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Quantitative analysis of the oxidative DNA lesion, 2,2-diamino-4-(2-deoxy-beta-D-erythro-pentofuranosyl)amino]-5(2H)-oxazolone (oxazolone), in vitro and in vivo by isotope dilution-capillary HPLC-ESI-MS/MS.

A major DNA oxidation product, 2,2-diamino-4-[(2-deoxy-beta-D-erythro-pentofuranosyl)amino]-5(2H)-oxazolone (oxazolone), can be generated either directly by oxidation of dG or as a secondary oxidation product with an intermediate of 8-oxo-7,8-dihydro-2'-deoxyguanosine (8-oxo-dG). Site-specific mutagenesis studies indicate that oxazolone is a strongly mispairing lesion, inducing approximately 10-fold more mutations than 8-oxo-dG. While 8-oxo-dG undergoes facile further oxidation, oxazolone appears to be a stable final product of guanine oxidation, and, if formed in vivo, can potentially serve as a biomarker of DNA damage induced by oxidative stress. In this study, capillary liquid chromatography-electrospray ionization tandem mass spectrometry (HPLC-ESI-MS/MS) methods were developed to enable quantitative analysis of both 8-oxo-dG and oxazolone in DNA from biological sources. Sensitive and specific detection of 8-oxo-dG and oxazolone in enzymatic DNA hydrolysates was achieved by isotope dilution with the corresponding 15N-labeled internal standards. Both nucleobase adducts were formed in a dose-dependent manner in calf thymus DNA subjected to photooxidation in the presence of riboflavin. While the amounts of oxazolone continued to increase with the duration of irradiation, those of 8-oxo-dG reached a maximum at 20 min, suggesting that 8-oxo-dG is converted to secondary oxidation products. Both lesions were found in rat liver DNA isolated under carefully monitored conditions to minimize artifactual oxidation. Liver DNA of diabetic and control rats maintained on a diet high in animal fat contained 2-6 molecules of oxazolone per 10(7) guanines, while 8-oxo-dG amounts in the same samples were between 3 and 8 adducts per 10(6) guanines. The formation of oxazolone lesions in rat liver DNA, their relative stability in the presence of oxidants and their potent mispairing characteristics suggest that oxazolone may play a role in oxidative stress-mediated mutagenesis.

8-Hydroxy-2'-Deoxyguanosine↗

Anti-oxazolone hybridomas and the structure of the oxazolone idiotype.

Antibodies raised in several mouse and rat strains against the hapten 2-phenyloxazolone (phOx, "oxazolone") regularly contain a fraction recognized by antiidiotypic reagents. We have studied this response in BALB/c and DBA/2 mice by generating over fifty anti-phOx antibody-secreting hybridoma clones. The hybridization was performed either 7 or 14 days after a primary immunization with phOx-protein conjugate. Most of the hybrids secreted IgG1. Whereas over 80% (17/21) of IgG-producing hybrids from day-7 fusions secreted oxazolone-idiotype positive immunoglobulin, all hybridomas originating from day-14 fusions were idiotype negative. The mRNA for heavy (H) and light (L) chains of three idiotype-positive and one idiotype-negative IgG1 hybridomas were sequenced by a modification of Sanger's dideoxynucleotide method of DNA sequencing, using crude mRNA as template, synthetic oligonucleotides as primers, and reverse transcriptase to incorporate both dideoxynucleotides and labeled deoxynucleotides. The sequence of the mRNA coding for the whole variable region of each chain was established using primers complementary to the constant region near the V-C boundary and another two that coded for a framework segment in either VH or VL. This method not only provided more information than protein sequencing but was also faster and simpler. The mRNA preparation did not need fractionation beyond the poly A-containing fraction. The sequences of the H and L chain mRNA of the three idiotype-positive anti-oxazolone antibodies were extremely similar or identical, and from them a tentative oxazolone-idiotype basic sequence was derived. Only three nucleotide differences were detected; these occurred in the D segment of one H chain mRNA, in the V-J boundary of one of the light chain mRNA, and in the first hypervariable region of another. The idiotype-negative antibody had a totally different H chain mRNA and a light chain mRNA that differed by 21 bases, almost all affecting the amino acid sequence.

Amino Acid Sequence↗

1H n.m.r. long-range coupling in 2,4-disubstituted-5(4H)-oxazolones and 4-alkyl-5(2H)-oxazolones generated therefrom by the action of triethylamine.

Long-range couplings were observed between H-4 and 2-CCHn of 2,4-disubstituted-5(4H)-oxazolones, and H-4 and H-2 of 4-alkyl-5(4H)-oxazolones. In the presence of triethylamine, H-4 of the latter migrates to C-2 accompanied by a shift of the double bond to give 4-alkyl-5(2H)-oxazolones which show 5J coupling between H2-2 and 4-CCHn protons.

Ethylamines↗

Simple b ions have cyclic oxazolone structures. A neutralization-reionization mass spectrometric and computational study of oxazolone radicals.

The 2-methyloxazol-5-on-2-yl radical (3) and its deuterium labeled analogs were generated in the gas-phase by femtosecond electron-transfer and studied by neutralization-reionization mass spectrometry and quantum chemical calculations. Radical 3 undergoes fast dissociation by ring opening and elimination of CO and CH(3)CO. Loss of hydrogen is less abundant and involves hydrogen atoms from both the ring and side-chain positions. The experimental results are corroborated by the analysis of the potential energy surface of the ground electronic state in 3 using density functional, perturbational, and coupled-cluster theories up to CCSD(T) and extrapolated to the 6-311 ++ G(3df,2p) basis set. RRKM calculations of radical dissociations gave branching ratios for loss of CO and H that were k(CO)/k(H) > 10 over an 80-300 kJ mol(-1) range of internal energies. The driving force for the dissociations of 3 is provided by large Franck-Condon effects on vertical neutralization and possibly from involvement of excited electronic states. Calculations also provided the adiabatic ionization energy of 3, IE(adiab) = 5.48 eV and vertical recombination energy of cation 3(+), RE(vert) = 4.70 eV. The present results strongly indicate that oxazolone structures can explain fragmentations of b-type peptide ions upon electron capture, contrary to previous speculations.

Computer Simulation↗

Contact sensitization to oxazolone: involvement of both interferon-gamma and interleukin-4 in oxazolone-specific Ig and T-cell responses.

The synthesis and role of several lymphokines were examined during contact sensitization to oxazolone (OX). Application of OX to the skin of mice increased the delayed-type hypersensitivity (DTH) response to challenge, serum titres of OX-specific IgG1 and IgG2a, and draining lymph node cell (LNC) numbers. At day 3, LN contained detectable interleukin-4 (IL-4), interferon-gamma (IFN-gamma) and granulocyte-macrophage colony-stimulating factor (GM-CSF) but not IL-2 or IL-3 mRNAs; IL-3 and higher levels of IL-4, IFN-gamma and GM-CSF mRNAs were measured after 24 hr culture with anti-CD3 antibody in OX-primed but not unprimed LNC. As a result of sensitization, LNC secreted IL-3 constitutively and produced elevated levels of IL-2, IL-3, IL-4 and IFN-gamma in response to anti-CD3 antibody; a similar but weaker lymphokine response was recalled by OX-protein conjugate. CD4+ cells were the major source of the anti-CD3-induced lymphokines except IFN-gamma, which was derived mainly from CD8+ cells. Since both IL-4 and IFN-gamma were synthesized by OX-primed LNC in vivo and in vitro, their role was investigated by administering anti-lymphokine antibodies at the time of sensitization. Anti-IL-4 treatment reduced OX-specific serum IgG1 titres without affecting IgG2a titres, whereas anti-IFN-gamma treatment reduced IgG2a but not IgG1 titres. Although neither antibody altered DTH responsiveness, anti-IFN-gamma treatment markedly increased IL-4 production by CD4+ LNC and reduced IFN-gamma production in vitro, particularly by CD4+ cells. We conclude that endogenous IL-4 and IFN-gamma reciprocally influence the isotype of the Ig response to OX and that IFN-gamma also affects the relative levels of IL-4 and IFN-gamma synthesis by CD4+ LNC.

Animals↗

Anti-oxazolone hybridomas and strain distribution of the oxazolone idiotype.

Antibodies produced in the primary response to the hapten 2-phenyloxazolone (OX) express a cross-reactive idiotype in BALB/c and DBA/2 mice. We studied the response in hyperimmunized mice, using ascites produced after multiple immunizations with an OX conjugate and by generating monoclonal antibodies. A competitive radioimmunoassay was developed using a rabbit anti-idiotype antiserum raised against purified hyperimmune anti-OX antibodies. Mice from strains including CBA, C3H/He and B10.BR expressed all the determinants found in BALB/c serum, although at a lower titre. C57BL/6 mice, however, only expressed some of the BALB/c determinants. We isolated a monoclonal antibody, 1F9, which expressed some of the determinants found in BALB/c serum. All the cross-reactive idiotopes expressed on 1F9 were also expressed in the above strains including C57BL/6. Almost every BALB/c anti-OX antibody also expressed the 1F9 determinants. There are thus determinants of the BALB/c OX idiotype which are expressed in a number of different strains previously thought to be negative for the idiotype.

Animals↗

In vivo cimetidine immunomodulatory effects on the cutaneous reaction to oxazolone in the chicken.

The effect of the histamine H2-receptor antagonist, cimetidine, on the cutaneous Arthus-like hypersensitivity to oxazolone elicited injecting subcutaneously oxazolone conjugated to egg-albumin (EA-OX) has been examined in the chicken. Cimetidine had opposite effects on the cutaneous reaction to oxazolone in relation to a different immunization schedule. Cimetidine enhanced the cutaneous reaction to oxazolone obtained immunizing chickens with oxazolone dissolved in ethanol (Eth-OX); instead cimetidine inhibited the cutaneous reaction obtained in chickens immunized with oxazolone dissolved in complete Freund adjuvant (CFA-OX). Optimum enhancement of the cutaneous arthus-like reaction to oxazolone occurred when cimetidine was given for three consecutive days starting at the immunization. The enhancing effect was absent in neonatally bursectomized chickens. Moreover, cimetidine stimulated bursal cell proliferation at day 1 after sensitization. The study of the immunoglobulin class of oxazolone antibodies produced in the immunized chickens demonstrated that cimetidine stimulated the IgM oxazolone antibody synthesis in Eth-OX immunized chickens and inhibited the IgY oxazolone antibody production in Eth-OX and total oxazolone antibody production in CFA-OX immunized chickens. The relationship between increased IgM oxazolone antibody synthesis and enhancement of the cutaneous Arthus reaction is discussed. The role of IgM antibodies in the pathogenesis of Arthus reaction in the chicken is hypothesized.

Adjuvants, Immunologic↗

The immunomodulatory effect of human IgG Fc fragments on the oxazolone-specific immune response of high and low responder mice.

Intravenous injection of human IgG Fc fragments in mice resulted in the stimulation or inhibition of an oxazolone-specific antibody response depending on the schedule of Fc fragment injection. High and low responder mice for oxazolone were injected with Fc fragments according to two protocols: either on the day of oxazolone priming, or together with the oxazolone boost, and the isotype composition of oxazolone-specific antibodies was analysed by solid phase radioimmunoassay. We found the primary and secondary anti-oxazolone IgM levels increased in all instances, irrespective of the schedule of Fc fragment treatment. In contrast, the oxazolone-specific IgG production was increased only if Fc fragments were injected at the time of antigen priming. Injection of Fc fragments together with a secondary injection of oxazolone resulted in the inhibition of oxazolone-specific IgG production. Both stimulation and inhibition of oxazolone-specific antibodies were more pronounced in the low responder C57BL/6 mice strain.

Animals↗

In vitro DNA synthesis opposite oxazolone and repair of this DNA damage using modified oligonucleotides.

Emphasis was placed in this work on the assessment of biological features of 2,2,4-triaminooxazolone, a major one-electron and(. )OH-mediated oxidation product of guanine. For this purpose, two oligonucleotides that contain a unique oxazolone residue were synthesized. Herein we report the mutagenic potential of oxazolone during in vitro DNA synthesis and its behavior towards DNA repair enzymes. Nucleotide insertion opposite oxazolone, catalyzed by Klenow fragment exo(-)and Taq polymerase indicates that the oxazolone lesion induces mainly dAMP insertion. This suggests that the formation of oxazolone in DNA may lead to G-->T transversions. On the other hand, oxazolone represents a blocking lesion when DNA synthesis is performed with DNA polymerase beta. Interestingly, DNA repair experiments carried out with formamidopyrimidine DNA N -glycosylase (Fpg) and endonuclease III (endo III) show that oxazolone is a substrate for both enzymes. Values of k (cat)/ K (m)for the Fpg-mediated removal of oxidative guanine lesions revealed that 8-oxo-7,8-dihydroguanine is only a slightly better substrate than oxazolone. In the case of endo III-mediated cleavage of modified bases, the present results suggest that oxazolone is a better substrate than 5-OHC, an oxidized pyrimidine base. Finally, MALDI-TOF-MS analysis of the DNA fragments released upon digestion of an oxazolone-containing oligonucleotide by Fpg gave insights into the enzymatic mechanism of oligonucleotide cleavage.

Base Sequence↗

Contact sensitivity to oxazolone in the chicken: evidence for Arthus type hypersensitivity of the cutaneous reaction.

Cutaneous hypersensitivity reaction can be induced in chickens by skin painting with oxazolone, 33 mg/Kg of body weight (KBW). The B cell contribution to the generation of the cutaneous reaction has been a matter of controversy. In an attempt to characterize this reaction we placed special interest on the possibility that the nature of this reaction could be Arthus type hypersensitivity. From the kinetics study on the cutaneous hypersensitivity after challenge with oxazolonated egg-albumin (EA-OX) it was excluded that the nature of this reaction could be delayed type hypersensitivity. Immune sera transfer experiments demonstrated that the cutaneous reaction was antibody dependent. Serum anti-oxazolone antibody titers in sensitized chickens were assayed by antiglobulin haemagglutination, using oxazolone coupled sheep erythrocytes (OX-SRBC). High titres of IgG were found in contact sensitized chickens. Furthermore this cutaneous reaction was characterized by neutrophils, inflammatory edema, rare thrombotic occlusion of small venules and on absence of monocytes. The utilization of complete Freunds' adjuvant (CFA) given at sensitization demonstrated that CFA enhanced oxazolone antibodies in the sera of immunized chickens without a correlated increase in the intensity of the cutaneous reaction to EA-OX. Animals sensitized to oxazolone (33 mg/KBW) without CFA and challenged intravenously seven days later with oxazolone coupled to autologous chicken red blood cells (OX-CRBC) died from anaphylactic shock; instead animals with the same treatment but with CFA given at sensitization did not die from anaphylactic shock. Taken collectively it was concluded that the cutaneous reaction to oxazolone in the chicken can be categorized as Arthus hypersensitivity. The relationship between cutaneous Arthus reaction and anaphylactic shock in chickens sensitized to oxazolone is discussed.

Anaphylaxis↗

Contact sensitivity and the DNA response in mice to high and low doses of oxazolone: low dose unresponsiveness following painting and feeding and its prevention by pretreatment with cyclophosphamide.

Cyclophosphamide was used to assess the role of suppressor cells in the contact sensitivity reaction. A single painting with 300 microgram and 30 microgram oxazolone produced poor contact sensitivity reactions (ear swelling). Cyclophosphamide (200 mg/kg) 2 days before painting increased the response to the lower doses but had less effect on the response to 3 mg oxazolone. A single feed with 10 mg oxazolone caused strong contact sensitivity while lower doses (10-1000 microgram) caused poor responses. Cyclophosphamide increased the response to the lower doses but not to the highest dose of oxazolone. These results suggested that the poor response to painting and feeding lower doses of oxazolone was due to a suppressor system which was sensitive to cyclophosphamide. A different result was obtained when contact sensitivity was measured by arrival of radioactively labelled cells. Cyclophosphamide had the greatest effect on cell arrival when high doses were fed. This indicates that ear swelling and cell arrival measure separate aspects of the contact sensitivity response. The lower doses of oxazolone, which caused little contact sensitivity, reduced the response to a standard immunizing dose. This low dose unresponsiveness occurred after either painting or feeding (Chase-Sulzberger phenomenon). It did not occur in mice treated with cyclophosphamide before the first exposure to oxazolone. This suggested that the low dose unresponsiveness was due to suppressor cells. The response to oxazolone was also assessed by DNA synthesis in the regional lymph nodes. A small dose of oxazolone (30 microgram) caused a peak of DNA synthesis on day four while a high dose (3 mg) caused a peak on day three. Pretreatment with cyclophosphamide depressed the response to 30 microgram although it increased contact sensitivity. The secondary response was smaller than the primary on days 3, 4 and 5 after immunization but larger on day two. The depression but not the increase was prevented by cyclophosphamide and was probably due to a suppressor system.

Animals↗

Intralesional cytokines in chronic oxazolone-induced contact sensitivity suggest roles for tumor necrosis factor alpha and interleukin-4.

An analysis was conducted of the cytokine profile and inflammatory response in oxazolone sensitized mouse skin. Following exposure to oxazolone, the intralesional production of inflammatory cytokines was demonstrable at the levels of both mRNA and protein. An initial challenge led to a transient increase in tumor necrosis factor-alpha production followed predominately by the T helper (Th)1 cytokine, interferon-gamma. There was a minimal production of interleukin-4, a Th2 cytokine. Continued exposure to oxazolone led to a downregulation of interferon-gamma and an upregulation of interleukin-4 production. A strong relationship was found between interleukin-4 and the inflammatory response, as measured by ear thickness. Similar experiments conducted in mast cell-deficient mice revealed reduced neutrophil influx but only minor changes in cytokine profile. An irritant response induced by chronic exposure of mouse skin to phorbol ester did not reveal any significant interferon-gamma or interleukin-4 response but was characterized by a tumor necrosis factor-alpha response that correlated with the inflammatory response. These observations suggest that the major source of interferon-gamma and interleukin-4 in the oxazolone response may be the infiltrating lymphocytes; whereas the tumor necrosis factor-alpha may result from the local irritation seen with both oxazolone and phorbol ester. At the end of 4 wk of chronic exposure to oxazolone, it was found that serum IgE levels had significantly increased. Histologic analysis of the skin lesion revealed that a mixed infiltrate including eosinophils developed upon repeat exposure to oxazolone. These findings are consistent with an early predominate Th1 response that is reduced and largely replaced with a Th2 response upon chronic T cell activation.

Animals↗

Stimulation of regional lymphatic and blood flow by epicutaneous oxazolone.

The application of the epicutaneous antigen oxazolone results in persistent induration and erythema; however, the relative changes in lymph and blood flow in the inflammatory skin are largely unknown. To define the contribution of lymph and blood flow to the clinical appearance of cutaneous inflammation, we studied the sheep ear after the application of oxazolone. As a model for the study of these changes, the sheep ear had several experimental advantages: 1) a simplified superficial vascular network, 2) defined lymphatic drainage, and 3) an avascular and alymphatic cartilaginous barrier. Lymph flow was continuously monitored by cannulation of the prescapular efferent lymph duct. Blood flow, as reflected by cutaneous erythema, was noninvasively measured by use of a visible-spectrum spectrophotometer. The application of the epicutaneous oxazolone resulted in increased ear thickness for >7 days. The lymph flow from the oxazolone-stimulated ear peaked between 24 and 48 h after oxazolone stimulation. Spectrophotometric evaluation indicated that the cutaneous erythema peaked 72-96 h after application of oxazolone. Corrosion casting and scanning electron microscopy of the microcirculation at 96 h after antigen stimulation demonstrated significant dilatation of the superficial vascular network. These results suggest a biphasic response to oxazolone stimulation: 1) an early increase in vascular permeability associated with increased lymph flow and 2) a subsequent increase in relative blood flow associated with a dilated inflammatory microcirculation.

Adjuvants, Immunologic↗

Effect of skin painting with oxazolone on the local extravasation of mononuclear cells in sheep.

A characteristic feature of the induction of cell-mediated delayed hypersensitivity reactions by chemicals such as oxazolone is the enlargement of lymphocyte traffic areas in the paracortices of regional lymph nodes. In sheep oxazolone is a powerful immunogen but the cellular changes in lymph efferent from nodes draining areas of oxazolone-painted skin do not differ significantly from responses to conventional antigens. Specific complement-binding antibodies appear in the plasma of sensitized sheep, which respond to secondary challenges with an immediate Arthus reaction. In studies of peripheral lymph from areas of skin painted with oxazolone the number of mononuclear cells in the lymph increased 10--50-fold two days or so after skin painting. Most of these cells were small lymphocytes lacking surface immunoglobulin (presumptive 'T' cells). This big increase in lymphocyte traffic through the skin may be a consequence of the binding to local structural proteins of myriads of oxazolone epitopes. If so, and bearing in mind the large doses of immunogen used in experiments on mice, it is easy to envisage how the traffic areas of lymph nodes expand and become congested with lymphocytes after being flooded with a highly immunogenic and reactive chemical like oxazolone. Whether this is relevant to the induction of cell-mediated immunity is unknown.

Animals↗

Restoration of methotrexate-suppressed oxazolone-induced contact sensitivity with levamisole.

The effect of levamisole upon cell-mediated immunity was investigated using the oxazolone-induced contact sensitivity response in immunosuppressed and nonimmunosuppressed C57Bl male mice. Mice were sensitized to oxazolone on day 0, and where appropriate, methotrexate (1 mg/kg, p.o.) was administered on days 1 and 2. On day 3, levamisole (5--50 mg/kg, p.o., base) was administered. One hour later, the animals were challenged with oxazolone on the left hindpaw. Twenty-four hours after challenge, the resulting edema was read plethysmographically. Levamisole, in the absence of immunosuppression, had no significant effect upon the oxazolone response whereas, in the face of immunosuppression, restoration of oxazolone responsiveness was observed. These results were suggested to be due to (1) the ability of levamisole to stimulate opposing suppressor and effector components of the oxazolone response coupled with (2) an apparent alteration of suppressor influence by methotrexate allowing levamisole to enhance an unencumbered effector cell population.

Animals↗

T suppressor cells and suppressor factor which act at the efferent stage of the contact sensitivity skin reaction: their production by mice injected with water-soluble, chemically reactive derivatives of oxazolone and picryl chloride.

The water soluble, chemically reactive thioglycollic acid thioether derivatives of oxazolone and picryl chloride were synthesized and tested for their ability to prevent the development of contact sensitivity. Mice given two injections of these agents showed partial or complete unresponsiveness when subsequently sensitized and challenged with oxazolone and picryl chloride, respectively. This unresponsiveness was associated with T suppressor cells, Ts-eff(cs), which blocked the efferent stage of the contact sensitivity reaction, i.e. the passive transfer of contact sensitivity. These Ts-eff(cs) were entirely specific when tested with the corresponding antigen. However, the suppression which they caused had a non-specific final common pathway. Cell from mice injected with the oxazolone and picryl thioethers and painted with the corresponding contact sensitizer produced a suppressor factor in vitro. This factor specifically blocked passive transfer by immune cells incubated in it. It also armed macrophages which then caused suppression. These macrophages were most effective when injected intraperitoneally. The suppressor factor had a molecular weight between 30,000 and 100,000 and the alpha-oxazolone factor was absorbed by oxazolone-albumin Sepharose and could be eluted with oxazolone-epsilon-aminocaproic acid. It was also absorbed by concanavalin-A-sepharose and could be eluted with alpha-methylmannoside. It is proposed that the ability of water soluble, chemically reactive haptenes to evoke a Ts-eff(cs) population may be relevent to the rarity of severe drug reactions following the injection of chemically reactive drugs.

Absorption↗

The vehicle modulates cellular and humoral responses in contact hypersensitivity to oxazolone.

The development of contact hypersensitivity (CHS) greatly depends on the allergenicity of the inducing agent. However, various cofactors are known to influence the outcome of the response as well. From this perspective, we have compared the effects of five different vehicles: acetone, ethanol, dimethyl formamide (DMF), dimethyl sulfoxide (DMSO), and a 4 to 1 mixture of acetone and olive oil (AOO) on the cellular and humoral immune responses to epicutaneously applied oxazolone in female BALB/c mice. A single application of 0.2% oxazolone dissolved in acetone or ethanol induced stronger proliferative responses and higher lymph node cell numbers than the other three vehicles. Moreover, both vehicles led to higher numbers of oxazolone-specific Ab forming cells in the draining lymph nodes of sensitized animals. When the IgG2a/IgG1 ratios were determined to indicate the type of T helper cell involved, the highest values were obtained with AOO and lowest with DMF and DMSO, while acetone and ethanol were in between. Moreover, no correlation was found between oxazolone-specific antibody production and cellular responses, measured as [3H]thymidine incorporation of draining lymph node cells after sensitization and increased ear thickness after challenge. From this study it can be concluded that cellular and humoral responses in CHS to oxazolone are dissimilarly affected by the vehicles used.

Adjuvants, Immunologic↗