Pediatric Cancer Imaging

Pediatric cancer imaging is the use of medical imaging methods to detect, characterize, stage, and monitor cancers in children, where accurate visualization must be balanced with developing anatomy and long-term safety. Depending on the clinical question, modalities such as ultrasound, magnetic resonance imaging (MRI), computed tomography (CT), and positron emission tomography (PET) generate anatomical or functional information through sound waves, magnetic fields and radiofrequency signals, x-rays, or radiotracers. These complementary approaches help identify tumors, assess spread, guide biopsy or treatment planning, and measure response over time, supporting earlier decisions while encouraging tailored protocols that limit unnecessary radiation exposure.

Pediatric Cancer Imaging - Related Videos

Research

JoVE Journal - Biology

Making MR Imaging Child's Play - Pediatric Neuroimaging Protocol, Guidelines and Procedure

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Cited by 139 •

2009

Despite an increase in the use of structural and functional magnetic resonance imaging (fMRI) in humans, the study of young pediatric populations remains a challenge. We present a hands-on, step-by-step video protocol including guidelines for clinicians and researchers intending to perform (f)MRI in young children.

Immunocytochemistry-Based Imaging for Visualizing Pediatric Glioma Cell Migration

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2025

Source: Pericoli, G. et. al., Live-3D-Cell Immunocytochemistry Assays of Pediatric Diffuse Midline Glioma. J. Vis. Exp. (2021)This video demonstrates live cell imaging to observe pediatric diffuse midline glioma cell migration using immunohistochemical labeling with anti-CD44 antibodies.

Co-culturing Glutamatergic Neurons and Pediatric High-Grade Glioma Cells

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2025

This video showcases a technique for co-culturing glutamatergic neurons and pediatric high-grade glioma (pHGG) cells within a microfluidic device. Human induced pluripotent stem cells are introduced into the microfluidic system and incubated to promote their differentiation into mature cortical glutamatergic neurons. Following this, the pHGG cells are introduced onto the mature neurons, establishing a co-culture and enabling interactions between neurons and pHGG cells.

Cerenkov Luminescence Imaging (CLI) for Cancer Therapy Monitoring

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Cited by 8 •

2012

Use of Cerenkov Luminescence Imaging (CLI) for monitoring preclinical cancer treatment is described here. This method takes advantage of Cerenkov Radiation (CR) and optical imaging (OI) to visualize radiolabeled probes and thus provides an alternative to PET in preclinical therapeutic monitoring and drug screening.

Research

JoVE Journal - Cancer Research
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Transplantation of Zebrafish Pediatric Brain Tumors into Immune-competent Hosts for Long-term Study of Tumor Cell Behavior and Drug Response

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Cited by 22 •

2017

The transplantation of cancer cells is an important tool for the identification of cancer mechanisms and therapeutic responses. Current techniques depend on immune-incompetent animals. Here, we describe a method to transplant zebrafish tumor cells into immune-competent embryos for the long-term analysis of tumor cell behavior and in vivo drug responses.

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