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Intravital Microscopy of Tumor-associated Vasculature Using Advanced Dorsal Skinfold Window Chambers on Transgenic Fluorescent Mice
Published on: January 19, 2018
Tomographic fluorescence imaging of tumor vascular volume in mice
Xavier Montet1, Jose-Luiz Figueiredo, Herlen Alencar
1Center for Molecular Imaging Research, Massachusetts General Hospital and Harvard Medical School, Building 149, 13th St, Room 5403, Charlestown, MA 02129, USA.
Purpose:
To prospectively determine the feasibility of imaging vascular volume fraction (VVF) and its therapeutic inhibition in mouse models of cancer with three-dimensional fluorescence molecular tomography (FMT).
Materials And Methods:
All studies were approved by the institutional animal review committee and were in accordance with National Institutes of Health guidelines. CT26 colon tumor-bearing mice were imaged with FMT after intravenous administration of long-circulating near-infrared fluorescent blood-pool agents optimized for two nonoverlapping excitation wavelengths (680 and 750 nm). A total of 58 mice were used for imaging VVF to evaluate the following: (a) differences in ectopically and orthotopically implanted tumors (n = 10), (b) cohorts of mice (n = 24) treated with anti-vascular endothelial growth factor (VEGF) antibody, (c) serial imaging in same animal to determine natural course of angiogenesis (n = 4), and (d) dose response to anti-VEGF therapy (n = 20). To compare groups receiving antiangiogenic chemotherapy, analysis of variance was used.
Results:
Fluorochrome concentrations derived from FMT measurements were reconstructed with an accuracy of +/-10% at 680 nm and +/-7% at 750 nm and in a depth-independent manner, unlike at reflectance imaging. FMT measurements of vascular fluorescent probes were linear, with concentration over several orders of magnitude (r > 0.98). VVFs of colonic tumors, which varied considerably among animals (3.5% +/- 1.5 [standard deviation]), could be depicted with in vivo imaging in three dimensions with less than 5 minutes of imaging and less than 3 minutes of analysis. The natural course of angiogenesis and its inhibition could be reliably imaged and depicted serially in different experimental setups.
Conclusion:
FMT is a tomographic optical imaging technique that, in conjunction with appropriate fluorescent probes, allows quantitative visualization of biologic processes.
Insights
Three-dimensional fluorescence molecular tomography (FMT) enables accurate, in vivo imaging of vascular volume fraction (VVF) in mouse cancer models. This technique reliably visualizes angiogenesis and its inhibition by anti-vascular endothelial growth factor (VEGF) therapy.
Area of Science:
- Biomedical Imaging
- Optical Tomography
- Cancer Research
Background:
- Vascular volume fraction (VVF) is a key indicator of tumor angiogenesis.
- Accurate and quantitative imaging of VVF is crucial for evaluating anti-cancer therapies.
- Existing imaging techniques have limitations in speed and quantitative accuracy.
Purpose of the Study:
- To assess the feasibility of using three-dimensional fluorescence molecular tomography (FMT) for imaging VVF.
- To evaluate the therapeutic inhibition of VVF in preclinical cancer models.
- To validate FMT's accuracy and speed for in vivo VVF measurements.
Main Methods:
- CT26 colon tumor-bearing mice were imaged using FMT with near-infrared fluorescent blood-pool agents.
- VVF was measured in various tumor models, including those treated with anti-VEGF antibodies.
- Serial imaging was performed to monitor angiogenesis and response to therapy.
Main Results:
- FMT accurately reconstructed fluorochrome concentrations with high precision (±10% at 680 nm, ±7% at 750 nm).
- FMT measurements of VVF were linear and quantitative over several orders of magnitude (r > 0.98).
- In vivo 3D imaging of VVF in colonic tumors was achieved in under 5 minutes, with analysis in under 3 minutes.
Conclusions:
- Three-dimensional fluorescence molecular tomography (FMT) is a feasible and accurate technique for quantitative VVF imaging.
- FMT enables reliable visualization of tumor angiogenesis and its modulation by anti-angiogenic therapies.
- FMT offers a rapid and precise method for evaluating biologic processes in vivo.
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