Cargando…

Targeting Negative Surface Charges of Cancer Cells by Multifunctional Nanoprobes

A set of electrostatically charged, fluorescent, and superparamagnetic nanoprobes was developed for targeting cancer cells without using any molecular biomarkers. The surface electrostatic properties of the established cancer cell lines and primary normal cells were characterized by using these nano...

Descripción completa

Detalles Bibliográficos
Autores principales: Chen, Bingdi, Le, Wenjun, Wang, Yilong, Li, Zhuoquan, Wang, Dong, Ren, Lei, Lin, Ling, Cui, Shaobin, Hu, Jennifer J., Hu, Yihui, Yang, Pengyuan, Ewing, Rodney C., Shi, Donglu, Cui, Zheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4997244/
https://www.ncbi.nlm.nih.gov/pubmed/27570558
http://dx.doi.org/10.7150/thno.16358
_version_ 1782449735753269248
author Chen, Bingdi
Le, Wenjun
Wang, Yilong
Li, Zhuoquan
Wang, Dong
Ren, Lei
Lin, Ling
Cui, Shaobin
Hu, Jennifer J.
Hu, Yihui
Yang, Pengyuan
Ewing, Rodney C.
Shi, Donglu
Cui, Zheng
author_facet Chen, Bingdi
Le, Wenjun
Wang, Yilong
Li, Zhuoquan
Wang, Dong
Ren, Lei
Lin, Ling
Cui, Shaobin
Hu, Jennifer J.
Hu, Yihui
Yang, Pengyuan
Ewing, Rodney C.
Shi, Donglu
Cui, Zheng
author_sort Chen, Bingdi
collection PubMed
description A set of electrostatically charged, fluorescent, and superparamagnetic nanoprobes was developed for targeting cancer cells without using any molecular biomarkers. The surface electrostatic properties of the established cancer cell lines and primary normal cells were characterized by using these nanoprobes with various electrostatic signs and amplitudes. All twenty two randomly selected cancer cell lines of different organs, but not normal control cells, bound specifically to the positively charged nanoprobes. The relative surface charges of cancer cells could be quantified by the percentage of cells captured magnetically. The activities of glucose metabolism had a profound impact on the surface charge level of cancer cells. The data indicate that an elevated glycolysis in the cancer cells led to a higher level secretion of lactate. The secreted lactate anions are known to remove the positive ions, leaving behind the negative changes on the cell surfaces. This unique metabolic behavior is responsible for generating negative cancer surface charges in a perpetuating fashion. The metabolically active cancer cells are shown to a unique surface electrostatic pattern that can be used for recovering cancer cells from the circulating blood and other solutions.
format Online
Article
Text
id pubmed-4997244
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Ivyspring International Publisher
record_format MEDLINE/PubMed
spelling pubmed-49972442016-08-26 Targeting Negative Surface Charges of Cancer Cells by Multifunctional Nanoprobes Chen, Bingdi Le, Wenjun Wang, Yilong Li, Zhuoquan Wang, Dong Ren, Lei Lin, Ling Cui, Shaobin Hu, Jennifer J. Hu, Yihui Yang, Pengyuan Ewing, Rodney C. Shi, Donglu Cui, Zheng Theranostics Research Paper A set of electrostatically charged, fluorescent, and superparamagnetic nanoprobes was developed for targeting cancer cells without using any molecular biomarkers. The surface electrostatic properties of the established cancer cell lines and primary normal cells were characterized by using these nanoprobes with various electrostatic signs and amplitudes. All twenty two randomly selected cancer cell lines of different organs, but not normal control cells, bound specifically to the positively charged nanoprobes. The relative surface charges of cancer cells could be quantified by the percentage of cells captured magnetically. The activities of glucose metabolism had a profound impact on the surface charge level of cancer cells. The data indicate that an elevated glycolysis in the cancer cells led to a higher level secretion of lactate. The secreted lactate anions are known to remove the positive ions, leaving behind the negative changes on the cell surfaces. This unique metabolic behavior is responsible for generating negative cancer surface charges in a perpetuating fashion. The metabolically active cancer cells are shown to a unique surface electrostatic pattern that can be used for recovering cancer cells from the circulating blood and other solutions. Ivyspring International Publisher 2016-08-07 /pmc/articles/PMC4997244/ /pubmed/27570558 http://dx.doi.org/10.7150/thno.16358 Text en © Ivyspring International Publisher. Reproduction is permitted for personal, noncommercial use, provided that the article is in whole, unmodified, and properly cited. See http://ivyspring.com/terms for terms and conditions.
spellingShingle Research Paper
Chen, Bingdi
Le, Wenjun
Wang, Yilong
Li, Zhuoquan
Wang, Dong
Ren, Lei
Lin, Ling
Cui, Shaobin
Hu, Jennifer J.
Hu, Yihui
Yang, Pengyuan
Ewing, Rodney C.
Shi, Donglu
Cui, Zheng
Targeting Negative Surface Charges of Cancer Cells by Multifunctional Nanoprobes
title Targeting Negative Surface Charges of Cancer Cells by Multifunctional Nanoprobes
title_full Targeting Negative Surface Charges of Cancer Cells by Multifunctional Nanoprobes
title_fullStr Targeting Negative Surface Charges of Cancer Cells by Multifunctional Nanoprobes
title_full_unstemmed Targeting Negative Surface Charges of Cancer Cells by Multifunctional Nanoprobes
title_short Targeting Negative Surface Charges of Cancer Cells by Multifunctional Nanoprobes
title_sort targeting negative surface charges of cancer cells by multifunctional nanoprobes
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4997244/
https://www.ncbi.nlm.nih.gov/pubmed/27570558
http://dx.doi.org/10.7150/thno.16358
work_keys_str_mv AT chenbingdi targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT lewenjun targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT wangyilong targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT lizhuoquan targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT wangdong targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT renlei targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT linling targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT cuishaobin targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT hujenniferj targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT huyihui targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT yangpengyuan targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT ewingrodneyc targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT shidonglu targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes
AT cuizheng targetingnegativesurfacechargesofcancercellsbymultifunctionalnanoprobes