Acta Med. 2002, 45: 123-128
https://doi.org/10.14712/18059694.2019.68
Immunosuppressive Effect of Polycyclic Aromatic Hydrocarbons by Induction of Apoptosis of pre-B Lymphocytes of Bone Marrow
References
1. M, Reader S, Groliere CA et al. Uptake and efflux of polycyclic aromatic hydrocarbons by Tetrahymena pyriformis: evidence for resistance mechanism. Cytometry 1997; 28:170–5.
<https://doi.org/10.1002/(SICI)1097-0320(19970601)28:2<170::AID-CYTO11>3.0.CO;2-N>
2. AA, Baltimore D. An essential role for NF-kappaB in preventing TNF-alphainduced cell death. Science 1996; 274:782–4.
<https://doi.org/10.1126/science.274.5288.782>
3. FE, Eckfeldt E, Fink JR et al. Microenviromental influences on human B cell development. Immunol Rev 2000; 175:175–86.
<https://doi.org/10.1111/j.1600-065X.2000.imr017513.x>
4. S, Borská L, Fiala Z, Andrýs C. Vliv polycyklických aromatických uhlovodíků na imunitní systém. Acta Med. (Hradec Králové) Suppl 1999; 42(1): 444–72.
5. L, Andrýs C, Fiala Z et al. Imunologický profil u mužů profesionálně exponovaných imisím ze sváření nerezových ocelí. Pracov Lék 2000; 52(2):63–8.
6. SW, Luster MI. Signaling by enviromental polycyclic aromatic hydrocarbons in human lymphocytes. Clin Immunol 2001; 98(1): 2–10.
<https://doi.org/10.1006/clim.2000.4934>
7. DR, Lane JL, Lauer FT et al. Protein kinase activation by polycyclic aromatic hydrocarbons in human HPB-ALL T cells. J Toxical Envirom Health A 1999; 56(4):249–61.
<https://doi.org/10.1080/009841099158097>
8. C. Avoidance of apoptosis as a mechanism of drug resistance. J Int Med 1997; 242:139–45.
<https://doi.org/10.1111/joim.1997.242.s740.139>
9. A. Oxidative stress: value of its demonstration in medical biology and problems posed by the choice of a marker. Ann Biol Clin 1997; 55:9–16.
10. Z, Vyskočil A, Kraják V et al. Polycyklické aromatické uhlovodíky I. Kontaminace prostředí a expozice osob. Acta Med (Hradec Králové) Suppl 1999; 42(2):77–89.
11. Z, Borská L. Polycyklické aromatické uhlovodíky II. Toxické účinky. Acta Med (Hradec Králové) Suppl 2000; 43(3):37–61.
12. A, Evan G. A licence to kill. Cell 1996; 85(6):781–4.
<https://doi.org/10.1016/S0092-8674(00)81005-3>
13. CC. Structure and function of the p53 tumor supressor gene: clues for rational cancer therapeutic strategies. J Nat Canc Ins 1996; 88(20):1442–55.
<https://doi.org/10.1093/jnci/88.20.1442>
14. SM, Holston K, Buters JTM et al. Bone marrow stromal cell cytochrome P4501B1 is required for pre-B cell apoptosis induced by 7,12–dimethylbenz[a]anthracene. Mol Pharmacol 1999; 56:1317–23.
<https://doi.org/10.1124/mol.56.6.1317>
15. D, Nunez G, Milliman C et al. Bcl-2 is an inner mitochondrial membrane protein that blocks programmed cell death. Nature 1990; 348(6299):334–6.
<https://doi.org/10.1038/348334a0>
16. Holoubek I. Polycyklické aromatické uhlovodíky (PAHs) v prostředí. 1.vydání. Praha: Český ekologický a odbor ekologických rizik a monitoringu MŽP ČR 1996;134.
17. Klaasen CD, Amdur MO, Doull J. Casarett and Doull’s toxicology – the basic science of poisons. Fifth edition. London: McGrow-Hill Companies, Inc. 1996; 854.
18. K, Krejsek J. Rezistence buněk krevních malignit vůči cytostatikům. Čas Lék Čes 2000; 139(18):553–6.
19. L, Lejtenyi D, Osmond DG. Regulation of cell survival during B lymphopoiesis: supressed apoptosis of pro-B cells in P53–deficient mouse bone marrow. Eur J Immunol 1999; 29:2484–90.
<https://doi.org/10.1002/(SICI)1521-4141(199908)29:08<2484::AID-IMMU2484>3.0.CO;2-B>
20. L, Osmond DG. Apoptosis and its modulation during B lymphopoiesis in mouse bone marrow. Immunol Rev 2000; 175:158–74.
<https://doi.org/10.1111/j.1600-065X.2000.imr017506.x>
21. M, Rosenthal GJ. Chemical agents and the immune response. Environ Health Respect 1993; 101:219–26.
<https://doi.org/10.1289/ehp.93100219>
<PubMed>
22. KK, Matulka RA, Hahn ME et al. The role of polycyclic aromatic hydrocarbon metabolism in dimethylbenz[a]anthracene-induced pre-B lymphocyte apoptosis. Toxicol and Appl Pharmacol 1999; 161:10–22.
<https://doi.org/10.1006/taap.1999.8778>
23. KK, Doerre S, Shlezinger JJ et al. The role of NF-κB as a survival factor in enviromental chemical-induced pre-B cell apoptosis. Mol Pharmacol 2001; 59:302–9.
<https://doi.org/10.1124/mol.59.2.302>
24. S. Multidrug resistance in leukemia. Br J Haematol 1997; 96:659–74.
<https://doi.org/10.1046/j.1365-2141.1997.d01-2095.x>
25. J. Vývoj B – lymfocytů v primárních a sekundárních lymfatických orgánech. Lék Zpr LF UK HK 1997; 42(5–6):111–20.
26. RI, Matulka RA, Mann KK et al. Regulation of preB cell apoptosis by aryl hydrocarbon receptor/transcription factor – expressing stromal/adherent cells. Proc Soc Exp Biol Med 1999; 221(3):242–52.
27. DW, Puga A, Vasiliou V et al. Role of the Ah receptor and the dioxin-inducible [Ah] gene battery in toxicity, cancer and signal transduction. An NY Acad Sci 1993; 685:624–40.
<https://doi.org/10.1111/j.1749-6632.1993.tb35928.x>
28. DW, Roe AL, Dieter MZ et al. Role of the aromatic hydrocarbon receptor and [Ah] gene battery in the oxidative stress response, cell cycle control, and apoptosis. Biochem Pharmacol 2000; 59:65–85.
<https://doi.org/10.1016/S0006-2952(99)00310-X>
29. J, Kodydková K, Krejsek J. Apoptóza, její mechanismy a medicínský význam. I. Definice apoptózy a její průběh na buněčné úrovni. Vnitř Lék 2001; 47(6):381–6.
30. J, Kodydková K, Krejsek J. Apoptóza, její mechanismy a medicínský význam. II. Poruchy regulace apoptózy a jejich souvislost s rozvojem onemocnění. Vnitř Lék 2001; 47(6):387–90.
31. L, Courtois A, Langouet S et al. Unaltered expression of multidrug resistance transporters in polycyclic aromatic hydrocarbon-rezistant rat liver cells. Toxicol 2001; 156(2–3):109–17.
<https://doi.org/10.1016/S0300-483X(00)00348-6>
32. IN, Beltzner C, Burchiel SW et al. A bioactive metabolite of benzo[a]pyrene, benzo[a]pyrene-7,8–dione, selectively alters microsomal Ca(2+) transport and ryanodine receptor function. Mol Pharmacol 2001; 59(3):506–13.
<https://doi.org/10.1124/mol.59.3.506>
33. K, Xia Y, Zweier JL et al. Amodel for p53 – induced apoptosis. Nature 1997; 389(9):300–5.
<https://doi.org/10.1038/38525>
34. EG, Schuetz JD, Thompson MT et al. Phenotypic variability in induction of P glycoprotein mRNA by aromatic hydrocarbons in primary human hepatocytes. Mol Carcinog 1995; 12(2):61–5.
<https://doi.org/10.1002/mc.2940120202>
35. DL. Immunopathology of apoptosis – introduction and overview. Spring Semin Immun 1998; 19:271–8.
<https://doi.org/10.1007/BF00787224>
36. P, Pivcevic B, Muller WE et al. Increased genotoxicity of acetylaminofluorene by modulators of multixenobiotic rezistance mechanism: studies with the fresh water clam Corbicula fluminea. Mutat Res 1995; 342(3–4):113–23.
<https://doi.org/10.1016/0165-1218(95)90021-7>
37. WHO. Enviromental Health Criteria 202: Selected Non-heterocyclic Polycyclic Aromatic Hydrocarbons. Geneva: WHO 1998;187.
38. WHO. Enviromental Health Criteria 180: Principles and Methods for Assessing Direct Immunotoxicity Associated with Exposure to Chemicals. Geneva: WHO 1996;203.
39. A. Clues in the p53 murder mystery. Nature 1997; 389(9):237–8.
<https://doi.org/10.1038/38405>
40. K, Near R, Shneider A et al. Fluoranthene-Induced Apoptosis in Murine T Cell Hybridomas Is Independent of the Aromatic Hydrocarbon Receptir. Toxicol and Appl Pharmacol 1996; 139:144–52.
<https://doi.org/10.1006/taap.1996.0153>


