Methamphetamine and MDMA (3,4-methylenedioxymethamphetamine) Induce Apoptosis in Both Human Serotonergic and Dopaminergic Cell Lines

  • Kim, Kyu Bong (Division of Safety Evaluation, National Institute of Toxicological Research, KFDA) ;
  • Suh, Soo Kyung (Division of Safety Evaluation, National Institute of Toxicological Research, KFDA) ;
  • Lee, Bo Kyung (Division of Safety Evaluation, National Institute of Toxicological Research, KFDA) ;
  • Kim, Byung Kyu (Division of Safety Evaluation, National Institute of Toxicological Research, KFDA) ;
  • Kim, Jae Hee (Division of Safety Evaluation, National Institute of Toxicological Research, KFDA) ;
  • Han, Eui Sik (Division of Safety Evaluation, National Institute of Toxicological Research, KFDA) ;
  • Park, Chang Won (Division of Safety Evaluation, National Institute of Toxicological Research, KFDA) ;
  • Kim, Jong Won (Division of Safety Evaluation, National Institute of Toxicological Research, KFDA) ;
  • Kim, Kwang Jin (Division of Safety Evaluation, National Institute of Toxicological Research, KFDA) ;
  • Lee, Sun Hee (Division of Safety Evaluation, National Institute of Toxicological Research, KFDA)
  • Published : 2003.12.01

Abstract

Methamphetamine (METH) and 3,4-methylenedioxymethamphetamine (MDMA) have become popular recreational drugs of abuse in many countries. Although the neurotoxic damage caused by METH and MDMA is characterized by degeneration of the dopaminergic and serotonergic systems in brain, the molecular and cellular mechanisms remain to be clarified. Therefore, the purposes of this study were to confirm the capability of METH and MDMA to induce apoptosis and to clarify the action of its molecular mechanism by using serotonergic JAR cells and dopaminergic SK-N-SH cells. METH and MDMA were dose-dependently cytotoxic to human serotonergic JAR cells and dopaminergic SK-N-SH cells. The morphological change of apoptosis was found in Giemsa staining and TUNEL and further verified in DNA fragmentation analysis. Immunoblotting analysis revealed proteolytic cleavage of caspase-3 and -9 and change of bcl-2 and bax proteins. These results suggest that METH and MDMA may induce caspase-dependent apoptosis via the mitochondrial cell death pathway and METH and MDMA-induced neurotoxicity may happen to broadly and independently of both dopaminergic and serotonergic systems.

Keywords

References

  1. Baldwin, H.A., Colado, M.I., Murray, T.K., De Souza, R.J. and Green, W.J. (1993). Striatal dopamine release in vivo follow-ing neurotoxic doses of methamphetamine and effect of the neuroprotective drugs, chlormethiazole and dizocilpine. Br. J. Pharmacol. 108, 590-596 https://doi.org/10.1111/j.1476-5381.1993.tb12847.x
  2. Berger, U.V., Gu, X.F. and Aznitia, E.C. (1992). The substituted amphetamine 3,4-methy1enedioxymethamphetamine, mctham-phetamine, p-chloroamphetamine and fenfluramine induce 5-hydroxytryptanune release via a common mechanism blocked by fluoxetin and cocaine. Eur. J. Pharmacol. 215, 153-160 https://doi.org/10.1016/0014-2999(92)90023-W
  3. Davidson, C., Gow, A.J., Lee, T.H. and Ellinwood, E.H. (2001). Methamphetamine ncurotoxicily: necrotic and apoptotic mech-anisms and relevance to human abuse and treatrment. Brain Res. Reviews 36, 1-22 https://doi.org/10.1016/S0165-0173(01)00054-6
  4. De Vito M.J. and Wagner, G.C. (1989). Methamphetaimne-induced neuronal damage: a possible role for free radicals. Neurophar-macology 28, 1145-1150 https://doi.org/10.1016/0028-3908(89)90130-5
  5. Fleckcnstein, A.E., Gibb, J.W. and Hanson, G.R. (2000). Differ-ential effects of stimulants on monoaminergic transporters: pharmacological consequences and implicadons for neurotox-icity. Eur. J. Pharmacol. 406, 1-13 https://doi.org/10.1016/S0014-2999(00)00639-7
  6. Giovanni, A., Liang, L.P., Hastings, T.G., and Zigmond, M.J. (1995). Estimating hydroxy radical content in rat brain using systemic and intraventhcular salicylate: impact of metham- phetamine. J. Neurochem. 64, 1819-1825 https://doi.org/10.1046/j.1471-4159.1995.64041819.x
  7. Hirata, H.H., Ladenheim, B., Carlson, E., Epstein, C., and Cadet, J.L. (1996). Automdiographic evidence for methamphetamine-induced striatal dopaminergic loss in mouse brain: attenuadon in CuZn-superoxide dismutase transgenic mice. Brain Res. 714, 95-103 https://doi.org/10.1016/0006-8993(95)01502-7
  8. Tmam, S.Z., Itzhak, Y, Cadet, J.L., Islam, F, Slikker, W. Jr., and Ali, S.F. (2001). Methaniphetamine-induced alteration in stii-atal p53 and bc1-2 expression in mice. Mol. Brain Res. 90. 174-178 https://doi.org/10.1016/S0169-328X(01)00107-3
  9. Insel, T.R., Battaglia, G., Johannessen, J.N., Marra, S., and Souza, EBD. (1989). 3,4-Methy1enedioxymethamphetmine ('Ecstacy') selectively destroys brain serotonin tenninaIs in Rhesus Mon keys. J. Pharmacol. Exp. Ther. 249, 713-720
  10. Jayanthi, S., Deng, X., Bordelon, M., McCoy, M.T, and Cadet, J.L. (2001). Methamphetamine causes differential regulation of pro-death and anti-death Bc1-2 genes in the mouse neocortex. FASEB J. 15, 1745-1752 https://doi.org/10.1096/fj.01-0025com
  11. Johnston, L.D., OMalley, P.M., Bachman, J.G. (2000). Monitor-ing the future national survey results on adolescent drug use:overview of the key findings, 1999 (NIH publication number00-4690)
  12. Keenan, E., Gervin, M., Dorman, A., and OConnor, J.J. (1993). Psychosis and recreational use of MDMA ('Ecstacy'). Irish J. Psychol. Med. 10, 162-163
  13. Kleven, M.S. and Seiden, L.S. (1992). Methamphetamine-induced neurotoxicity: structure activity relationships. Ann. NY. Acad. Sci. 654, 292-301 https://doi.org/10.1111/j.1749-6632.1992.tb25975.x
  14. Kuczenski, R., Segal, D.S., Cho, A.K. and Melega, W. (1995). Hippocampus norepinephrine, caudate dopamine and seroto nine, and behavioral responses Lo the stereoisomers of amphet-aminne and methamphetamine. J. Neurosci. 15, 1308-1317
  15. Lemaster, J.J., Qian, T., Bradham, D.A., Brenner, W.E., Cascio, L.C., Trost, Y., Nishmura, Y, Nieminen, A.L., and Herman, B. (1999). Mitochondrial dysfunction in the pathogenesis of necrotic and apoptotic cell dcath. J. Bioenerg. Biomembr. 31. 305-319 https://doi.org/10.1023/A:1005419617371
  16. Leshner, A.I. (2001). Using science to counter the spread of Ecstacy abuse. NIDA Notes. 16, 3-4
  17. Lieberman, J.A., Kinon, B.J., and Loebel, A.D. (1990). Dopamin-ergic mechanisms in idiopathic and drug-induced psychoses. Schizophr. Bull. 16, 97-110 https://doi.org/10.1093/schbul/16.1.97
  18. O'Shea, E., Granados, R., Esteban, B., Colado, M.L, and Green, A.R. (1998). The relationship between the degree of neurode-generation of rat brain 5-HT nerve terminals and the dose and frequency of adimnistation of MDMA (ecstacy). Neurophar-macol. 37, 919-926 https://doi.org/10.1016/S0028-3908(98)00029-X
  19. Ricaurte, G., Bryan, G., Strauss, L., Seidcn, L., and Schuster. C. (1985). Hallucinogenic amphetamine selectively destroys brain serotonin nerve terminals. Science 229, 986-988 https://doi.org/10.1126/science.4023719
  20. Seiden, L.S. and Vosmer, G. (1984). Formation of 6-hydroxy-dopamine in caudate nucleus of the rat brain after a single large dose of methamphetamine. Pharmacol. Biochem. Beha. 21, 29-31 https://doi.org/10.1016/0091-3057(84)90125-4
  21. Simantov, R. and Tauber, M. (1997). The abuse drug MDMA (Ecstacy) induces programmed death of human serotonergic cells. FASEB J. 11, 141-146
  22. Sprague, J.E., Everman, S.L., and Nichols, D.E. (1998). An inte-gratcd hypothesis for the serotonergic axonal loss induced by 3,4-methy1enedioxymethamphetmine. Neurotoxicol. 19, 427-441
  23. Stone, D.M., Johnson, M., Hanson, G.R., and Gibb, J.W. (1988). Rolc of endogenous dopamine in the central serotonergic defi-cits induced by 3,4-methy1enedioxy- methamphetmine. J. Pharmacol. Exp. Ther. 247, 79-87
  24. Thiriet, N., Jayanthi, S., McCoy, M., Ladenheim, B., and Cadet, J.L. (2001). Methamphetamine increases expression of the apoptotic c-myc and L-myc genes in the mouse brain. Mol.Brain Res. 90, 202-204 https://doi.org/10.1016/S0169-328X(01)00093-6
  25. Volkow, N.D., Chang, L., Wang, G.J., Fowler, J.S., Franceschi D., Sedler, M., Gatley, S.J., Miller, E., Hitzemann, R., Ding, Y.S., and Logan, J. (2001). Loss of dopamine transporters inmethamphetamine abusers recovers with protracted absti-nence. J. Neurosci. 21, 9414-9418
  26. Wagner, G.C., Ricaurte, G.A., Seiden, L.S., Schuster, C.R., Miller, R.J., and Westley, J. (1980). Long-lasting depletions of stnatal dopamine and loss of dopamine uptake sites following rcpeated admimstralion of methamphetamine. Brain Res. 181.151-160 https://doi.org/10.1016/0006-8993(80)91265-2
  27. Woolverton, W.L., Ricaurte, G.A., Forno, L.S., and Seiden, L.S. (1989). Long term effects of chronic methamphetaimne admin-istration in rhesus monkeys. Brain Res. 11, 73-78