Source: Yasui, H., et al. Near Infrared Photoimmunotherapy for Mouse Models of Pleural Dissemination. J. Vis. Exp. (2021)
This video demonstrates a near-infrared photoimmunotherapy technique to treat lung cancer in an engineered mouse model exhibiting luciferase-expressing tumor cells. Upon injecting an antibody-photosensitizer conjugate (APC) that binds to specific antigens on the tumor cells, the mouse is exposed to near-infrared radiation, inducing photochemical changes in the APC and leading to necrotic death of the bound tumor cells. The effectiveness of the treatment is monitored by injecting luciferin, a luciferase substrate, and measuring the bioluminescence over time, correlating with tumor growth.
All procedures involving animal models have been reviewed by the local institutional animal care committee and the JoVE veterinary review board.
1. Conjugation of IR700 with mAb
2. Generation of a pleural dissemination model
3. Measurement of bioluminescence
NOTE: The software used for data acquisition is listed in the Table of Materials.
4. Diffuse luminescence imaging tomography (DLIT)
NOTE: The software used for data acquisition is listed in the Table of Materials.
5. NIR-PIT for in vivo pleural dissemination model
Figure 1: Easy hand-made device for cell transplantation. Attach the stopper made with polystyrene foam to the 30G needle so that the tip remains at 5 mm. The tip of the needle should be bent to avoid pneumothorax.
Figure 2: Injection of target cells into the thoracic cavity. Turn the mouse sideways and pierce the needle into the mouse toward the lung. Since the stopper and needle tip are bent, the needle enters the thoracic cavity without sticking to the lungs. Inject target cells while pressing the needle against the mouse.
Figure 3: Acquisition Control Panel. Select Luminescent, Photograph, and Overlay. Set Exposure Time as Auto, Binning as Small, f/stop as 1 for luminescent and, 8 for photograph, and Field of View as C. Once the mouse sample is ready for imaging, click Acquire for imaging acquisition.
Figure 4: Measurement (BLI). (A) Tool Palette panel. Select ROI Tools. We recommend the Circle to range the bioluminescent area on images. (B) BLI quantification. After selecting the ROI in each image, click Measure ROIs to analyze. (C) Quantification information. Use Configure Measurement on the left corner of the ROI measurements panel to select the values/information needed. Export this data table as a .csv file.
Figure 5: Acquisition of DLIT. (A) Acquisition Control Panel for DLIT. Select Luminescent, Photograph, CT, Standard-One Mouse, and Overlay. Other settings are the same as 3.4-3.6 (Figure 3). (B) Imaging Wizard panel. Select Bioluminescence and DLIT. (C) Select measurement wavelength. Select the wavelength as a firefly. (D) Set the Imaging Subject as Mouse, Exposure Parameters as Auto Settings, Field of View as C-13.4 cm, and Subject Height as 1.5 cm. Then, click the X-rays that will be produced when energized. Acquire.
Figure 6: Reconstruction of DLIT. (A) Tool Palette panel. Open Surface Topography on the Tool Palette. Select Show. (B) Adjusting mouse surface recognition. Adjust the Threshold as the purple display shows only the body surface. Select the subject Nude Mouse, then click the Generate Surface. Make sure that the outline of the mouse is accurately drawn. (C) Tool Palette. Open the DLIT 3D reconstruction Properties tab, select Tissue Properties as Mouse Tissue and Source Spectrum as Firefly. (D) Open the Analyze tab and choose the data for each wavelength data. (E) Click the Reconstruct button.
Figure 7: NIR irradiation. (A) Shield its belly with aluminum foil to prevent NIR irradiation to the belly. (B) Irradiate NIR light using a laser where BLI is strong; in some cases, the NIR laser is divided in multiple directions.
The authors have nothing to disclose.
0.25w/v% Trypsin-1mmol/l EDTA 4Na Solution with Phenol Red | Wako | 209-016941 | for cell culture |
1mL syringe | TERUMO | SS-01T | for mice experiment |
30G needle | Nipro | 1907613 | for mice experiment |
BALB/cSlc-nu/nu | Japan SLC | ||
Collidal Blue Staining Kit | Invitrogen | LC6025 | use for gel protein staining |
Coomassie (bradford) Plus protein assay | Thermo Fisher Scientific Inc (Waltham, MA, USA) | PI-23200 | for measuring the APC concentration |
Dimethyl sulfoxide (DMSO) | Wako | 043-07216 | use for conjugation of IR700 |
D-Luciferin (potassium salt) | Cayman Chemical | 14681 | for bioluminescence imaging and DLIT |
GraphPad Prism7 | GraphPad software | for statistical analysis | |
Image Studio | Li-Cor Biosciences | for analyzing 700 nm fluorescent image | |
IRDye 700DX Ester Infrared Dye | LI-COR Bioscience (Lincoln, NE, USA) | 929-70011 | |
Isoflurane | Wako | 095-06573 | for mice anesthesia |
IVIS Spectrum CT | PerkinElmer | for capturing bioluminescent image and DLIT | |
Living Image | PerkinElmer | for analyzing bioluminescent image and DLIT | |
Na2HPO4 | SIGMA-ALDRICH (St. Louis, MO, USA) | S9763 | use for conjugation of IR700 |
NIR Laser | Changchun New Industries Optoelectronics Technology | MRL-III-690R | for NIR irradiation |
Novex WedgeWell 4 to 20%, Tris-Glycine, 1.0 mm, Mini Protein Gel, 12 well | Invitrogen | XP04202BOX | use for SDS-PAGE |
NuPAGE LDS Sample Buffer (x4) | Invitrogen | NP0007 | use for SDS-PAGE |
Optical power meter | Thorlabs (Newton, NJ, USA) | PM100 | for measuring the output of the NIR laser |
PBS(-) | Wako | 166-23555 | |
Pearl Trilogy imaging system | Li-Cor Biosciences | for capturing 700 nm fluorecent image | |
Penicilin-Streptomycin Solution (x100) | Wako | 168-23191 | for cell culture |
Puromycin Dihydrochloride | ThermoFisher | A1113803 | for luciferase transfection |
RediFect Red-Fluc-Puromycin Lentiviral Prticles | PerkinElmer | CLS960002 | for luciferase transfection |
RPMI-1640 with L-glutamine and Phenol Red | Wako | 189-02025 | for cell culture |
Sephadex G25 column (PD-10) | GE Healthcare (Piscataway, NJ, USA) | 17-0851-01 | use for conjugation of IR700 |
UV-1900i | Shimadzu | for measuring the APC concentration |