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Ultrasound Imaging-guided Intracardiac Injection to Develop a Mouse Model of Breast Cancer Brain Metastases Followed by Longitudinal MRI
Published on: March 6, 2014
Cellular MRI Reveals Altered Brain Arrest of Genetically Engineered Metastatic Breast Cancer Cells
Katie M Parkins1,2, Amanda M Hamilton1, Veronica P Dubois1,2
1Robarts Research Institute, The University of Western Ontario, London, Ontario, Canada.
Purpose:
The combined use of anatomical magnetic resonance imaging (MRI), cellular MRI, and bioluminescence imaging (BLI) allows for sensitive and improved monitoring of brain metastasis in preclinical cancer models. By using these complementary technologies, we can acquire measurements of viable single cell arrest in the brain after systemic administration, the clearance and/or retention of these cells thereafter, the growth into overt tumours, and quantification of tumour volume and relative cancer cell viability over time. While BLI is very useful in measuring cell viability, some considerations have been reported using cells engineered with luciferase such as increased tumour volume variation, changes in pattern of metastatic disease, and inhibition of in vivo tumour growth.
Procedures:
Here, we apply cellular and anatomical MRI to evaluate in vivo growth differences between iron oxide labeled naïve (4T1BR5) and luciferase-expressing (4T1BR5-FLuc-GFP) murine brain-seeking breast cancer cells. Balb/C mice received an intracardiac injection of 20,000 cells and were imaged with MRI on days 0 and 14. Mice that received 4T1BR5-FLuc-GFP cells were also imaged with BLI on days 0 and 14.
Results:
The number of signal voids in the brain (representing iron-labeled cancer cells) on day 0 was significantly higher in mice receiving 4T1BR5 cells compared to mice receiving 4T1BR5-FLuc-GFP cells (p < 0.0001). Mice that received 4T1BR5 cells also had significantly higher total brain tumour burden and number of brain metastases than mice that received 4T1BR5-FLuc-GFP cells (p < 0.0001).
Conclusions:
By employing highly sensitive cellular MRI tools, we demonstrate that engineered cells did not form tumours as well as their naïve counterparts, which appear to primarily be due to a reduction in cell arrest. These results indicate that engineering cancer cells with reporter genes may alter their tropism towards particular organs and highlight another important consideration for research groups that use reporter gene imaging to track metastatic cancer cell fate in vivo.
Insights
Reporter gene engineering in cancer cells can impact their ability to form brain tumors. Naïve cancer cells show better tumor formation and metastasis than engineered cells, highlighting imaging considerations.
Area of Science:
- Oncology
- Medical Imaging
- Preclinical Cancer Research
Background:
- Monitoring brain metastasis in preclinical models is crucial for cancer research.
- Combined anatomical MRI, cellular MRI, and BLI offer sensitive monitoring capabilities.
- Reporter gene expression in cancer cells can influence tumor growth and metastasis.
Purpose of the Study:
- To evaluate in vivo growth differences between iron oxide-labeled naïve and luciferase-expressing murine breast cancer cells.
- To assess the impact of reporter gene engineering on cancer cell tropism and tumor formation in the brain.
- To compare the efficacy of cellular MRI and BLI in tracking metastatic cancer cell fate.
Main Methods:
- Utilized cellular and anatomical MRI to track iron oxide-labeled 4T1BR5 (naïve) and 4T1BR5-FLuc-GFP (engineered) murine breast cancer cells in Balb/C mice.
- Administered 20,000 cells via intracardiac injection.
- Performed MRI on days 0 and 14; BLI was performed on days 0 and 14 for engineered cells.
Main Results:
- Significantly higher number of signal voids (iron-labeled cells) in the brain on day 0 for naïve 4T1BR5 cells compared to engineered cells (p < 0.0001).
- Naïve 4T1BR5 cells exhibited significantly higher total brain tumor burden and number of brain metastases (p < 0.0001).
- Engineered cells showed reduced tumor formation, primarily due to decreased cell arrest in the brain.
Conclusions:
- Reporter gene engineering in cancer cells can alter their organ tropism and reduce tumor-forming capabilities.
- Cellular MRI is a sensitive tool for evaluating in vivo cancer cell behavior and metastasis.
- Researchers using reporter gene imaging must consider potential alterations in cancer cell fate and tumor growth.
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