Page 31 - 75_03
P. 31

VOL. 75 (3), 389-418, 2009  CENTRAL AND PERIPHERAL ENDOGENOUS MORPHINE

 97.  Persson, A. I., Thorlin, T., Bull, C. & Eriksson, P. S. (2003) Opioid-induced
 98.  proliferation through the MAPK pathway in cultures of adult hippocampal
      progenitors. Mol. Cell. Neurosci. 23(3): 360-372.
 99.  Persson, A. I., Thorlin, T., Bull, C., Zarnegar, P., Ekman, R., Terenius, L., et
100.  al. (2003) Mu- and delta-opioid receptor antagonists decrease proliferation
101.  and increase neurogenesis in cultures of rat adult hippocampal progenitors.
      Eur. J. Neurosci. 17(6): 1159-1172.
102.  Harburg, G. C., Hall, F. S., Harrist, A. V., Sora, I., Uhl, G. R. & Eisch, A. J.
103.  (2007) Knockout of the mu opioid receptor enhances the survival of adult-
      generated hippocampal granule cell neurons. Neuroscience. 144(1): 77-87.
104.  Weber, M., Modemann, S., Schipper, P., Trauer, H., Franke, H., Illes, P., et
105.  al. (2006) Increased polysialic acid neural cell adhesion molecule expression
      in human hippocampus of heroin addicts. Neuroscience. 138(4): 1215-1223.
106.  Brailoiu, E., Hoard, J., Brailoiu, G. C., Chi, M., Godbolde, R. & Dun, N. J.
      (2004) Ultra low concentrations of morphine increase neurite outgrowth in
107.  cultured rat spinal cord and cerebral cortical neurons. Neurosci. Lett. 365(1):
108.  10-13.
109.  Tenconi, B., Lesma, E., DiGiulio, A. M. & Gorio, A. (1996) High opioid doses
110.  inhibit whereas low doses enhance neuritogenesis in PC12 cells. Brain Res.
      Dev. Brain Res. 94(2): 175-181.
      Zeng, Y. S., Nie, J. H., Zhang, W., Chen, S. J. & Wu, W. (2007) Morphine
      acts via mu-opioid receptors to enhance spinal regeneration and synaptic
      reconstruction of primary afferent fibers injured by sciatic nerve crush. Brain
      Res. 1130(1): 108-113.
      Horvath, R. J. & DeLeo, J. A. (2009) Morphine enhances microglial migration
      through modulation of P2X4 receptor signaling. J. Neurosci. 29(4): 998-1005.
      Zhu, W., Mantione, K. J., Casares, F. M., Cadet, P., Kim, J. W., Bilfinger,
      T. V., et al. (2006) Alcohol-, nicotine-, and cocaine-evoked release of morphine
      from invertebrate ganglia: model system for screening drugs of abuse. Med.
      Sci. Monit. 12(5): BR155-161.
      Stefano, G. B., Bianchi, E., Guarna, M., Fricchione, G. L., Zhu, W., Cadet, P.,
      et al. (2007) Nicotine, alcohol and cocaine coupling to reward processes via
      endogenous morphine signaling: the dopamine-morphine hypothesis. Med.
      Sci. Monit. 13(6): RA91-102.
      Aunis, D. (1998) Exocytosis in chromaffin cells of the adrenal medulla. Int.
      Rev. Cytol. 181: 213-320.
      Aunis, D., Miras-Portugal, M. T. & Mandel, P. (1974) Bovine adrenal
      medullary dopamine-beta-hydroxylase: studies on the structure. Biochim.
      Biophys. Acta. 365: 259-273.
      Aunis, D., Miras-Portugal, M. T. & Mandel, P. (1975) Bovine adrenal
      medullary dopamine-beta-hydroxylase: studies on interaction with
      concanavalin A. J. Neurochem. 24: 425-431.
      Goumon, Y., Zhu, W., Weeks, B. S., Casares, F., Cadet, P., Bougaeva, M.,
      et al. (2000) Identification of morphine in the adrenal medullary chromaffin
      PC-12 cell line. Brain Res. Mol. Brain Res. 81(1-2): 177-180.

                            417
   26   27   28   29   30   31   32   33   34   35   36