Literature DB >> 21594541

Labeling human embryonic stem-cell-derived cardiomyocytes for tracking with MR imaging.

Rosalinda T Castaneda1, Sophie Boddington, Tobias D Henning, Mike Wendland, Lydia Mandrussow, Siyuan Liu, Heike Daldrup-Link.   

Abstract

BACKGROUND: Human embryonic stem cells (hESC) can generate cardiomyocytes (CM), which offer promising treatments for cardiomyopathies in children. However, challenges for clinical translation result from loss of transplanted cell from target sites and high cell death. An imaging technique that noninvasively and repetitively monitors transplanted hESC-CM could guide improvements in transplantation techniques and advance therapies.
OBJECTIVE: To develop a clinically applicable labeling technique for hESC-CM with FDA-approved superparamagnetic iron oxide nanoparticles (SPIO) by examining labeling before and after CM differentiation.
MATERIALS AND METHODS: Triplicates of hESC were labeled by simple incubation with 50 μg/ml of ferumoxides before or after differentiation into CM, then imaged on a 7T MR scanner using a T2-weighted multi-echo spin-echo sequence. Viability, iron uptake and T2-relaxation times were compared between groups using t-tests.
RESULTS: hESC-CM labeled before differentiation demonstrated significant MR effects, iron uptake and preserved function. hESC-CM labeled after differentiation showed no significant iron uptake or change in MR signal (P < 0.05). Morphology, differentiation and viability were consistent between experimental groups.
CONCLUSION: hESC-CM should be labeled prior to CM differentiation to achieve a significant MR signal. This technique permits monitoring delivery and engraftment of hESC-CM for potential advancements of stem cell-based therapies in the reconstitution of damaged myocardium.

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Year:  2011        PMID: 21594541     DOI: 10.1007/s00247-011-2130-3

Source DB:  PubMed          Journal:  Pediatr Radiol        ISSN: 0301-0449


  64 in total

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6.  Cardiomyocytes differentiated in vitro from embryonic stem cells developmentally express cardiac-specific genes and ionic currents.

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7.  Embryonic stem cell therapy of heart failure in genetic cardiomyopathy.

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Review 9.  In vivo MRI cell tracking: clinical studies.

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