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Feridex preloading permits tracking of CNS-resident macrophages after transient middle cerebral artery occlusion
Erica C Henning1, Christl A Ruetzler, Martin R Gaudinski
1Section on Stroke Diagnostics and Therapeutics, Stroke Branch, National Institute of Neurological Disorders and Stroke, Building 10, Room B1D733, 10 Center henninge@ninds.nih.gov
Abstract:
At this time, the pathophysiology of macrophage involvement and their role in stroke progression are poorly understood. Recently, T2- and T2*-weighted magnetic resonance imaging (MRI), after intravenous administration of iron-oxide particles, have been used to understand the inflammatory cascade. Earlier studies report that image enhancement after stroke is from iron-laden macrophages; however, they do not account for potential blood-brain barrier disruption and nonspecific contrast enhancement. In this study, spontaneously hypertensive rats were preloaded with Feridex 7 days before stroke, permitting the labeling of bone-marrow-derived macrophages. Three-dimensional gradient-echo imaging showed average signal decreases of 13% to 23% in preloaded animals, concentrated on the lesion periphery and reaching a maximum on days 2 to 4 after stroke. Immunohistochemistry showed ED-2+, PB+, MHC-II+ and TNF-alpha+ perivascular macrophages (PVM), meningeal macrophages (MM), and choroid plexus macrophages (CPM). ED-1+ and IBA+ tissue macrophages and/or activated microglia were located throughout the lesion, but were PB-. These findings indicate the following: (1) Feridex preloading permits tracking of the central nervous system (CNS)-resident macrophages (PVM, MM, and CPM) and (2) CNS-resident macrophages likely play an integral role in the inflammatory cascade through antigen presentation and expression of proinflammatory cytokines. Further refinement of this method should permit noninvasive monitoring of inflammation and potential evaluation of antiinflammatory therapies in preclinical models of stroke.
Insights
Feridex MRI effectively tracks brain macrophages after stroke, revealing their role in inflammation. This method aids in understanding stroke progression and evaluating new anti-inflammatory treatments.
Area of Science:
- Neuroscience
- Immunology
- Radiology
Background:
- Macrophage involvement in stroke pathophysiology remains unclear.
- Magnetic resonance imaging (MRI) with iron-oxide particles is used to study inflammation.
- Previous studies on image enhancement after stroke lack specificity due to blood-brain barrier disruption.
Purpose of the Study:
- To investigate the role of macrophages in stroke progression using Feridex-enhanced MRI.
- To differentiate between CNS-resident and infiltrating macrophages post-stroke.
- To establish a method for noninvasive monitoring of neuroinflammation.
Main Methods:
- Spontaneously hypertensive rats were preloaded with Feridex 7 days before inducing stroke.
- Three-dimensional gradient-echo MRI was used to assess signal changes.
- Immunohistochemistry was performed to identify macrophage markers (ED-2, PB, MHC-II, TNF-alpha, ED-1, IBA).
Main Results:
- Feridex preloading enabled tracking of CNS-resident macrophages (PVM, MM, CPM).
- MRI showed signal decreases (13-23%) at the lesion periphery 2-4 days post-stroke.
- Immunohistochemistry confirmed CNS-resident macrophages expressed inflammatory markers (MHC-II, TNF-alpha), while infiltrating macrophages did not.
Conclusions:
- Feridex preloading is a viable method for tracking CNS-resident macrophages in stroke models.
- CNS-resident macrophages play a significant role in stroke-induced inflammation via antigen presentation and cytokine expression.
- This MRI technique offers potential for noninvasive monitoring of neuroinflammation and therapeutic evaluation in preclinical stroke studies.
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