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Infection and Immunity, November 2004, p. 6318-6323, Vol. 72, No. 11
0019-9567/04/$08.00+0 DOI: 10.1128/IAI.72.11.6318-6323.2004
Copyright © 2004, American Society for Microbiology. All Rights Reserved.
The National Institute for Medical Research, The Ridgeway, Mill Hill,1 Department of Chemistry, University College London, London,2 School of Chemistry, University of Exeter, Exeter, United Kingdom3
Received 4 March 2004/ Returned for modification 6 May 2004/ Accepted 4 August 2004
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Calixarenes have been used as building blocks for host molecules with numerous applications in supramolecular chemistry (5); some were identified as having antimycobacterial activity (3, 7). Most experimental work has been carried out with the compound Macrocyclon, also known as HOC 12.5EO, which was prepared by reacting the macrocycle HOC under basic conditions with ethylene oxide to give a heterogeneous compound with an average polyethylene glycol (PEG) chain of 12.5 U (3). The compound HOC was prepared from t-octylphenol and formaldehyde by a modified Zinke-Ziegler procedure; for many years, it was believed to be a cyclic tetrameric compound (3). Although the antibacterial mechanism of action of HOC compounds is not known, we have excluded extracellular inhibition of mycobacterial growth by Macrocyclon treatment (3, 7, 8). Therefore, it is believed that they work through a host-mediated mechanism (7), a view supported by reports showing activity in a wide range of in vivo models of infection in addition to tuberculosis (10). In this study, we have extended observations on the parent preparation, Macrocyclon, to show that it significantly affects mycobacterial growth in murine macrophages by a mechanism requiring inducible nitric oxide synthase (iNOS) activity. In addition, we show that Macrocyclon is effective in athymic and major histocompatibility complex class II/ (MHC-II/) mice, and we have synthesized new structurally related calixarene compounds which show significant antimycobacterial activity.
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Calixarene synthesis. Macrocyclon (compound 1) was obtained from original stock produced in 1960 (synthesized by J. Cornforth); p-tert-butylcalix[8]arene (compound 2) and p-tert-butylcalix[6]arene (compound 3) were synthesized as described by Gutsche et al. (6) and Munch and Gutsche (11). Compounds 4, 5, and 6 were prepared by the recently reported two-step procedure (9) to access hydrophilically substituted calixarenes. Synthesis of compound 5 was as follows: potassium carbonate was added to calixarene (compound 2) in dry acetonitrile at 40°C, and the reaction mixture was stirred for 1 h. 17-(2H-Tetrahydropyran-2-yloxy)-3,6,9,12,15-pentaoxaheptadecyl bromide, dissolved in acetonitrile, was then added dropwise, and the contents were heated at 80°C for 4 days. Purification was carried out with a neutral alumina column. To this material, sodium hydride (60% dispersion in mineral oil; 2 equivalents per OH) was added in dry tetrahydrofuran. After 20 min, 17-(2H-tetrahydropyran-2-yloxy)-3,6,9,12,15-pentaoxaheptadecyl bromide was added in dry tetrahydrofuran. The reaction mixture was heated at reflux for 4 days; water was added, and the solvent was removed in vacuo, to give an oil which was purified by neutral alumina chromatography (ethyl acetate/methanol). Deprotection was achieved by stirring in dichloromethane/methanol (50:50) containing a 10% concentration of HCl to give 5 m/z (matrix-assisted laser desorption ionization-time of flight) 3432.6 [MNa-H]+. All calixarenes used demonstrated less than 0.2 endotoxin unit/mg of endotoxin and did not induce detectable levels of cytotoxicity or affect apoptosis in cultured macrophages, as detected by the lactate dehydrogenase assay and the cell death detection (apoptosis) assay (Roche Diagnostics, East Sussex, United Kingdom).
M. tuberculosis culture. A total of 250 ml of Dubos medium containing 10 ml of Dubos albumin supplement (Difco Laboratories, Surrey, United Kingdom) was inoculated with M. tuberculosis H37Rv and incubated in a 37°C rotating incubator. The bacterial cells were resuspended in 20 ml of Dulbecco's modified Eagles medium (DMEM; Flow Laboratories, High Wycombe, United Kingdom) supplemented with 50% fetal calf serum (FCS; Advanced Protein Products, Brierly Hills, United Kingdom).
Isolation and culture of macrophages. Peritoneal cells were pelleted, washed, and cultured in six-well plates (Nunc, Roskilde, Denmark) at 1 x 104 to 5 x 104 cells/ml in DMEM containing 10% FCS. After 3 to 4 days, the nonadhering cells were removed, and the medium was replaced with prewarmed DMEM medium containing 10% FCS and Macrocyclon at a final concentration of 2.5 mg/ml. The cells were infected 24 to 48 h later. Murine bone marrow-derived macrophages were isolated from the hind legs. The cells were resuspended into Iscove's modified Dulbecco's medium and cultured in six-well plates at 1 x 104 to 5 x 104 cells/ml in Iscove's modified Dulbecco's medium (Flow Laboratories) complemented with 5% FCS, 10 ng of either recombinant granulocyte-macrophage colony-stimulating factor (Sigma, Dorset, United Kingdom) or macrophage colony-stimulating factor (a kind gift of A. O'Garra, NIMR)/ml, 2 mM L-glutamine, and 2-mercaptoethanol (1 x 105 M) (Sigma); the adherent cells were used after 5 to 6 days of culture.
M. tuberculosis growth in murine macrophages. Peritoneum- or bone marrow-derived macrophages were infected for 6 h with viable M. tuberculosis H37Rv at a low dose (1 bacilli/2 cells). CFU bacterial counts were determined 6 h postinfection and then 4, 7, and 11 days postinfection by lysing the cells with 0.2% saponin in phosphate-buffered saline (Sigma) for 1 h and then preparing 10-fold dilutions in saline. Dilutions were plated onto 7H11 solid medium, and CFU were counted 20 days after incubation at 37°C. All the calixarene compounds were used in vitro at a final concentration of 2.5 mg/ml. Either inhibitor L-NAME (L-N6-nitro-arginine-methyl-ester) or D-NAME (D-N6-nitro-arginine-methyl ester) (Sigma) at a 2 mM concentration was added to the infected cells immediately after infection. The RPMI 1640 select amine kit culture medium (Invitrogen-Life Technologies, Paisley, United Kingdom) without L-arginine was used in some of the experiments or was supplemented with 120.5 mg of L-arginine/ml (50% L-arginine) or 241 mg of L-arginine/ml (normal L-arginine levels).
M. tuberculosis infection of mice. Each mouse received 2 x 105 mycobacterial cells intravenously. The infection was monitored by removal of the lungs and spleens of infected mice at various intervals; the baseline level of infection of each tissue was estimated by harvesting organs from the mice 18 h after infection and determining viable counts. The tissues were weighed and homogenized by shaking the tissues with 2-mm-diameter glass beads in chilled saline with a Mini-Bead Beater (Biospec Products, Bartlesville, Okla.), and 10-fold dilutions of the suspension were plated in duplicate onto Dubos 7H11 agar supplemented with Dubos oleic albumin complex supplement (Difco Laboratories). Numbers of CFU were determined after the plates had been incubated at 37°C for approximately 20 days. In the experiments testing the new calixarenes, CFU were determined 24 to 35 days after the infection.
Administration of calixarenes. A total of 25 mg of Macrocyclon was diluted in 200 µl of endotoxin-free saline and was injected intraperitoneally into each mouse 48 to 72 h before infection and 48 to 72 h after infection. The doses of the new calixarenes used in the in vivo experiments were extrapolated from the antimycobacterial activities first tested in cultured macrophages when compared to Macrocyclon; mice were injected similarly as follows: compound 4, 25 mg; compound 5, 10 mg; and compound 6, 15 mg.
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FIG. 1. M. tuberculosis H37Rv growth in murine macrophages treated with Macrocyclon. (a) Bone marrow or (b) peritoneal macrophages were treated with Macrocyclon ( ) or saline ( ) as described in Materials and Methods and were infected with M. tuberculosis H37Rv. (c) M. tuberculosis H37Rv growth in Macrocyclon-treated bone marrow-derived macrophages in the presence of different levels of L-arginine. No L-arginine ( ), 50% L-arginine levels ( ), and normal L-arginine levels () are shown. (d) M. tuberculosis H37Rv growth in Macrocyclon-treated bone marrow-derived macrophages in the absence ( ) or presence of inhibitor L-NAME ( ) or D-NAME (). Control cultures (X) received saline only. Error bars represent the standard errors of the mean of three culture wells. Results shown are one representative experiment of three separate experiments. *, P < 0.001; Student's t test for no L-arginine versus normal L-arginine. **, P < 0.001; Student's t test for Macrocyclon versus Macrocyclon L-NAME.
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FIG. 2. M. tuberculosis H37Rv growth in spleens and lungs of mice treated with Macrocyclon or saline. (a and b) Groups of three to five BALB/c mice were infected with M. tuberculosis H37Rv and treated with Macrocyclon as described in Materials and Methods. (c and d) Groups of three to five MHC-II/ mice were infected and treated as described in Materials and Methods. (e and f) Groups of three to five BALB/c nu/nu mice were infected and treated as described in Materials and Methods. Results for saline-treated mice ( ) and Macrocyclon-treated mice ( ) are shown. Results shown are one representative experiment of two or three separate experiments. **, experiments were terminated at day 35 due to the severity of infection.
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FIG. 3. Schematic structure of the new calixarene compounds used in this study.
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FIG. 4. M. tuberculosis H37Rv growth in spleens and lungs of BALB/c nu/nu mice treated with Macrocyclon or new calixarene compounds. Results show one representative experiment. Groups of three to five mice were treated with Macrocyclon or the new calixarene compounds, as described in Materials and Methods. Hatched bars represent data for saline-treated mice, white bars represent data for Macrocyclon-treated mice, and black bars represent data for mice treated with the new calixarenes: compound 4 (a and b), compound 5 (c and d), or compound 6 (e and f). *, P < 0.001; Student's t test. **, P < 0.01; Student's t test.
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/ß and
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double-knockout mice are needed to clarify this issue. Our data are in line with previous reports on the action of Macrocyclon in murine macrophages (7) and confirm the notion that calixarenes principally enhance nonspecific innate immune defense mechanisms in murine macrophages. Previous work demonstrated that lipid metabolism is affected in Macrocyclon-treated cells and suggested that Macrocyclon antimycobacterial activity correlated with inhibition of triglyceride lipase and phospholipases (8); our results provide evidence that L-arginine metabolism and iNOS activity are required for Macrocyclon-induced antimycobacterial activity in murine macrophages. Importantly, however, because specific inhibition of iNOS affected the antimycobacterial activity induced by Macrocyclon in infected macrophages by only 50 to 70%, it is likely that iNOS-independent mechanisms of action also exist. Consistent with this hypothesis, macrophage lipase activity is inhibited by Macrocyclon (8), and ex vivo-isolated macrophages from Macrocyclon-treated mice demonstrated significant up-regulation of arginase I (data not shown); further studies with iNOS knockout mice and enzyme specific inhibitors will help to clarify this issue. Importantly, we describe in this work new calixarene compounds with clear in vivo antimycobacterial activities. The three compounds tested here (compounds 4, 5, and 6) possess t-butyl groups at the upper rim, together with defined-length PEG chains: PEG-12-OH, PEG-6-OH, and PEG-6-OH, respectively. Compounds 4 and 5 are also octamers, while compound 6 is the hexamer ring. Macrocyclon, by comparison, has a t-octyl group at the upper rim with polymeric PEG chain lengths at the lower rim of 12.5 repeat units (on average), and the macrocycle is mainly the octamer. Our results demonstrate that a PEG chain of six repeat units is sufficient to produce calixarenes with high antimycobacterial activities and that a chain extension to PEG-12 offers no significant advantages.
Cornforth et al. (4) also carried out synthetic studies involving the preparation of HOC 6EO and HOC 10EO, using HOC and presynthesized PEG of 6 and 10 repeat units, respectively. These compounds were reported to possess slightly lower chemotherapeutic activities than Macrocyclon, suggesting that the upper-rim moiety together with the PEG chain length may be important. Since the synthesis and purification of long PEG chains (more than six repeat units) is nontrivial and since t-butyl calixarenes are accessible at higher yields than most other calixarenes, our results are important for future structure activity studies. Interestingly, both the hexamer and octamer had similar activities, suggesting that ring size is not crucial. However, when the unsubstituted rings of compounds 2 and 3 were tested in vivo, compound 2 had a slight antimycobacterial effect, while compound 3 was inactive (data not shown). Thus, we suggest that ring cavity size may be important when there is no functionalization at the lower rim. However, this is less critical, particularly for t-butylcalix[8]arenes and t-butylcalix[6]arenes when PEG is substituted.
Understanding the final mechanisms involved in the control of bacterial infections by activated macrophages is of paramount importance for the treatment and control of infectious diseases. At present, it is not known whether Macrocyclon has any effects on other bacterial species; similarly, a fundamental priority will be to investigate whether Macrocyclon is also effective in controlling mycobacterial infections by human macrophages.
We are grateful to the MRC and to the BBSRC for support (grant 31/B10963 to G.H. and A.C.H.) and to Glaxo SmithKline (Action TB program) for a studentship (to K.J.G.).
We also thank J. Skehel for encouragement and critical reading of the manuscript.
We declare that we have no competing financial interest.
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