Literature DB >> 29934756

Striatal Reinnervation Process after Acute Methamphetamine-Induced Dopaminergic Degeneration in Mice.

Noelia Granado1,2, Sara Ares-Santos1,2, Yousef Tizabi3, Rosario Moratalla4,5.   

Abstract

Methamphetamine (METH), an amphetamine derivate, may increase the risk of developing Parkinson's disease (PD). Human and animal studies have shown that METH produces persistent dopaminergic neurotoxicity in the nigrostriatal pathway, despite initial partial recovery. To determine the processes leading to early compensation, we studied the detailed morphology and distribution of tyrosine hydroxylase immunoreactive fibers (TH-ir) classified by their thickness (types I-IV) before and after METH. Applying three established neurotoxic regimens of METH: single high dose (1 × 30 mg/kg), multiple lower doses (3 × 5 mg/kg) or (3 × 10 mg/kg), we show that METH primarily damages type I fibers (the thinner ones), and to a much lesser extend types II-IV fibers including sterile axons. The striatal TH terminal partial recovery process, consisting of a progressive regrowth increases in types II, III, and IV fibers, demonstrated by co-localization of GAP-43, a sprouting marker, was observed 3 days post-METH treatment. In addition, we demonstrate the presence of growth-cone-like TH-ir structures, indicative of new terminal generation as well as improvement in motor functions after 3 days. A temporal relationship was observed between decreases in TH-expression and increases in silver staining, a marker of degeneration. Striatal regeneration was associated with an increase in astroglia and decrease in microglia expression, suggesting a possible role for the neuroimmune system in regenerative processes. Identification of regenerative compensatory mechanisms in response to neurotoxic agents could point to novel mechanisms in countering the neurotoxicity and/or enhancing the regenerative processes.

Entities:  

Keywords:  Amphetamine derivatives; Astroglia; Axonal regeneration; Cell death; Microglia; Parkinson’s disease; Sprouting

Mesh:

Substances:

Year:  2018        PMID: 29934756     DOI: 10.1007/s12640-018-9925-z

Source DB:  PubMed          Journal:  Neurotox Res        ISSN: 1029-8428            Impact factor:   3.911


  70 in total

Review 1.  The relationship of GAP-43 to the development and plasticity of synaptic connections.

Authors:  L I Benowitz; N I Perrone-Bizzozero
Journal:  Ann N Y Acad Sci       Date:  1991       Impact factor: 5.691

2.  Loss of dopamine transporters in methamphetamine abusers recovers with protracted abstinence.

Authors:  N D Volkow; L Chang; G J Wang; J S Fowler; D Franceschi; M Sedler; S J Gatley; E Miller; R Hitzemann; Y S Ding; J Logan
Journal:  J Neurosci       Date:  2001-12-01       Impact factor: 6.167

3.  Dopamine D(1) receptor deletion strongly reduces neurotoxic effects of methamphetamine.

Authors:  S Ares-Santos; N Granado; I Oliva; E O'Shea; E D Martin; M I Colado; R Moratalla
Journal:  Neurobiol Dis       Date:  2011-11-13       Impact factor: 5.996

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Review 5.  GAP-43: an intrinsic determinant of neuronal development and plasticity.

Authors:  L I Benowitz; A Routtenberg
Journal:  Trends Neurosci       Date:  1997-02       Impact factor: 13.837

6.  Dopamine D2-receptor knockout mice are protected against dopaminergic neurotoxicity induced by methamphetamine or MDMA.

Authors:  Noelia Granado; Sara Ares-Santos; Idaira Oliva; Esther O'Shea; Eduardo D Martin; M Isabel Colado; Rosario Moratalla
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7.  Further evidence that amphetamines produce long-lasting dopamine neurochemical deficits by destroying dopamine nerve fibers.

Authors:  G A Ricaurte; L S Seiden; C R Schuster
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8.  Glial responses associated with dopaminergic striatal reinnervation following lesions of the rat substantia nigra.

Authors:  Davor Stanic; Wanida Tripanichkul; John Drago; David I Finkelstein; Malcolm K Horne
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9.  Timecourse of striatal re-innervation following lesions of dopaminergic SNpc neurons of the rat.

Authors:  D Stanic; D I Finkelstein; D W Bourke; J Drago; M K Horne
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