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摘要:
Over the past decades, cell surface charge, although experimentally observed, has not been well understood particularly from the viewpoint of biophysics. Our recent studies have shown that all cancer cells exhib让 negative surface charges that are directly proportional to the secreted lactic acid, a unique cancer metabolic characteristic: high rate of glycolysis. We have therefore designed and developed a set of electrically-charged, fluorescent, and super-paramagnetic nanoprobes, capable of sensitive detection of cancer cells based on the surface charges. These probes are utilized to bind onto cells via electrostatic reaction for capture and magnetic separation. In this fashion, we are able to characterize cell surface charges that are regulated by different metabolic patterns, therefore effectively distinguishing the cancer cells from the normal cells. All 22 cancer cells of different organs are found to be negativelycharged therefore bound strongly by the positively-charged nanoprobes, whereas the normal cells show insignificant binding to the nanoprobes of either charge signs (positive or negative). This finding suggests that all tested cancer cells are negatively-charged and normal cells are either charge-neutral or slightly positive. For diagnosis, cancer cells can be detected, electrostatically bound, and magnetically separated in blood by charged and super-paramagnetic nanoprobes. In therapeutics, circulating cancer cells (CTCs) can be filtered and removed in a continuous fashion to reduce the risk of cancer metastasis. If successful, this new nano technology will revolutionize early cancer diagnosis and potentially enable new therapeutics in clinical settings.
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篇名 Detection of cancer cells based on glycolytic-regulated surface electrical charges
来源期刊 生物物理学报:英文版 学科 生物学
关键词 NANOTECHNOLOGY Cancer CELL CELL SURFACE charge CIRCULATING tumor cells
年,卷(期) 2019,(1) 所属期刊栏目
研究方向 页码范围 10-18
页数 9页 分类号 Q
字数 语种
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研究主题发展历程
节点文献
NANOTECHNOLOGY
Cancer
CELL
CELL
SURFACE
charge
CIRCULATING
tumor
cells
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研究来源
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研究去脉
引文网络交叉学科
相关学者/机构
期刊影响力
生物物理学报:英文版
双月刊
2364-3439
10-1302/Q
Institute of Biophys
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32
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0
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0
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