scholarly journals The Effects of Peripheral Inflammation on the Brain—A Neuroimaging Perspective

2022 ◽  
Vol 30 (1) ◽  
pp. 54-58 ◽  
Author(s):  
Caitlin E. Millett ◽  
Katherine E. Burdick ◽  
Marek R. Kubicki
2014 ◽  
Vol 11 (1) ◽  
pp. 73 ◽  
Author(s):  
Carolyn A Thomson ◽  
Alison McColl ◽  
Jonathan Cavanagh ◽  
Gerard J Graham

Author(s):  
Patrick Süß ◽  
Alana Hoffmann ◽  
Tobias Rothe ◽  
Wolfgang Baum ◽  
Ori Staszewski ◽  
...  

2014 ◽  
Vol 275 (1-2) ◽  
pp. 163 ◽  
Author(s):  
Alison McColl ◽  
Carolyn Thomson ◽  
Gerard Graham ◽  
Jonathan Cavanagh

2020 ◽  
Author(s):  
Federico E. Turkheimer ◽  
Noha Althubaity ◽  
Julia Schubert ◽  
Maria A. Nettis ◽  
Oliver Cousins ◽  
...  

ABSTRACTThe relationship between peripheral and central immunity and how these ultimately may cause depressed behaviour has been the focus of a number of imaging studies conducted with Positron Emission Tomography (PET). These studies aimed at testing the immune-mediated model of depression that proposes a direct effect of peripheral cytokines and immune cells on the brain to elicit a neuroinflammatory response via a leaky blood-brain barrier and ultimately depressive behaviour. However, studies conducted so far using PET radioligands targeting the neuroinflammatory marker 18 kDa translocator protein (TSPO) in patient cohorts with depression have demonstrated mild inflammatory brain status but no correlation between central and peripheral immunity.To gain a better insight into the relationship between heightened peripheral immunity and neuroinflammation, we estimated blood-to-brain and blood-to-CSF perfusion rates for two TSPO radiotracers collected in two separate studies, one large cross-sectional study of neuroinflammation in normal and depressed cohorts and a second study where peripheral inflammation in healthy controls was induced via subcutaneous injection of interferon (IFN)-α. In both studies we observed a consistent negative association between peripheral inflammation, measured with c-reactive protein P (CRP), and radiotracer perfusion into and from the brain parenchyma and CSF. Importantly, there was no association of this effect with the marker of BBB leakage S100β, that was unchanged, but there was an association between the reduction of tracer perfusion in volunteers injected with interferon (IFN)-α and VEGF, a potent vascular permeability factor.These results support a different model of peripheral-to-central immunity interaction whereas peripheral inflammation causes a “stiffening” of the healthy BBB with consequent reduction of small molecule trafficking to and from the blood into the brain and CSF. This effect, on the long term, is likely to disrupt brain homeostasis and induce depressive behavioural symptoms. Moreover, given the molecular similarity between the TSPO ligands and antidepressant, this phenomenon may underlie treatment resistance in depressive cohorts with heightened peripheral status.


2011 ◽  
Vol 2011 ◽  
pp. 1-9 ◽  
Author(s):  
Carina C. Ferrari ◽  
Rodolfo Tarelli

Peripheral inflammation triggers exacerbation in the central brain's ongoing damage in several neurodegenerative diseases. Systemic inflammatory stimulus induce a general response known as sickness behaviour, indicating that a peripheral stimulus can induce the synthesis of cytokines in the brain. In Parkinson's disease (PD), inflammation was mainly associated with microglia activation that can underlie the neurodegeneration of neurons in thesubstantia nigra(SN). Peripheral inflammation can transform the “primed” microglia into an “active” state, which can trigger stronger responses dealing with neurodegenerative processes. Numerous evidences show that systemic inflammatory processes exacerbate ongoing neurodegeneration in PD patient and animal models. Anti-inflammatory treatment in PD patients exerts a neuroprotective effect. In the present paper, we analyse the effect of peripheral infections in the etiology and progression in PD patients and animal models, suggesting that these peripheral immune challenges can exacerbate the symptoms in the disease.


2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Marie Katrin Bondulich ◽  
Yilan Fan ◽  
Yeojin Song ◽  
Flaviano Giorgini ◽  
Gillian P. Bates

AbstractKynurenine 3-monooxygenase (KMO) regulates the levels of neuroactive metabolites in the kynurenine pathway (KP), dysregulation of which is associated with Huntington’s disease (HD) pathogenesis. KMO inhibition leads to increased levels of neuroprotective relative to neurotoxic metabolites, and has been found to ameliorate disease-relevant phenotypes in several HD models. Here, we crossed KMO knockout mice to R6/2 HD mice to examine the effect of KMO depletion in the brain and periphery. KP genes were dysregulated in peripheral tissues from R6/2 mice and KMO ablation normalised levels of a subset of these. KP metabolites were also assessed, and KMO depletion led to increased levels of neuroprotective kynurenic acid in brain and periphery, and dramatically reduced neurotoxic 3-hydroxykunurenine levels in striatum and cortex. Notably, the increased levels of pro-inflammatory cytokines TNFa, IL1β, IL4 and IL6 found in R6/2 plasma were normalised upon KMO deletion. Despite these improvements in KP dysregulation and peripheral inflammation, KMO ablation had no effect upon several behavioural phenotypes. Therefore, although genetic inhibition of KMO in R6/2 mice modulates several metabolic and inflammatory parameters, these do not translate to improvements in primary disease indicators—observations which will likely be relevant for other interventions targeted at peripheral inflammation in HD.


2021 ◽  
Author(s):  
◽  
Ivan Maximiliano Kur

Cellular communication is a concept that can be explained as the transfer of signals or material (such as cytokines, ions, small molecules) between cells from the same or different type, across either short or long distances. Once this signal or material is received, it will, as a rule, promote a functional effect. Several routes, involved in this transfer, are well described and are of global importance for organ/tissue communication in an organism. The brain interacts dynamically with the immune system, and the main route known to mediate this communication, is via the release of cytokines (by peripheral blood cells), which can then activate certain brain cell types, such as microglia, directly, or activate the vagus nerve transferring signals to neuronal populations in the brain. The communication between these two systems plays a key role in the pathophysiology of neurodegenerative diseases, and the mechanisms involved in this interaction are of central importance for understanding disease initiation and progression and search for therapeutic models. The Momma lab previously addressed the mechanisms of interaction between the peripheral immune system and the brain by investigating cellular fusion of haematopoietic cells with neurons after inflammation. They addressed the question of whether this phenomenon also occurs under non-invasive conditions. To approach this problem, a genetic tracing model that relies on the Cre-Lox recombination system was used. Transgenic mice expressing Cre recombinase specifically in the haematopoietic lineage were crossed into a Cre-reporter background, thus all haematopoietic cells irreversibly express the reporter marker-gene EYFP. Using this model, EYFP was detected in non-haematopoietic tissues, suggesting the existence of a communication mechanism never described before. As cells containing two nuclei were never detected, fusion as a mechanism was excluded, suggesting that Cre reaches non-haematopoietic cells via a different signalling pathway. The Momma lab investigated whether the transfer of material through extracellular vesicles (EVs) could be behind this periphery-to-brain communication. Using the genetic mouse model, they were able to trace the transfer of Cre RNA via EVs between cells in vivo, generating the first in vivo evidence of functional RNA transfer by EVs between blood and brain. The last decade has witnessed a rapid expansion of the field of EVs. Initially considered as waste disposal material, recent evidence has challenged this view. EVs are currently considered as a widespread intercellular communication system that can transport and transfer all types of biomolecules, from nucleic acids to lipids and proteins. However, several important questions are still under investigation. One of them is whether EVs are involved in brain pathophysiology, as inflammation plays an important role in onset and progression of neurodegenerative diseases and is well described in Parkinson Disease (PD). Based on preliminary data in a mouse, peripherally injected with a low dose of Lipopolysaccharide (LPS, an endotoxin found in the outer-membrane of Gram-negative bacteria, which causes an immune response), neurons and other cell population in the brain take up EVs from the periphery. Particularly, dopaminergic neurons from Substantia Nigra and Ventral Tegmental Area have been shown to receive functional RNA, transported through EVs, which can lead up to 20% of recombination. Furthermore, different neuronal populations from Hippocampus, Cortex and Cerebellum exhibit recombination, indicating a widespread signalling from blood to the brain. Therefore, the goal of my PhD thesis was to investigate the mechanisms of this transfer and the triggers that lead to EV uptake by neural cells in vivo both in pathological and physiological conditions. In this project, the extent and function of EV-mediated signalling from blood to brain is explored in the context of peripheral inflammation and neurodegenerative diseases. Firstly, EVs isolated from WT mice were further characterized using size-exclusion chromatography (SEC), Western Blot (WB) and electron microscopy in order to extend the knowledge from previous work done in the Momma lab. Secondly, to expand on the biological relevance of the fact that inflammation is correlated with an increase in EV uptake, different approaches using the genetic murine tracing model were used. Recombination events from haematopoietic cells to the brain have been followed after peripheral injection of LPS. Peripheral inflammation caused by LPS injection led to widespread recombination events in the brain, specifically in microglia and neurons, including dopaminergic (DA) neurons. In contrast, astrocytes, oligodendrocytes and endothelial cells were never or very rarely recombined. Additionally, peripheral LPS injection in a murine model, where Cre is expressed only in erythrocytes, led to recombination events only in microglia, suggesting that the type of EV-secreting cell plays a role in the targeting of EVs to a specific cell population.


2020 ◽  
Author(s):  
Xiang Ke Chen ◽  
Joseph Shiu-Kwong Kwan ◽  
Gordon Tin-Chun Wong ◽  
Kazi Md. Mahmudul H ◽  
Zhen-Ni Yi ◽  
...  

Abstract Background: Infiltration of macrophages into the central nervous system (CNS) is involved in many neurological disorders, such as Alzheimer’s disease (AD), amyotrophic lateral sclerosis (ALS) and autism. Despite extensive studies into neuroinflammation associated macrophage infiltration into the CNS, its underlying mechanisms and pathological roles remain unclear, especially when triggered by peripheral inflammation. Methods: To further elucidate the role and mechanism of peripheral inflammation in neurological disorders, we exploited interleukin 1 beta (il1b) mutant transgenic zebrafish (Danio rerio) with fluorescent protein expression restricted to macrophages to track the macrophage migration under peripheral inflammation following tail amputation.Results: We found that macrophage infiltration into the brain of zebrafish embryo following peripheral tissue injury can be alleviated via genetically targeting il1b. In addition, through circulation-independent migration, macrophages infiltrate brains with evidence of increased apoptosis. We further identified the expression of camk2g1 in the brains of zebrafish with hyperactive behavior following peripheral tissue injury. This il1b-regulated protein is associated with neuropsychiatry disorders. Conclusion: These findings demonstrated that peripheral tissue injury induces il1b-mediated macrophage infiltration into the brain and a hyperactive behavior.


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