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Registered Bioimaging of Nanomaterials for Diagnostic and Therapeutic Monitoring
Published on: December 9, 2010
Characterization of a novel MR-detectable nanoantioxidant that mitigates the recall immune response
Taeko Inoue1, Deric M Griffin2, Redwan Huq1
1Department of Molecular Physiology & Biophysics, Baylor College of Medicine, Houston, TX, USA.
Abstract:
In many human diseases, the presence of inflammation is associated with an increase in the level of reactive oxygen species (ROS). The resulting state of oxidative stress is highly detrimental and can initiate a cascade of events that ultimately lead to cell death. Thus, many therapeutic attempts have been focused on either modulating the immune system to lower inflammation or reducing the damaging caused by ROS. Berlin et al. reported the development of a novel nanoantioxidant known as poly(ethylene glycol)-functionalized-hydrophilic carbon clusters (PEG-HCCs). They showed that PEG-HCCs could be targeted to cancer cells, utilized as a drug delivery vector, and can even be visualized ex vivo. Our work here furthers this work and characterizes Gd-DTPA conjugated PEG-HCCs and explores the potential for in vivo tracking of T cells in live mice. We utilized a mouse model of delayed-type hypersensitivity (DTH) to assess the immunomodulatory effects of PEG-HCCs. The T1 -agent Gd-DTPA was then conjugated to the PEG-HCCs and T1 measurements, and T1 -weighted MRI of the modified PEG-HCCs was done to assess their relaxivity. We then assessed if PEG-HCCs could be visualized both ex vivo and in vivo within the mouse lymph node and spleen. Mice treated with PEG-HCCs showed significant improvements in the DTH assay as compared to the vehicle (saline)-treated control. Flow cytometry demonstrated that splenic T cells are capable of internalizing PEG-HCCs whereas fluorescent immunohistochemistry showed that PEG-HCCs are detectable within the cortex of lymph nodes. Finally, our nanoantioxidants can be visualized in vivo within the lymph nodes and spleen of a mouse after addition of the Gd-DTPA. PEG-HCCs are internalized by T cells in the spleen and can reduce inflammation by suppression of a recall immune response. PEG-HCCs can be modified to allow for both in vitro and in vivo visualization using MRI. © 2016 The Authors. NMR in Biomedicine published by John Wiley & Sons Ltd.
Insights
Novel nanoantioxidants, poly(ethylene glycol)-functionalized-hydrophilic carbon clusters (PEG-HCCs), reduce inflammation and can be tracked in vivo using MRI. These nanoantioxidants are internalized by T cells, offering potential for immune response modulation and disease treatment.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Immunology
- Medical Imaging
Background:
- Inflammation and oxidative stress are implicated in numerous human diseases.
- Existing therapies aim to modulate immune responses or reduce reactive oxygen species (ROS) damage.
- Poly(ethylene glycol)-functionalized-hydrophilic carbon clusters (PEG-HCCs) are novel nanoantioxidants with potential for targeted drug delivery and imaging.
Purpose of the Study:
- To characterize Gadolinium-DTPA (Gd-DTPA) conjugated PEG-HCCs.
- To explore the in vivo tracking of T cells using modified PEG-HCCs.
- To assess the immunomodulatory effects of PEG-HCCs in a mouse model.
Main Methods:
- Development and characterization of Gd-DTPA conjugated PEG-HCCs.
- Assessment of immunomodulatory effects using a delayed-type hypersensitivity (DTH) mouse model.
- Evaluation of T cell internalization and visualization ex vivo (flow cytometry, immunohistochemistry) and in vivo (MRI).
Main Results:
- PEG-HCC treated mice showed significant improvement in the DTH assay compared to controls.
- Splenic T cells internalized PEG-HCCs, and the nanoantioxidants were detectable in lymph nodes.
- Gd-DTPA conjugated PEG-HCCs were successfully visualized in vivo within the spleen and lymph nodes using MRI.
Conclusions:
- PEG-HCCs can be internalized by T cells and suppress inflammatory recall immune responses.
- Modification with Gd-DTPA enables in vitro and in vivo visualization of PEG-HCCs via MRI.
- These findings highlight the potential of PEG-HCCs as theranostic agents for immune-related diseases.
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