for the unusually high rate of esophageal cancer on Curacao. This detection confirms for the first time that in the etiology of human cancer besides solitary carcinogens (first-order carcinogenic risk factors) also cocarcinogens of the promoter type have to be considered (second-order carcinogenic risk factors). -- The active principles of the diterpene ester type are the strongest promoters known so far; they are noninitiators and nonmutagens. Of the manyfold biochemical activities of these promoters the three most actual are: the TPA molecule does not require activation by metabolic alteration, it releases very rapidly prostaglandin E2 from cellular membranes and it activates latent DNA-viral genoms.
A method is described for testing of diterpene esters for irritancy. The technique involves the application of acetone solutions of the toxins to the inside ears of female LACA mice. The number of mice responding per group and the log10 dose data were evaluated using probit analysis with the assistance of a computer program. This evaluation has the advantage that approximations inherent with an arithmetical evaluation were eliminated, and limits may be placed upon the standard deviation of the irritant dose 50% (ID50). In addition, the use of a chi2 test automatically eliminated results which were not attributed to random biological variation. Observations of the time to onset and the persistence of the inflammation have led to the suggestion that daphnane orthoester diterpenes may elicit their effect by means of a direct action at a receptor site in skin, whereas the tigliane O-acyl esters may in part act by causing more general tissue damage.
The effect of various tumor initiators and promoters on induction of persisting Epstein-Barr virus (EBV) in different lines of lymphoblastoid cells was analyzed. Neither five polycyclic aromatic hydrocarbons, amongst them potent tumor initiators (e.g., 7,12-dimethylbenz[a]anthracene), nor the potent (ultimate) liver carcinogen N-acetoxy-N-2-acetylamino-fluorene induced EBV. A series of compounds, representing three classes of tumor-promoting diterpene esters (e.g., 12-O-tetradecanoylphorbol-13-acetate), efficiently induced EBV in persistently infected cells. The concentration required for maximal induction ranged between 0.5 and 100 nM. Some nonpromoting diterpenes (phorbol, 4alpha-phorbol-12,13-didecanoate, and ingenol) did not induce EBV. However, the nonpromoters, resiniferatoxin and 12-deoxyphorbol-13-decatrienoate, were effective, whereas anthralin, a tumor promoter, did not induce EBV. In three lines of EBV genome-carrying cells (Raji, NC-37, and RPMI 64-10) only abortive induction was noted, leading exclusively to synthesis of early antigen. In cells of lines with low spontaneous virus release (P3HR-1, B95-8, and QIMR-Wil), upon treatment with tetradecanoylphorbol acetate, approximately 20-40 times more viral DNA was recovered as compared to untreated controls. Viral DNA from tetradeca-noylphorbol acetate-induced cultures revealed the same restriction endonuclease cleavage pattern as viral DNA obtained from noninduced cells. Within 10 days after induction, release of infectious virus increased approximately by one order of magnitude. Prostaglandins, reported to be released after treatment with tumor promoters, were ineffective in virus induction under the conditions tested.
When added to mouse neuroblastoma cultures, the potent tumor promoter 12-O-tetradecanoyl-phorbol-13-acetate (TPA) inhibits spontaneous neurite formation as well as that induced in response to serum deprivation, prostaglandin E1, 5-bromo-2'-deoxyuridine, and papaverine. Other tumor-promoting macrocyclic plant diterpenes also inhibit neurite formation, whereas nonpromoting diterpenes do not. Inhibition by TPA was reversible and was unrelated to toxicity.
Leonurus hereterophyllus Sweet is a traditional Chinese herbal medicine used to treat menstrual disturbances in woman. A new labdane diterpene, prehispanolone LC-5504, namely 9 alpha, 13R,15,16-diepoxy-labdane-14-en-7-one, had been isolated. The authors studied the synergism of labdane diterpene, prehispanolone LC-5504 and Con A and LPS on T cells and B cells proliferation of BALB/c female mice in vitro. They showed that: (1) proliferation of T cells was demonstrated by administration of LC-5504 of various concentrations together with Con A. This proliferation was 5-8 times stronger than that observed when Con A was used alone. Such effect on T cells was not observed when LC-5504 was used alone. (2) Proliferation of B cells was not observed whether LC-5504 was used alone or together with LPS.
Spontaneous and induced differentiation of murine erythroleukemia cells (strain 745A DS19 ) is reversibly inhibited by 12-O-tetradecanoylphorbol-13-acetate (TPA), a potent promoter of mouse skin carcinogenesis, and by other tumor-promoting macrocyclic plant diterpenes, but it is not by nonpromoting diterpenes. Twelve clones randomly isolated from this strain vary in their response to TPA. All clones are induced to differentiate by several compounds, the most potent of which is hexamethylene bisacetamide. In six clones TPA (100 ng/ml) caused greater than 90% inhibition of differentiation, as measured by the appearance of benzidine-reactive cells. In two clones cell differentiation was not inhibited by TPA even at concentrations as high as 1 microgram/ml. In four clones, differentiation was only partially inhibited (16 to 47%) by TPA. Clones resistant to TPA inhibition of differentiation were also resistant to structurally related tumor-promoting agents. The isolation of variant cell lines, sensitive and resistant to TPA, provides a tool for elucidating the mechanism of tumor promoter-mediated inhibition of cell differentiation.
12-O-Tetradecanoylphorbol-13-acetate, a potent promoter of carcinogenesis in mouse skin, enhanced differentiation of cultured mouse myeloid leukemia cells (M1) induced by human urinary protein or by lipopolysaccharide from Salmonella typhosa. 12-O-Tetradecanoylphorbol-13-acetate enhanced differentiation of all the markers tested, such as phagocytosis, Fc rosette formation, lysozyme activity, and morphological change. Other potent tumor-promoting macrocyclic plant diterpenes also enhanced the induction of differentiation, but no-tumor-promoting diterpenes did not. These findings were in marked contrast with generally accepted findings on the inhibitory effect of 12-O-tetradecanoylphorbol-13-acetate on terminal differentiation observed in other cell culture systems but consistent with the observations with some kinds of leukemia cells.
The carcinogenic process is usually multifactor in its causation and multistep in its evolution. It is likely that entirely different molecular mechanisms underlie the many steps in this process. In contrast to initiating carcinogens, the action of the tumor-promoting phorbol esters does not appear to involve covalent binding to cellular DNA and they are not mutagenic. Recent studies in cell culture have revealed two interesting biologic effects of the phorbol esters and related macrocyclic plant diterpenes. The first is that at nanomolar concentrations they induce several changes that resemble those seen in cells transformed by chemical carcinogens or tumor viruses. These include altered morphology and increased saturation density, altered cell surface fucose-glycopeptides, decrease in the LETS protein, increased transport of deoxyglucose, and increased levels of plasminogen activator and ornithine decarboxylase. In transformed cells exposed to phorbol esters the expression of these features is further accentuated. Phorbol esters do not induce normal cells to grow in agar but they do enhance the growth in agar of certain transformed cells. The second effect of the phorbol esters is inhibition of terminal differentiation. This effect extends to a variety of programs of differentiation and is reversible when the agent is removed. With certain cell culture systems induction of differentiation, rather than inhibition, is observed. Both the transformation mimetic and the differentiation effects are exerted by plant diterpenes that have tumor-promoting activity but not by congeners that lack such activity. The primary target of phorbol esters appears to be the cell membrane. Early membrane-related effects include enhanced uptake of 2-deoxyglucose and other nutrients, altered cell adhesion, induction of arachidonic acid release and prostaglandin synthesis, inhibition of the binding of epidermal growth factor to cell surface receptors, altered lipid metabolism, and modifications in the activities of other cell surface receptors. A model of "two stage" carcinogenesis encompassing the known molecular and cellular effects of initiating carcinogens and tumor promoters is presented. According to this model, initiating carcinogens induce stable alterations in the cellular genome but these are not manifested until tumor promoters modulate programs of gene expression and induce the clonal outgrowth of the initiated cell.
By means of a combination of partition and chromatographic methods six irritant constituents were isolated from the fresh latex of Euphorbia fortissima. Compounds A-D were di-esters of the common parent diterpene 12-deoxyphorbol, and compounds E and F were mono-esters of the same diterpene. The fresh latex had an irritant dose 50% (ID50) on mice of 0-64 mug mul- minus 1. Compounds A-D are short-acting irritants reaching a maximum activity within 4 h of application to the skin, whilst the monoesters maintained potent irritant effects for up to 24 h. Selective hydrolysis of the di-esters at the C-20 primary ester group also produced mono-esters of greater potency after 24 h. An increase in the length of the fatty acid located at C-13 produced greater biological activity in both the mono- and di-ester groups.
The tumor-promoting plant diterpene 12-O-tetradecanoyl-phorbol-13-acetate (TPA) inhibits nerve growth factor (NGF)-provoked neurite outgrowth in cultured embryonic chick sensory and sympathetic ganglia. Other plant diterpenes that are tumor promoters on the mouse skin carcinogenesis system also inhibit ganglia response to NGF, but structurally related nonpromoting compounds are inactive. There is no evidence that the inhibitory effect of TPA is due to cytotoxicity. In fact, it appears that TPA can enhance the survival of neuronal and nonneuronal cells in culture. Although neurite outgrowth is prevented, established neurites do not retract in the presence of TPA. After 24 hr, ganglia can slowly overcome the block, even in the presence of fresh TPA; thus, inhibition is transient. The concentration of NGF that does induce a half-maximal neurite outgrowth response in sensory ganglia is approximately 0.6 X 10(-11) M. The antagonism of NGF by TPA is dose dependent and apparently noncompetitive. TPA concentrations that extensively inhibit neurite outgrowth do not affect the amount of 125I-labeled NGF bound to specific sites on dissociated dorsal root ganglion cells, which supports the contention that TPA acts at a stage beyond the initial interaction of the factor with its receptive site.
We have recently found that aphidicolin, a tetracyclic diterpene-tetraol produced by several fungi, blocks DNA synthesis of sea urchin embryos by interfering with the activity of DNA polyermase alpha. These cells fail to proliferate in the presence of aphidicolin. In continuation of these studies, we determined the drug-sensitive stage in the first cell cycle of the sea urchin Clypeaster japonicus embryo. In continuous exposure to aphidicolin (2 micrograms/ml) from five minutes after fertilization, mitotic division of the embryo was completely suppressed. Embryos were exposed to the drug at progressively later intervals and their capability for cytokinesis was examined. Evidence was thereby obtained that aphidicolin acts at the S-period to inhibit DNA synthesis resulting in developmental arrest of the embryo.