Extracellular spermine (SPM) facilitates brain slices and is neuroprotective against NMDA-induced neurotoxicity. Intriguingly, we have found that the polyamine SPM in the hippocampus is stored predominantly in and is released from astrocytes (during electrical depolarization, ischemia, gliotoxin). This leads us to suggest that endogenous glial SPM is released from depolarized glia to neighboring neurons where it plays a crucial role in regulating neuronal activity. Our preliminary data show that SPM (i) selectively blocks fast glutamate receptors (Ca2+-permeable AMPA receptors) on interneurons and (ii) potentiates pyramidal cells from extracellular sites. Therefore, selective blockade of interneurons together with potentiation of pyramidal cells may be a major mechanism for SPM/glia-dependent regulation of the neuronal network. Our preliminary data lead to the novel hypothesis that the gUal-neuronal relationship is based in part by extracellular polyamine fluxes between these cells. Our working hypothesis is that SPM accumulated in glial cells is released via (i) unopposed hemi-gap channels (hemichannels) from depolarized gila to neurons and acts from (ii) outside the neuronal receptor-channels to modulate neuronal activity. Specifically, during neuronal excitation (and ischemia) a transient fall of [H+]o and [Ca2+]otogether with increased [K+]o will depolarize glia and facilitate both the release and the effect of endogenous SPM. At higher concentrations, SPM depresses all kinds of glutamate receptors, resulting in a decrease of neuronal Ca 2+ entry through AMPA and NMDA receptors which may protect neurons against Ca2+-damage. Loss of SPM in glia leads to relief of rectification of glial K+-inwardly rectifying (Kir) channels, this may additionally protect neurons by removing excess [K+]ofrom brain to blood vessels, the """"""""sinks"""""""" to which astrocytes are attached by endfeet. Thus, spermine is one of the major links between glia and neurons and if efficiently accumulated in glia, may be a basis of neuroprotection. Here we ask: how is SPM released from glia and how does this SPM regulate the neuronal network in whole brain? These questions will be addressed by examining the mechanism of SPM transport through hemichannels, by examining the effect of SPM on heterologously expressed Kir6.1/SUR1 and AMPARs and by simultaneous recording from interneurons, astrocytes and pyramidal cells while determining the relationship between opening of hemichannels, SPM release and alterations in neuronal excitability. These studies will provide a novel mechanism for understanding the newly elucidated role of glial cells in the regulation of neuronal activity.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Specialized Center--Cooperative Agreements (U54)
Project #
3U54NS039408-10S2
Application #
8541823
Study Section
Special Emphasis Panel (ZNS1-SRB-H)
Project Start
1999-09-30
Project End
2013-08-31
Budget Start
2009-09-01
Budget End
2010-08-31
Support Year
10
Fiscal Year
2010
Total Cost
$33,334
Indirect Cost
Name
Universidad Central Del Caribe
Department
Type
DUNS #
090534694
City
Bayamon
State
PR
Country
United States
Zip Code
00960
Budworth, Helen; Harris, Faye R; Williams, Paul et al. (2015) Suppression of Somatic Expansion Delays the Onset of Pathophysiology in a Mouse Model of Huntington's Disease. PLoS Genet 11:e1005267
Martins, Antonio H; Hu, Jing; Xu, Zhenfeng et al. (2015) Neuroprotective activity of (1S,2E,4R,6R,-7E,11E)-2,7,11-cembratriene-4,6-diol (4R) in vitro and in vivo in rodent models of brain ischemia. Neuroscience 291:250-259
Bykhovskaia, Maria; Jagota, Anand; Gonzalez, Agustin et al. (2013) Interaction of the complexin accessory helix with the C-terminus of the SNARE complex: molecular-dynamics model of the fusion clamp. Biophys J 105:679-90
Ferchmin, P A; Pérez, Dinely; Castro Alvarez, William et al. (2013) ?-Aminobutyric acid type A receptor inhibition triggers a nicotinic neuroprotective mechanism. J Neurosci Res 91:416-25
Torres-Rivera, W; Pérez, D; Park, K-Y et al. (2013) Kinin-B2 receptor exerted neuroprotection after diisopropylfluorophosphate-induced neuronal damage. Neuroscience 247:273-9
Eterovi?, Vesna A; Del Valle-Rodriguez, Angelie; Pérez, Dinely et al. (2013) Protective activity of (1S,2E,4R,6R,7E,11E)-2,7,11-cembratriene-4,6-diol analogues against diisopropylfluorophosphate neurotoxicity: preliminary structure-activity relationship and pharmacophore modeling. Bioorg Med Chem 21:4678-86
Maldonado, Carolina; Alicea, Daniel; Gonzalez, Maryvi et al. (2013) Adar is essential for optimal presynaptic function. Mol Cell Neurosci 52:173-80
Rodriguez-Mercado, Rafael; Ford, Gregory D; Xu, Zhenfeng et al. (2012) Acute neuronal injury and blood genomic profiles in a nonhuman primate model for ischemic stroke. Comp Med 62:427-38
Martins, Antonio H; Alves, Janaina M; Perez, Dinely et al. (2012) Kinin-B2 receptor mediated neuroprotection after NMDA excitotoxicity is reversed in the presence of kinin-B1 receptor agonists. PLoS One 7:e30755
Long, Rong; Hui, Chung-Yuen; Jagota, Anand et al. (2012) Adhesion energy can regulate vesicle fusion and stabilize partially fused states. J R Soc Interface 9:1555-67

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