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Multiplexed Modular Genetic Targeting of Quantum Dots

[Image: see text] While DNA-directed nanotechnology is now a well-established platform for bioinspired nanoscale assembly in vitro, the direct targeting of various nanomaterials in living biological systems remains a significant challenge. Hybrid biological systems with integrated and targeted nanom...

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Autores principales: Saurabh, Saumya, Beck, Lauren E., Maji, Suvrajit, Baty, Catherine J., Wang, Yi, Yan, Qi, Watkins, Simon C., Bruchez, Marcel P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4246007/
https://www.ncbi.nlm.nih.gov/pubmed/25380615
http://dx.doi.org/10.1021/nn5044367
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author Saurabh, Saumya
Beck, Lauren E.
Maji, Suvrajit
Baty, Catherine J.
Wang, Yi
Yan, Qi
Watkins, Simon C.
Bruchez, Marcel P.
author_facet Saurabh, Saumya
Beck, Lauren E.
Maji, Suvrajit
Baty, Catherine J.
Wang, Yi
Yan, Qi
Watkins, Simon C.
Bruchez, Marcel P.
author_sort Saurabh, Saumya
collection PubMed
description [Image: see text] While DNA-directed nanotechnology is now a well-established platform for bioinspired nanoscale assembly in vitro, the direct targeting of various nanomaterials in living biological systems remains a significant challenge. Hybrid biological systems with integrated and targeted nanomaterials may have interesting and exploitable properties, so methods for targeting various nanomaterials to precise biological locations are required. Fluorescence imaging has benefited from the use of nanoparticles with superior optical properties compared to fluorescent organic dyes or fluorescent proteins. While single-particle tracking (SPT) in living cells with genetically encoded proteins is limited to very short trajectories, the high photon output of genetically targeted and multiplexed quantum dots (QDs) would enable long-trajectory analysis of multiple proteins. However, challenges with genetic targeting of QDs limit their application in these experiments. In this report, we establish a modular method for targeting QD nanoparticles selectively to multiple genetically encoded tags by precomplexing QD–streptavidin conjugates with cognate biotinylated hapten molecules. This approach enables labeling and SPT of multiple genetically encoded proteins on living cells at high speed and can label expressed proteins in the cytosol upon microinjection into living cells. While we demonstrate labeling with three distinct QD conjugates, the approach can be extended to other specific hapten–affinity molecule interactions and alternative nanoparticles, enabling precise directed targeting of nanoparticles in living biological systems.
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spelling pubmed-42460072015-11-07 Multiplexed Modular Genetic Targeting of Quantum Dots Saurabh, Saumya Beck, Lauren E. Maji, Suvrajit Baty, Catherine J. Wang, Yi Yan, Qi Watkins, Simon C. Bruchez, Marcel P. ACS Nano [Image: see text] While DNA-directed nanotechnology is now a well-established platform for bioinspired nanoscale assembly in vitro, the direct targeting of various nanomaterials in living biological systems remains a significant challenge. Hybrid biological systems with integrated and targeted nanomaterials may have interesting and exploitable properties, so methods for targeting various nanomaterials to precise biological locations are required. Fluorescence imaging has benefited from the use of nanoparticles with superior optical properties compared to fluorescent organic dyes or fluorescent proteins. While single-particle tracking (SPT) in living cells with genetically encoded proteins is limited to very short trajectories, the high photon output of genetically targeted and multiplexed quantum dots (QDs) would enable long-trajectory analysis of multiple proteins. However, challenges with genetic targeting of QDs limit their application in these experiments. In this report, we establish a modular method for targeting QD nanoparticles selectively to multiple genetically encoded tags by precomplexing QD–streptavidin conjugates with cognate biotinylated hapten molecules. This approach enables labeling and SPT of multiple genetically encoded proteins on living cells at high speed and can label expressed proteins in the cytosol upon microinjection into living cells. While we demonstrate labeling with three distinct QD conjugates, the approach can be extended to other specific hapten–affinity molecule interactions and alternative nanoparticles, enabling precise directed targeting of nanoparticles in living biological systems. American Chemical Society 2014-11-07 2014-11-25 /pmc/articles/PMC4246007/ /pubmed/25380615 http://dx.doi.org/10.1021/nn5044367 Text en Copyright © 2014 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Saurabh, Saumya
Beck, Lauren E.
Maji, Suvrajit
Baty, Catherine J.
Wang, Yi
Yan, Qi
Watkins, Simon C.
Bruchez, Marcel P.
Multiplexed Modular Genetic Targeting of Quantum Dots
title Multiplexed Modular Genetic Targeting of Quantum Dots
title_full Multiplexed Modular Genetic Targeting of Quantum Dots
title_fullStr Multiplexed Modular Genetic Targeting of Quantum Dots
title_full_unstemmed Multiplexed Modular Genetic Targeting of Quantum Dots
title_short Multiplexed Modular Genetic Targeting of Quantum Dots
title_sort multiplexed modular genetic targeting of quantum dots
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4246007/
https://www.ncbi.nlm.nih.gov/pubmed/25380615
http://dx.doi.org/10.1021/nn5044367
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