Proton Magnetic Resonance Spectroscopy Reveals Neuroprotection by Oral Minocycline in a Nonhuman Primate Model of Accelerated NeuroAIDS
Author(s) -
EvaMaria Ratai,
Jeffrey P. Bombardier,
ChanGyu Joo,
Lakshmanan Annamalai,
Tricia H. Burdo,
Jennifer H. Campbell,
Robert Fell,
Reza Hakimelahi,
Julian He,
Patrick Autissier,
Margaret R. Lentz,
Elkan F. Halpern,
Eliezer Masliah,
Kenneth C. Williams,
Susan V. Westmoreland,
Ramón González
Publication year - 2010
Publication title -
plos one
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 332
ISSN - 1932-6203
DOI - 10.1371/journal.pone.0010523
Subject(s) - astrogliosis , minocycline , glial fibrillary acidic protein , neuroprotection , neuroinflammation , simian immunodeficiency virus , microglia , synaptophysin , astrocyte , medicine , biology , pathology , immunology , neuroscience , pharmacology , central nervous system , virus , immunohistochemistry , inflammation , biochemistry , antibiotics
Background Despite the advent of highly active anti-retroviral therapy (HAART), HIV-associated neurocognitive disorders continue to be a significant problem. In efforts to understand and alleviate neurocognitive deficits associated with HIV, we used an accelerated simian immunodeficiency virus (SIV) macaque model of NeuroAIDS to test whether minocycline is neuroprotective against lentiviral-induced neuronal injury. Methodology/Principal Findings Eleven rhesus macaques were infected with SIV, depleted of CD8+ lymphocytes, and studied until eight weeks post inoculation (wpi). Seven animals received daily minocycline orally beginning at 4 wpi. Neuronal integrity was monitored in vivo by proton magnetic resonance spectroscopy and post-mortem by immunohistochemistry for synaptophysin (SYN), microtubule-associated protein 2 (MAP2), and neuronal counts. Astrogliosis and microglial activation were quantified by measuring glial fibrillary acidic protein (GFAP) and ionized calcium binding adaptor molecule 1 (IBA-1), respectively. SIV infection followed by CD8+ cell depletion induced a progressive decline in neuronal integrity evidenced by declining N-acetylaspartate/creatine (NAA/Cr), which was arrested with minocycline treatment. The recovery of this ratio was due to increases in NAA, indicating neuronal recovery, and decreases in Cr, likely reflecting downregulation of glial cell activation. SYN, MAP2, and neuronal counts were found to be higher in minocycline-treated animals compared to untreated animals while GFAP and IBA-1 expression were decreased compared to controls. CSF and plasma viral loads were lower in MN-treated animals. Conclusions/Significance In conclusion, oral minocycline alleviates neuronal damage induced by the AIDS virus.
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