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优化磁声促渗用于干细胞标记。

Optimization of magnetosonoporation for stem cell labeling.

机构信息

Image-Guided Bio-Molecular Interventions Section, Department of Radiology, University of Washington School of Medicine, Seattle, WA 98195, USA.

出版信息

NMR Biomed. 2010 Jun;23(5):480-4. doi: 10.1002/nbm.1485.


DOI:10.1002/nbm.1485
PMID:20213856
Abstract

Recent advances in magnetic cell labeling have taken place with the development of a magnetosonoporation (MSP) technique. The aim of this study was to optimize the MSP protocol in order to achieve high cell viability and intracellular uptake of MR contrast agents. First, we determined the sub-optimal MSP parameters by evaluating the viabilities of C17.2 neural stem cells without Feridex using various MSP intensities ranging from 0.1 to 1 w/cm(2), duty cycles at 20%, 50% or 100%, and exposure times from 1-15 min. The sub-optimized MSP parameters with cell viabilities greater than 90% were further optimized by evaluating both cell viability and intracellular iron uptake when Feridex was used. We then used the optimized MSP parameters to determinate the optimal concentration of Feridex for magnetic cell labeling. Subsequently, we validated the feasibility of using MRI to track the migration of neural stem cells from the transplanted sites to glioma masses in four mouse brains when the cells had been labeled with Feridex using the optimized MSP protocol. The MRI findings were confirmed by histological correlations. In vitro experiments demonstrated that the optimal MSP protocol was achieved at 20% duty cycle, 0.3 w/cm(2) ultrasound intensity, 5-min exposure time and 1 mg/mL Feridex. This study demonstrated that the optimized MSP cell labeling technique can achieve both high cell viability and intracellular uptake of MR contrast agents, and has the potential to be a useful cell labeling technique to facilitate future clinical translation of MRI-integrated cell therapy.

摘要

近年来,随着磁声处理(MSP)技术的发展,磁细胞标记技术取得了新的进展。本研究旨在优化 MSP 方案,以实现高细胞活力和细胞内磁共振对比剂的摄取。首先,我们通过评估不同 MSP 强度(0.1-1 w/cm(2))、占空比(20%、50%或 100%)和暴露时间(1-15 min)下无 Feridex 的 C17.2 神经干细胞的活力,确定了次优的 MSP 参数。对于细胞活力大于 90%的次优 MSP 参数,我们进一步通过评估 Feridex 存在时细胞活力和细胞内铁摄取来优化。然后,我们使用优化的 MSP 参数确定用于磁细胞标记的 Feridex 最佳浓度。随后,我们使用优化的 MSP 方案通过 MRI 验证了使用 Feridex 标记的神经干细胞从移植部位迁移到胶质瘤中的可行性,在 4 只小鼠脑中进行了实验。MRI 结果通过组织学相关性得到了证实。体外实验表明,在 20%占空比、0.3 w/cm(2)超声强度、5 分钟暴露时间和 1 mg/mL Feridex 的条件下可以达到最佳 MSP 方案。本研究表明,优化的 MSP 细胞标记技术可以实现高细胞活力和细胞内磁共振对比剂的摄取,并且有可能成为一种有用的细胞标记技术,以促进未来 MRI 整合细胞治疗的临床转化。

相似文献

[1]
Optimization of magnetosonoporation for stem cell labeling.

NMR Biomed. 2010-6

[2]
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[3]
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[4]
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[5]
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[6]
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[8]
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[9]
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[10]
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引用本文的文献

[1]
Cellular Magnetic Imaging: Labeled vs. Unlabeled Cells.

Adv Funct Mater. 2022-12-9

[2]
Non-Invasive imaging of extracellular vesicles: Quo vaditis in vivo?

J Extracell Vesicles. 2022-7

[3]
In vivo Cell Tracking Using Non-invasive Imaging of Iron Oxide-Based Particles with Particular Relevance for Stem Cell-Based Treatments of Neurological and Cardiac Disease.

Mol Imaging Biol. 2020-12

[4]
Tracking Neural Progenitor Cell Migration in the Rodent Brain Using Magnetic Resonance Imaging.

Front Neurosci. 2019-1-11

[5]
Physicochemical characterization of ferumoxytol, heparin and protamine nanocomplexes for improved magnetic labeling of stem cells.

Nanomedicine. 2017-2

[6]
Nanoparticles based stem cell tracking in regenerative medicine.

Theranostics. 2013-7-23

[7]
Rapid spectrophotometric technique for quantifying iron in cells labeled with superparamagnetic iron oxide nanoparticles: potential translation to the clinic.

Contrast Media Mol Imaging. 2013

[8]
Self-assembling nanocomplexes by combining ferumoxytol, heparin and protamine for cell tracking by magnetic resonance imaging.

Nat Med. 2012-2-26

[9]
Tracking stem cells using magnetic nanoparticles.

Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2011-4-5

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