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1.
Environ Mol Mutagen ; 57(5): 341-9, 2016 06.
Article in English | MEDLINE | ID: mdl-27175611

ABSTRACT

Cranial irradiation used to control CNS malignancies can also disrupt the vasculature and impair neurotransmission and cognition. Here we describe two distinct methodologies for quantifying early and late radiation injury in CNS microvasculature. Intravascular fluorescently labeled lectin was used to visualize microvessels in the brain of the irradiated mouse 2 days post exposure and RECA-1 immunostaining was similarly used to visualize microvessels in the brain of the irradiated rat 1-month post exposure. Confocal microscopy, image deconvolution and 3-dimensional rendering methods were used to define vascular structure in a ∼4 × 10(7) µm(3) defined region of the brain. Quantitative analysis of these 3D images revealed that irradiation caused significant short- and long-term reductions in capillary density, diameter and volume. In mice, irradiation reduced mean vessel volume from 2,250 to 1,470 µm(3) and mean vessel diameter from 5.0 to 4.5 µm, resulting in significant reductions of 34% and 10%, in the hippocampus respectively. The number of vessel branch points and area was also found to also drop significantly in mice 2 days after irradiation. For rats, immunostaining revealed a significant, three-fold drop in capillary density 1 month after exposure compared to controls. Such radiation-induced disruption of the CNS microvasculature may be contributory if not causal to any number of neurocognitive side effects that manifest in cancer patients following cranial radiotherapy. This study demonstrates the utility of two distinct methodologies for quantifying these important adverse effects of radiotherapy. Environ. Mol. Mutagen. 57:341-349, 2016. © 2016 Wiley Periodicals, Inc.


Subject(s)
Cranial Irradiation , Hippocampus/radiation effects , Imaging, Three-Dimensional/methods , Microvessels/radiation effects , X-Rays , Animals , Dose-Response Relationship, Radiation , Hippocampus/blood supply , Male , Mice, Inbred C57BL , Microscopy, Confocal , Microvessels/ultrastructure , Plant Lectins/administration & dosage , Radiation Dosage , Rats, Nude , Software
2.
Proc Natl Acad Sci U S A ; 113(17): 4836-41, 2016 Apr 26.
Article in English | MEDLINE | ID: mdl-27044087

ABSTRACT

Cancer survivors face a variety of challenges as they cope with disease recurrence and a myriad of normal tissue complications brought on by radio- and chemotherapeutic treatment regimens. For patients subjected to cranial irradiation for the control of CNS malignancy, progressive and debilitating cognitive dysfunction remains a pressing unmet medical need. Although this problem has been recognized for decades, few if any satisfactory long-term solutions exist to resolve this serious unintended side effect of radiotherapy. Past work from our laboratory has demonstrated the neurocognitive benefits of human neural stem cell (hNSC) grafting in the irradiated brain, where intrahippocampal transplantation of hNSC ameliorated radiation-induced cognitive deficits. Using a similar strategy, we now provide, to our knowledge, the first evidence that cranial grafting of microvesicles secreted from hNSC affords similar neuroprotective phenotypes after head-only irradiation. Cortical- and hippocampal-based deficits found 1 mo after irradiation were completely resolved in animals cranially grafted with microvesicles. Microvesicle treatment was found to attenuate neuroinflammation and preserve host neuronal morphology in distinct regions of the brain. These data suggest that the neuroprotective properties of microvesicles act through a trophic support mechanism that reduces inflammation and preserves the structural integrity of the irradiated microenvironment.


Subject(s)
Brain Damage, Chronic/therapy , Cell-Derived Microparticles/transplantation , Cognition Disorders/therapy , Cranial Irradiation/adverse effects , Hippocampus/physiology , Neural Stem Cells/ultrastructure , Radiation Injuries, Experimental/therapy , Amygdala/ultrastructure , Animals , Brain Damage, Chronic/etiology , Cells, Cultured , Cognition Disorders/etiology , Genes, Reporter , Habituation, Psychophysiologic/physiology , Heterografts , Hippocampus/ultrastructure , Humans , Male , Microglia/physiology , Neocortex/ultrastructure , Rats , Rats, Nude
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