Related Experiment Video
Updated: Apr 28, 2026

Establishing Intracranial Brain Tumor Xenografts With Subsequent Analysis of Tumor Growth and Response to Therapy using Bioluminescence Imaging
Published on: July 13, 2010
Multimodality imaging methods for assessing retinoblastoma orthotopic xenograft growth and development
Timothy W Corson1, Brian C Samuels2, Andrea A Wenzel3
1Eugene and Marilyn Glick Eye Institute, Department of Ophthalmology, Indiana University School of Medicine, Indianapolis, Indiana, United States of America; Department of Biochemistry and Molecular Biology, Indiana University School of Medicine, Indianapolis, Indiana, United States of America; Department of Pharmacology and Toxicology, Indiana University School of Medicine, Indianapolis, Indiana, United States of America; Indiana University Melvin and Bren Simon Cancer Center, Indianapolis, Indiana, United States of America.
Abstract:
Genomic studies of the pediatric ocular tumor retinoblastoma are paving the way for development of targeted therapies. Robust model systems such as orthotopic xenografts are necessary for testing such therapeutics. One system involves bioluminescence imaging of luciferase-expressing human retinoblastoma cells injected into the vitreous of newborn rat eyes. Although used for several drug studies, the spatial and temporal development of tumors in this model has not been documented. Here, we present a new model to allow analysis of average luciferin flux ([Formula: see text]) through the tumor, a more biologically relevant parameter than peak bioluminescence as traditionally measured. Moreover, we monitored the spatial development of xenografts in the living eye. We engineered Y79 retinoblastoma cells to express a lentivirally-delivered enhanced green fluorescent protein-luciferase fusion protein. In intravitreal xenografts, we assayed bioluminescence and computed [Formula: see text], as well as documented tumor growth by intraocular optical coherence tomography (OCT), brightfield, and fluorescence imaging. In vivo bioluminescence, ex vivo tumor size, and ex vivo fluorescent signal were all highly correlated in orthotopic xenografts. By OCT, xenografts were dense and highly vascularized, with well-defined edges. Small tumors preferentially sat atop the optic nerve head; this morphology was confirmed on histological examination. In vivo, [Formula: see text] in xenografts showed a plateau effect as tumors became bounded by the dimensions of the eye. The combination of [Formula: see text] modeling and in vivo intraocular imaging allows both quantitative and high-resolution, non-invasive spatial analysis of this retinoblastoma model. This technique will be applied to other cell lines and experimental therapeutic trials in the future.
Insights
This study introduces a new model for retinoblastoma research using bioluminescence imaging and optical coherence tomography (OCT) to track tumor growth. The new model provides a more biologically relevant measure of tumor activity and spatial development in vivo.
Area of Science:
- Ophthalmology
- Oncology
- Biomedical Engineering
Background:
- Genomic studies are advancing targeted therapies for retinoblastoma, a pediatric ocular tumor.
- Robust model systems are crucial for testing these novel therapeutics.
- Current models lack detailed spatial and temporal documentation of tumor development.
Purpose of the Study:
- To develop and validate a new model for analyzing retinoblastoma xenografts in vivo.
- To establish a more biologically relevant measure of tumor activity using average luciferin flux.
- To non-invasively monitor the spatial and temporal development of retinoblastoma xenografts.
Main Methods:
- Engineered Y79 retinoblastoma cells to express an enhanced green fluorescent protein-luciferase fusion protein.
- Injected engineered cells into the vitreous of newborn rat eyes to create orthotopic xenografts.
- Assayed bioluminescence, computed average luciferin flux, and monitored tumor growth using intraocular optical coherence tomography (OCT), brightfield, and fluorescence imaging.
Main Results:
- In vivo bioluminescence, ex vivo tumor size, and ex vivo fluorescent signal were highly correlated.
- OCT revealed xenografts as dense, vascularized structures with well-defined edges, often situated atop the optic nerve head.
- Average luciferin flux demonstrated a plateau effect as tumors reached the confines of the eye.
Conclusions:
- The combination of average luciferin flux modeling and in vivo intraocular imaging provides quantitative, high-resolution, non-invasive spatial analysis of retinoblastoma xenografts.
- This validated model system offers a significant advancement for studying retinoblastoma progression and therapeutic responses.
- The developed technique is applicable to other cell lines and future experimental therapeutic trials.
More Related Videos
06:46Ortho- and Ectopic Zebrafish Xeno-Engraftment of Ocular Melanoma to Recapitulate Primary Tumor and Experimental Metastasis Development
Published on: September 4, 2021
05:32Multimodal Bioluminescent and Positronic-emission Tomography/Computational Tomography Imaging of Multiple Myeloma Bone Marrow Xenografts in NOG Mice
Published on: January 7, 2019