The Peripheral-Central Neuroimmune Interface: The Influence of Monocyte Reprogramming on Chronic Neuroinflammation in the Dentate Gyrus Following Traumatic Brain Injury

dc.contributor.authorHarris, Elizabeth Annen
dc.contributor.committeechairTheus, Michelle Hedricken
dc.contributor.committeememberWeston, Matthew Clarken
dc.contributor.committeememberOlsen, Michelle Lynneen
dc.contributor.committeememberRossmeisl, John H.en
dc.contributor.departmentBiomedical and Veterinary Sciencesen
dc.date.accessioned2026-09-16T08:00:56Zen
dc.date.available2026-09-16T08:00:56Zen
dc.date.issued2026-09-15en
dc.description.abstractTraumatic brain injury (TBI) is a leading cause of chronic morbidity with over 3 million people in the US alone living with a TBI-induced long-term disability. While the immediate effects of the impact itself can be devastating, long-term neurocognitive sequelae are most commonly due to ongoing secondary injury driven by chronic neuroinflammation. The dentate gyrus (DG) is a specialized region of the hippocampus responsible for memory contextualization and mood regulation. The DG also acts as a gateway organizing signals between the cortex and outer hippocampus, and hilar interneurons located in this region are critical for maintaining tight regulation of excitatory and inhibitory impulses. These interneurons are selectively vulnerable to secondary brain injury, leading to impaired cognitive and behavioral function. Peripheral-derived mononuclear cells (PDMs), namely monocytes and macrophages, have been recently implicated as key drivers in chronic neuroinflammation. Previous work has demonstrated that EphA4 is upregulated in infiltrating monocytes following brain injury and that blockade of EphA4 causes PDMs to adopt a less inflammatory, pro-resolving phenotype. Despite these findings, the precise, long-term impacts of infiltrating PDM activity on the DG microenvironment and interneuron populations has never been investigated. I hypothesize that a persistent PDM-driven proinflammatory cytokine profile drives hilar interneuron loss, and that deletion of EphA4 in monocytes would limit neuronal loss and improve long-term memory and mood outcomes through modulation of the local cytokine profile and reducing chronic glial activation. The work included in this dissertation characterized the temporospatial profile of the dentate gyrus microenvironment over four months following TBI and determined that chronic hilar interneuron loss and cognitive decline are associated with TNF-TNFR signaling. These studies also determined that EphA4 deletion in monocytes reduced hilar interneuron loss, chronic glial activation, and improved long-term neurobehavioral outcomes through downregulation of classical proinflammatory TNF and NF-κB signaling pathways. In addition, dual deletion of monocyte-specific EphA4 and Tie2 reversed these neuroprotective effects, indicating that PDM-associated EphA4/Tie2 signaling may be a key target for future therapeutic strategies.en
dc.description.abstractgeneralTraumatic brain injury (TBI) impacts millions of people every year and can lead to devastating long-term disabilities. Current treatment of TBI mainly relies on managing symptoms in the early phases after the injury, but strategies for preventing future damage caused by ongoing inflammation in the brain are currently limited. The dentate gyrus (DG) is a specialized area of the brain responsible for coordinating signals between different brain regions that allows for encoding memory, regulating mood, and preventing seizures. Interneurons in this area are inhibitory neurons responsible for maintaining the balance between excitatory and inhibitory impulses. However, these cells are particularly vulnerable to injury. Persistent inflammation in the brain has been partially attributed to peripheral-derived mononuclear cells (PDMs), including monocytes and macrophages, that enter the site of injury and release inflammatory mediators that trigger cell death and activate resident immune cells in the brain. EphA4 is a protein receptor that has been shown to control the behavior of immune cells, promoting the release of inflammatory mediators, and studies blocking EphA4 activity have demonstrated generalized neuroprotection. The long-term impact of PDMs on the neuron and glial populations of the DG has not yet been investigated but may be instrumental to identifying targets for improved therapeutic management of chronic neuroinflammation. I hypothesize that the presence of PDM-associated inflammatory mediators drives interneuron loss and facilitates long-term cognitive impairment. In addition, I hypothesize that specific deletion of EphA4 in monocytes will result in a less inflammatory tissue environment in the DG, reduce the degree of interneuron loss, and reduce long-term activation of resident immune cells. The findings described in this dissertation revealed that interneuron loss is mediated by TNF-TNFR signaling. Monocyte-specific deletion of EphA4 resulted in decreased activation of classical proinflammatory signaling pathways, leading to a reduction in interneuron loss, less activation of resident immune cells, and improved memory and mood performance. In addition, deletion of both EphA4 and Tie2 reversed these protective effects, indicating that EphA4 regulation of Tie2 signaling may be a promising target for the development of future therapeutic interventions.en
dc.description.degreeDoctor of Philosophyen
dc.format.mediumETDen
dc.identifier.othervt_gsexam:47564en
dc.identifier.urihttps://hdl.handle.net/10919/143820en
dc.language.isoenen
dc.publisherVirginia Techen
dc.rightsCreative Commons Attribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/en
dc.subjectneuroimmunologyen
dc.subjectTBIen
dc.subjectmonocytesen
dc.subjectEphA4en
dc.subjectchronic brain injuryen
dc.titleThe Peripheral-Central Neuroimmune Interface: The Influence of Monocyte Reprogramming on Chronic Neuroinflammation in the Dentate Gyrus Following Traumatic Brain Injuryen
dc.typeDissertationen
thesis.degree.disciplineBiomedical and Veterinary Sciencesen
thesis.degree.grantorVirginia Polytechnic Institute and State Universityen
thesis.degree.leveldoctoralen
thesis.degree.nameDoctor of Philosophyen

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