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Updated: Jan 20, 2026

An In Vivo Duo-color Method for Imaging Vascular Dynamics Following Contusive Spinal Cord Injury
Published on: December 31, 2017
Imaging the dynamic interactions between immune cells and the neurovascular interface in the spinal cord
Nozha Borjini1, Evi Paouri1, Reshmi Tognatta2
1Department of Neurosciences, Lerner Research Institute, Cleveland Clinic, Cleveland, OH, USA.
Insights
In vivo imaging reveals dynamic interactions between immune cells, glia, neurons, and vasculature in the central nervous system (CNS). This technology aids in understanding neuroinflammation and developing therapies for CNS disorders.
Area of Science:
- Neuroscience
- Immunology
- Vascular Biology
Background:
- In vivo imaging in living rodents has transformed the study of central nervous system (CNS) physiology and pathology.
- Advancements in microscopy enable longitudinal tracking of cellular changes in the brain and spinal cord.
- Novel methods provide stable optical access to the spinal cord with minimal tissue disruption.
Purpose of the Study:
- To review in vivo imaging studies focusing on the interactions between the vasculature and immune cells (including microglia) in the CNS.
- To highlight the role of these interactions in neuroinflammation and neurological diseases.
- To discuss the application of imaging in understanding spinal cord injury and identifying therapeutic targets.
Main Methods:
- Utilizing two-photon microscopy for in vivo imaging in rodent models.
- Longitudinal tracking of cellular dynamics and structural/functional changes.
- Real-time imaging of blood-brain barrier permeability and immune cell trafficking.
Main Results:
- Imaging studies have elucidated interactions between vasculature, immune cells, and neurons in the CNS.
- These interactions are critical in regulating neuroinflammation and neurological disease onset/progression.
- Real-time imaging revealed novel cellular mechanisms and molecular pathways in CNS injury and disease.
Conclusions:
- In vivo imaging is a powerful tool for studying CNS disorders, particularly neuroinflammation and spinal cord injury.
- Understanding cell-cell interactions involving the vasculature offers new therapeutic targets for CNS protection and repair.
- Real-time imaging facilitates testing therapeutic efficacy and identifying novel treatment strategies.
Abstract:
Imaging the dynamic interactions between immune cells, glia, neurons and the vasculature in living rodents has revolutionized our understanding of physiological and pathological mechanisms of the CNS. Emerging microscopy and imaging technologies have enabled longitudinal tracking of structural and functional changes in a plethora of different cell types in the brain. The development of novel methods also allowed stable and longitudinal optical access to the spinal cord with minimum tissue perturbation. These important advances facilitated the application of in vivo imaging using two-photon microscopy for studies of the healthy, diseased, or injured spinal cord. Indeed, decoding the interactions between peripheral and resident cells with the spinal cord vasculature has shed new light on neuroimmune and vascular mechanisms regulating the onset and progression of neurological diseases. This review focuses on imaging studies of the interactions between the vasculature and peripheral immune cells or microglia, with emphasis on their contribution to neuroinflammation. We also discuss in vivo imaging studies highlighting the importance of neurovascular changes following spinal cord injury. Real-time imaging of blood-brain barrier (BBB) permeability and other vascular changes, perivascular glial responses, and immune cell entry has revealed unanticipated cellular mechanisms and novel molecular pathways that can be targeted to protect the injured or diseased CNS. Imaging the cell-cell interactions between the vasculature, immune cells, and neurons as they occur in real time, is a powerful tool both for testing the efficacy of existing therapeutic approaches, and for identifying new targets for limiting damage or enhancing the potential for repair of the affected spinal cord tissue.
Related Concept Videos
09:25An In Vivo Duo-color Method for Imaging Vascular Dynamics Following Contusive Spinal Cord Injury
10:44Two-photon Imaging of Cellular Dynamics in the Mouse Spinal Cord
08:57Acute and Chronic Tactile Sensory Testing after Spinal Cord Injury in Rats
10:24In vivo Imaging of the Mouse Spinal Cord Using Two-photon Microscopy
08:00Quantitative Assessment of Immune Cells in the Injured Spinal Cord Tissue by Flow Cytometry: a Novel Use for a Cell Purification Method
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