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.

Plos One
|June 6, 2014
PubMed

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.

Related Concept Videos