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Updated: Jun 15, 2026

In Vivo 4-Dimensional Tracking of Hematopoietic Stem and Progenitor Cells in Adult Mouse Calvarial Bone Marrow
Published on: September 4, 2014
A biological global positioning system: considerations for tracking stem cell behaviors in the whole body
Shengwen Calvin Li1, Lisa May Ling Tachiki, Jane Luo
1Center for Neuroscience and Stem Cell Research, Children's Hospital of Orange County Research Institute, University of California Irvine, 455 South Main Street, Orange, CA 92868, USA. shengwel@uci.edu
Abstract:
Many recent research studies have proposed stem cell therapy as a treatment for cancer, spinal cord injuries, brain damage, cardiovascular disease, and other conditions. Some of these experimental therapies have been tested in small animals and, in rare cases, in humans. Medical researchers anticipate extensive clinical applications of stem cell therapy in the future. The lack of basic knowledge concerning basic stem cell biology-survival, migration, differentiation, integration in a real time manner when transplanted into damaged CNS remains an absolute bottleneck for attempt to design stem cell therapies for CNS diseases. A major challenge to the development of clinical applied stem cell therapy in medical practice remains the lack of efficient stem cell tracking methods. As a result, the fate of the vast majority of stem cells transplanted in the human central nervous system (CNS), particularly in the detrimental effects, remains unknown. The paucity of knowledge concerning basic stem cell biology--survival, migration, differentiation, integration in real-time when transplanted into damaged CNS remains a bottleneck in the attempt to design stem cell therapies for CNS diseases. Even though excellent histological techniques remain as the gold standard, no good in vivo techniques are currently available to assess the transplanted graft for migration, differentiation, or survival. To address these issues, herein we propose strategies to investigate the lineage fate determination of derived human embryonic stem cells (hESC) transplanted in vivo into the CNS. Here, we describe a comprehensive biological Global Positioning System (bGPS) to track transplanted stem cells. But, first, we review, four currently used standard methods for tracking stem cells in vivo: magnetic resonance imaging (MRI), bioluminescence imaging (BLI), positron emission tomography (PET) imaging and fluorescence imaging (FLI) with quantum dots. We summarize these modalities and propose criteria that can be employed to rank the practical usefulness for specific applications. Based on the results of this review, we argue that additional qualities are still needed to advance these modalities toward clinical applications. We then discuss an ideal procedure for labeling and tracking stem cells in vivo, finally, we present a novel imaging system based on our experiments.
Insights
Developing effective stem cell therapies requires better methods to track transplanted cells in the central nervous system (CNS). Current tracking techniques have limitations, hindering the understanding of stem cell survival and integration for CNS disease treatments.
Area of Science:
- Regenerative Medicine
- Neuroscience
- Biotechnology
Background:
- Stem cell therapy shows promise for various diseases, including CNS disorders.
- A critical barrier to clinical application is the lack of real-time methods to track transplanted stem cells' fate (survival, migration, differentiation) in vivo.
- Current histological methods are not suitable for in vivo assessment.
Purpose of the Study:
- To address the limitations in current stem cell tracking methods for central nervous system (CNS) applications.
- To propose strategies for investigating the lineage fate determination of transplanted human embryonic stem cells (hESC) in vivo.
- To introduce a comprehensive biological Global Positioning System (bGPS) for tracking transplanted stem cells.
Main Methods:
- Review of current in vivo stem cell tracking modalities: MRI, BLI, PET, and FLI with quantum dots.
- Evaluation of these methods based on criteria for practical usefulness in specific applications.
- Proposal of an ideal procedure for labeling and tracking stem cells in vivo.
Main Results:
- Existing methods like MRI, BLI, PET, and FLI have limitations for clinical stem cell tracking in the CNS.
- Additional qualities are needed to advance current tracking modalities toward clinical applications.
- A novel imaging system based on experimental data is presented.
Conclusions:
- Efficient stem cell tracking is crucial for advancing stem cell therapies for CNS diseases.
- Current in vivo tracking techniques require significant improvement for clinical translation.
- The proposed biological Global Positioning System (bGPS) and novel imaging system offer potential solutions for real-time stem cell monitoring.

