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Intracerebroventricular and Intravascular Injection of Viral Particles and Fluorescent Microbeads into the Neonatal Brain
Published on: July 24, 2016
Cerebral Response to Peripheral Challenge with a Viral Mimetic
1Department of Neurobiology and Anatomy, West Virginia University School of Medicine, 1 Medical Center Dr., Morgantown, WV, 26506-9128, USA. gkonat@wvu.edu.
Abstract:
It has been well established that peripheral inflammation resulting from microbial infections profoundly alters brain function. This review focuses on experimental systems that model cerebral effects of peripheral viral challenge. The most common models employ the induction of the acute phase response via intraperitoneal injection of a viral mimetic, polyinosinic-polycytidylic acid (PIC). The ensuing transient surge of blood-borne inflammatory mediators induces a "mirror" inflammatory response in the brain characterized by the upregulated expression of a plethora of genes encoding cytokines, chemokines and other inflammatory/stress proteins. These inflammatory mediators modify the activity of neuronal networks leading to a constellation of behavioral traits collectively categorized as the sickness behavior. Sickness behavior is an important protective response of the host that has evolved to enhance survival and limit the spread of infections within a population. However, a growing body of clinical data indicates that the activation of inflammatory pathways in the brain may constitute a serious comorbidity factor for neuropathological conditions. Such comorbidity has been demonstrated using the PIC paradigm in experimental models of Alzheimer's disease, prion disease and seizures. Also, prenatal or perinatal PIC challenge has been shown to disrupt normal cerebral development of the offspring resulting in phenotypes consistent with neuropsychiatric disorders, such as schizophrenia and autism. Remarkably, recent studies indicate that mild peripheral PIC challenge may be neuroprotective in stroke. Altogether, the PIC challenge paradigm represents a unique heuristic model to elucidate the immune-to-brain communication pathways and to explore preventive strategies for neuropathological disorders.
Insights
Peripheral inflammation from viral infections impacts brain function, causing sickness behavior. Polyinosinic-polycytidylic acid (PIC) models reveal immune-to-brain communication, aiding understanding of neuropathological disorders and neuroprotection.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Peripheral inflammation, often from infections, significantly affects brain function.
- Viral challenges trigger systemic inflammatory responses that mirror in the brain.
Purpose of the Study:
- To review experimental models of cerebral effects from peripheral viral challenges.
- To explore the polyinosinic-polycytidylic acid (PIC) model for studying immune-to-brain communication.
- To understand the role of inflammation in neuropathological conditions and potential protective strategies.
Main Methods:
- Utilizing the polyinosinic-polycytidylic acid (PIC) model to induce an acute phase response.
- Analyzing the upregulation of inflammatory genes (cytokines, chemokines) in the brain.
- Examining behavioral changes associated with inflammation, termed sickness behavior.
Main Results:
- PIC challenge leads to a transient inflammatory response in the brain.
- This response modifies neuronal activity, resulting in sickness behavior.
- PIC models show comorbidity in Alzheimer's disease, prion disease, and seizures.
- Prenatal/perinatal PIC exposure is linked to neuropsychiatric disorders.
- Mild PIC challenge may offer neuroprotection in stroke models.
Conclusions:
- The PIC challenge paradigm is a valuable model for dissecting immune-to-brain communication pathways.
- Understanding these pathways can inform preventive strategies for neuropathological disorders.
- Peripheral inflammation's dual role in disease comorbidity and potential neuroprotection is highlighted.
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