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Ford, B. D.

Publications and source records attributed to Ford, B. D..

3 recordsLinked to original sources

Neutrophils in the brain are sources of neuroprotective molecules and demonstrate functional heterogeneity during chronic Toxoplasma gondii infection

Infection with the protozoan parasite Toxoplasma gondii leads to the formation of lifelong cysts in neurons of the brain that can have devastating consequences in the immunocompromised. However, despite the establishment of a chronic inflammatory state and infection-induced neurological changes, there are limited signs of clinical neuropathology resulting in an asymptomatic infection in the immunocompetent. This suggests the work of neuroprotective mechanisms to prevent clinical manifestations of disease. However, such sources of neuroprotection during infection remain largely unknown. This study identifies a population of neutrophils chronically present in the brain during Toxoplasma infection that express the neuroprotective molecules NRG-1, ErbB4, and MSR1. Further phenotyping of this population via flow cytometry and singe-cell RNA sequencing reveals two distinct subsets of neutrophils based on age that display functional heterogeneity. This includes cells transcriptionally prepared to function both as anti-parasitic effector cells and in a more alternative protective manner. Chronic depletion of neutrophils results in increased parasite burden and infection-induced vascular pathology. Lack of neutrophils during chronic infection also deleteriously affects neuronal regeneration and repair mechanisms. In conclusion, this work identifies and demonstrates a functionally diverse chronic neutrophil population that plays a dynamic role in controlling infection outcome in the CNS by balancing classical responses with neuroprotective functions. Author SummaryThe predominantly asymptomatic nature of chronic Toxoplasma gondii infection despite the life-long infection of neurons suggests that there are neuroprotective mechanisms at work in the brain to maintain homeostasis and integrity. This study identifies neutrophils, normally considered a first-responding innate immune cell, as a prominent source of neuroprotective molecules during Toxoplasma infection. Aged neutrophils in the brain exhibit an ability to be functionally flexible expressing signatures of classical proinflammatory responses; and neuroprotective, pro-angiogenic indicators. Lack of neutrophils during chronic infection leads to increased parasite burden, increased vascular damage, and decreased neuronal regeneration. We conclude that chronic brain neutrophils are a functionally dynamic population and a source of neuroprotection during infection and suggest that this is a potentially novel target to promote brain tissue repair without compromising anti-microbial activity.

immunology↗

Upregulation of CREB1 and FOXO1 transcription factor pathways in Neuregulin-1 mediated neuroprotection following ischemic stroke

Neuregulin-1 (NRG-1) is growth factor that has been investigated for its neuroprotective properties following ischemic stroke. While NRG-1 has shown significant promise in preventing neuronal damage following stroke, the mechanisms behind its neuroprotective effects are unclear. The goal of this research was to investigate the effects of NRG-1 treatment on ischemia-induced gene expression profiles following a permanent middle cerebral artery occlusion (MCAO) in rats. Rats were sacrificed twelve hours following MCAO and either vehicle or NRG-1 treatment. RNA extracted from the peri-infarct cortex of the brain was hybridized to an Affymetrix Rat Genome 2.0st Microarray Gene Chip. Data were analyzed using the Affymetrix Transcriptome Analysis Console (TAC) 4.0 software and the STRING Protein-Protein Interaction Networks database. Our results showed that NRG-1 delivery increased the regulation of pro-survival genes. Most notably, NRG-1 treatment upregulated the CREB1 and FOXO1 transcription factor pathways which are involved in increasing anti-inflammatory and cell proliferation responses and decreasing apoptosis and oxidative stress responses, respectively. Luminex multiplex transcription factor assays demonstrated that the activities of CREB1 and FOXO1 were increased by NRG-1 treatment with MCAO. These findings provide novel insight into the molecular mechanisms involved in NRG-1 mediated neuroprotection.

neuroscience↗

Early neuroadaptations to an obesogenic diet identify the schizophrenia-related ErbB4 receptor in obesity-induced hippocampal abnormalities

Childhood obesity leads to hippocampal atrophy and altered cognition. However, the molecular mechanisms underlying these impairments are poorly understood. The neurotrophic factor neuregulin-1 (NRG1) and its cognate ErbB4 receptor play critical roles in hippocampal maturation and function. This study aimed to determine whether altered NRG1-ErbB4 activities may partly explain hippocampal abnormalities in rats exposed to an obesogenic Western-like diet (WD). Lewis rats were randomly divided into four groups (12 rats/group): 1) control diet+vehicle (CDV); 2) CD+NRG1 (CDN) (daily intraperitoneal injections: 5 g/kg/day; between postnatal day, PND 21-PND 41); 3) WD+VEH (WDV); 4) WD+NRG1 (WDN). Neurobehavioral assessments were performed at PND 43-49. Brains were harvested for MRI and molecular analyses at PND 49. We found that NRG1 administration reduced hippocampal volume (7%) and attenuated hippocampal-dependent cued fear conditioning in CD rats (56%). NRG1 administration reduced PSD-95 protein expression (30%) and selectively reduced hippocampal cytokine levels (IL-33, GM-CSF, CCL-2, IFN-{gamma}) while significantly impacting microglia morphology (increased span ratio and reduced circularity). WD rats exhibited reduced right hippocampal volume (7%), altered microglia morphology (reduced density and increased lacunarity), and increased levels of cytokines implicated in neuroinflammation (IL-1, TNF-, IL-6). Notably, NRG1 synergized with the WD to increase hippocampal ErbB4 phosphorylation and the tumor necrosis alpha converting enzyme (TACE/ADAM17) protein levels. Together, these data suggest a novel interaction between obesogenic diet exposure and TACE/ADAM17-NRG1-ErbB4 signaling during hippocampal maturation. Our results indicate that supraoptimal ErbB4 activities may contribute to the abnormal hippocampal structure and cognitive vulnerabilities observed in obese individuals. HighlightsO_LIObesogenic diet consumption during adolescence induces anxiety-like behaviors before the onset of obesity-related changes in metabolism. C_LIO_LIObesogenic diet-driven abnormal behaviors co-occurred with alterations in hippocampal pro-inflammatory cytokine profiles. C_LIO_LIObesogenic diet consumption attenuates exogenous NRG1 effects on hippocampal-related behaviors and structure. C_LIO_LIExogenous NRG1 administration during adolescence resulted in reduced hippocampal volumes and domain-specific cognitive impairments. C_LIO_LIExogenous NRG1 administration has potent immunomodulatory actions and alters hippocampal microglia morphology. C_LI

neuroscience↗