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Bolbos, R.

Publications and source records attributed to Bolbos, R..

4 recordsLinked to original sources

Reduced Folate Carrier 1 (RFC1/Slc19a1) Suppression Exacerbates Blood-Brain Barrier Breakdown in Experimental Ischemic Stroke in Adult Mice

The Reduced Folate Carrier 1 (RFC1), also called solute carrier family 19 member 1 (SLC19A1/SLC19a1), is recognized for transporting folates across the blood-brain barrier (BBB). RFC1 has recently been defined as a hypoxia-immune related gene whose expression levels were induced by acute retinal ischemia, suggesting that RFC1 may have a role in the response of the brain to ischemic injury. Despite a recent human meta-analysis suggesting an association between certain RFC1 polymorphisms and the risk of silent brain infarctions, preclinical evidence concerning the potential role of RFC1 in acute ischemic stroke has yet to be presented. To investigate this, we first characterized RFC1 protein expression in mouse microvessels and pericytes which play significant roles in stroke pathophysiology. Then, we examined the temporal (1-h, 24-h, and 48-h) and spatial (infarct, periinfarct, contralateral) expression of RFC1 protein in the intraluminal transient middle cerebral artery occlusion mouse model. Finally, we knocked down RFC1 protein with RFC1-siRNA in the potential periinfarct region before induction of ischemia and investigated BBB integrity and infarct size in vivo via 7T-MRI. Moreover, we utilized a pharmacological modulation-methotrexate, a non-covalent inhibitor of RFC1- to further investigate the role of RFC1 in maintaining BBB integrity. Our study revealed that, i) RFC1 protein levels were dynamic throughout the acute phases of ischemic stroke, ii) RFC1 suppression aggravated the BBB leakage during ischemia. These results emphases the role of RFC1 in the pathophysiology of ischemic stroke and supports the evidence from human studies.

neuroscience↗

Head down tilt 15° increases cerebral perfusion before recanalization in acute ischemic stroke: a pre-clinical MRI study.

We investigated the therapeutic effect of head down positioning at -15{degrees} (head down tilt; HDT15) on cerebral collateral flow and infarct growth in a rat model of large vessel occlusion (LVO) stroke, using multi-modal MRI. Twenty-eight Wistar rats were randomly assigned to HDT15 or flat position for 60 minutes, starting 30 minutes after occlusion of the middle cerebral artery, followed by reperfusion. The perfusion shift analysis, comparing post- versus pre-treatment voxel-level changes in time-to-peak perfusion maps, showed a significant increase in cerebral perfusion in the HDT15 group (common odds ratio 1.50; 95% CI 1.41-1.60; p < 0.0001), but not in the flat group (common odds ratio 0.97; 95% CI 0.92-1.03; p = 0.3503). Infarct growth at 24 hours was + 31.4% in the flat group (343 versus 250 mm3; 95% CI 2.4 to 165.1; p = 0.0447) and + 15.4% in the HDT15 group (224 versus 192 mm3; 95% CI -26.9 to 85.9; p = 0.2272). Our findings indicate that HDT15 acutely increases cerebral perfusion in LVO acute ischemic stroke and provides a tissue-saving effect before recanalization. Further research is needed to develop HDT15 as an emergency therapy to acutely increase collateral flow in ischemic stroke prior to recanalization therapy.

neuroscience↗

Oxidation-reduction imaging of myoglobin unveils two-phase oxidation in the reperfused myocardium.

Myocardial infarction (MI) is a serious cardiovascular problem that causes myocardial injury due to blood flow obstruction to a specific myocardial area. Under ischemic-reperfusion settings, a burst of reactive oxygen species is generated, leading to redox imbalance that could be attributed to several molecules, including myoglobin. Myoglobin is dynamic and exhibits various oxidation-reduction states that have been a subject of attention in the food industry, specifically for meat consumers. However, rarely if ever, have the myoglobin optical properties been used to understand the pathology of MI. In the current study, we develop a novel imaging pipeline that integrates tissue clearing, confocal and light sheet fluorescence microscopy, combined with imaging analysis, and processing tools to investigate and characterize the oxidation-reduction states of myoglobin in the ischemic area of the myocardium post-MI. Using spectral imaging, we have characterized the endogenous fluorescence of the myocardium and demonstrated that it aligns with the spectral profile of myoglobin. Under ischemia-reperfusion experimental settings, we report that the infarcted myocardium spectral signature is similar to that of oxidized myoglobin signal that peaks 3 hours post-reperfusion and decreases with cardioprotection. These results were correlated with MI measurements by Late Gadolinium Enhancement MRI. In conclusion, this seminal work suggests that the redox state of myoglobin can be used as a promising imaging biomarker for characterizing and estimating the size of the MI during early phases of reperfusion.

pathology↗

Brain virtual histology with X-ray phase-contrast tomography Part I: whole-brain myelin mapping in white-matter injury models

White-matter injury leads to severe functional loss in many neurological diseases. Myelin staining on histological samples is the most common technique to investigate white-matter fibers. However, tissue processing and sectioning may affect the reliability of 3D volumetric assessments. The purpose of this study was to propose an approach that enables myelin fibers to be mapped in the whole rodent brain with microscopic resolution and without the need for strenuous staining. With this aim, we coupled inline (propagation-based) X-ray phase-contrast tomography (XPCT) to ethanol-induced brain sample dehydration. We here provide the proof-of-concept that this approach enhances myelinated axons in rodent and human brain tissue. In addition, we demonstrated that white-matter injuries could be detected and quantified with this approach, using three animal models: ischemic stroke, premature birth and multiple sclerosis. Furthermore, in analogy to diffusion tensor imaging (DTI), we retrieved fiber directions and DTI-like diffusion metrics from our XPCT data to quantitatively characterize white-matter microstructure. Finally, we showed that this non-destructive approach was compatible with subsequent complementary brain sample analysis by conventional histology. In-line XPCT might thus become a novel gold-standard for investigating white-matter injury in the intact brain. This is Part I of a series of two articles reporting the value of in-line XPCT for virtual histology of the brain; Part II shows how in-line XPCT enables the whole-brain 3D morphometric analysis of amyloid-{beta} (A{beta}) plaques. HighlightsO_LIX-ray phase-contrast tomography (XPCT) enables myelin mapping of the whole brain C_LIO_LIXPCT detects and quantifies white-matter injuries in a range of diseases C_LIO_LIFiber directions and anisotropy metrics can be retrieved from XPCT data C_LIO_LIXPCT is compatible with subsequent conventional histology of brain samples C_LIO_LIXPCT is a powerful virtual histology tool that requires minimal sample preparation C_LI Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=130 SRC="FIGDIR/small/436852v3_ufig1.gif" ALT="Figure 1"> View larger version (65K): org.highwire.dtl.DTLVardef@1b06ba6org.highwire.dtl.DTLVardef@16b8d4aorg.highwire.dtl.DTLVardef@91cfborg.highwire.dtl.DTLVardef@4dcbca_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗