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Uruk, G.

Publications and source records attributed to Uruk, G..

4 recordsLinked to original sources

Transcriptional and neuroprotective effects of hexokinase-2 inhibitors administered afterstroke

The inflammatory response induced by stroke can exacerbate injury to peri-infarct tissue. Microglia and other immune cells that mediate this response require increased glycolytic flux during pro-inflammatory activation. These cells, unlike neurons and most other cell types, utilize hexokinase-2 (HK2) rather than hexokinase-1 for glycolysis, such that HK2 inhibitors may selectively target them to suppress post-ischemic inflammation. Here we compared the effects of the non-selective hexokinase inhibitor 2-deoxyglucose to the HK2-selective inhibitors lonidamine and 3-bromopyruvate on secondary injury after stroke. A spatial transcriptomic assessment was performed in parallel to compare effects of the inhibitors on microglial gene expression and microglia - neuron interactions and to screen for off-target effects. Each of the inhibitors suppressed pro-inflammatory gene upregulation in peri-infarct microglia and attenuated the upregulation of cell stress functional pathways in the neighboring neurons, but had minimal effect on neuronal gene expression in uninjured cortex. The HK2-selective inhibitors were more effective than 2-deoxyglucose in suppressing morphological microglial changes, neuronal oxidative stress, and neurite loss. 3-bromopyruvate administered after stroke produced long-term improvements in functional outcome. Selective HK2 inhibitors may thus provide a clinically applicable means to suppress microglial activation and thereby improve outcomes after stroke without endangering neuronal energy metabolism.

neuroscience↗

Superoxide enters neurons via LRRC8A-containing volume-regulated anion channels

Superoxide (O2-) is both an intercellular signaling molecule and a cause of neuronal oxidative stress. Superoxide entry into neurons is thought to be indirect, requiring its dismutation to nonpolar hydrogen peroxide. Here we show instead that superoxide enters neurons directly, via LRRC8A-containing volume-sensitive organic anion channels. In primary cultures, neuronal oxidative stress induced either by NMDA receptor stimulation or exposure to authentic superoxide was blocked by the anion channel blockers DIDS and DCPIB and by LRRC8A gene disruption. In mouse cortex, neuronal oxidative stress induced by either NMDA injection or transient ischemia was likewise blocked by both DCPIB and LRRC8A gene disruption. These findings identify a role for LRRC8A-containing volume-sensitive organic anion channels in neuronal oxidative signaling, stress, and glutamate excitotoxicity.

neuroscience↗

Reduced Folate Carrier 1 is Present in Retinal Microvessels and Contributes to the Regulation of The Inner Blood Retinal Barrier in Health and Retinal Ischemia

BackgroundReduced folate carrier 1 (RFC1; SLC19a1) is the main responsible transporter for the B9 family of vitamins named folates, which are essential for normal tissue growth and development. While folate deficiency resulted in retinal vasculopathy, the expression and the role of RFC1 in blood-retinal barrier (BRB) are not well known. MethodsWe used whole mount retinas and trypsin digested microvessel samples of adult mice. To knockdown RFC1, we delivered RFC1-targeted short interfering RNA (RFC1-siRNA) intravitreally; while, to upregulate RFC1 we delivered lentiviral vector overexpressing RFC1. Retinal ischemia was induced 1-hour by applying FeCl3 to central retinal artery. We used RT-qPCR and Western blotting to determine RFC1. Endothelium (CD31), pericytes (PDGFR-beta, CD13, NG2), tight-junctions (Occludin, Claudin-5 and ZO-1), main basal membrane protein (Collagen-4), endogenous IgG and RFC1 were determined immunohistochemically. ResultsOur analyses on whole mount retinas and trypsin digested microvessel samples of adult mice revealed the presence of RFC1 in the inner BRB and colocalization with endothelial cells and pericytes. Knocking down RFC1 expression via siRNA delivery resulted in the disintegration of tight junction proteins and collagen-4 in twenty-four hours, which was accompanied by significant endogenous IgG extravasation. This indicated the impairment of BRB integrity after an abrupt RFC1 decrease. Furthermore, lentiviral vector-mediated RFC1 overexpression resulted in increased tight junction proteins and collagen-4, confirming the structural role of RFC1 in the inner BRB. Acute retinal ischemia decreased collagen-4 and occludin levels and led to an increase in RFC1. Besides, the pre-ischemic overexpression of RFC1 partially rescued collagen-4 and occludin levels which would be decreased after ischemia. ConclusionIn conclusion, our study clarifies the presence of RFC1 protein in the inner BRB, which has recently been defined as hypoxia-immune-related gene in other tissues and offers a novel perspective of retinal RFC1. Hence, other than being a folate carrier, RFC1 is an acute regulator of the inner BRB in healthy and ischemic retinas.

neuroscience↗

DISRUPTED CEREBRAL PERI-MICROVASCULAR GLYCOGEN PROMOTES CAPILLARY CONSTRICTIONS AND AGGRAVATES ISCHEMIA IN MICE

Ischemic stroke results in sudden blood flow cessation, thus, unmet energy requirements. Although the clotted artery can be recanalized and blood flow is restored, brain perfusion may not be fully attained due to microvascular constrictions. Under glucose deprived and hypoxic conditions, glucose derived from the glycogen stored around peri-microvascular astrocyte end-feet may serve as an emergency fuel to meet the metabolic demand during acute period of ischemic stroke. To elucidate the impact of glycogen utilization on brain microcirculation, we administered glycogen phosphorylase inhibitor 1,4-dideoxy-1,4-imino-d-arabinitol (DAB) intracerebroventricularly. Transgenic mice in which glycogen synthase-1 expression was selectively knocked out in central nervous system (GYS1Nestin-KO) were also used. Both approaches caused microvascular constrictions mediated by CD13-positive pericyte contractions. When mice with disrupted glycogen utilization were subjected to MCA ischemia, pericyte-mediated microvascular constrictions and the infarct volumes were further increased compared to untreated controls or wild type littermates. Perimicrovascular glycogen depletions were highly correlated with microvascular constrictions as shown by Periodic acid Schiff (PAS) staining and immunolabeling with anti-glycogen antibodies. Imaging of regional cortical blood flow changes during ischemia disclosed severely compromised blood flow dynamics in mice with disrupted glycogen metabolism. In conclusion, disrupting glycogen utilization causes ischemic-like microvascular constrictions under non-ischemic circumstances and increases susceptibility to brain ischemia. Understanding the role of glycogen at neurogliovascular level in brain may provide novel insight to the pathophysiology of ischemic stroke and therapeutic opportunities. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=142 SRC="FIGDIR/small/505172v1_ufig1.gif" ALT="Figure 1"> View larger version (33K): org.highwire.dtl.DTLVardef@1a4972borg.highwire.dtl.DTLVardef@c09847org.highwire.dtl.DTLVardef@4d961forg.highwire.dtl.DTLVardef@1bae0de_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗