Multifunctional nanoclusters of NaYF4:Yb3+,Er3+ upconversion nanoparticle and gold nanorod for simultaneous imaging and targeted chemotherapy of bladder cancer

This paper reports successful synthesis of multifunctional nanoclusters of upconversion nanoparticle (UCNP) and gold nanorod (AuNR) through a PEGylation process. UCNPs emit visible luminescence under near-infrared excitation, producing high-contrast images with no background fluorescence. When coupl...

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Veröffentlicht in:Materials Science & Engineering C 2019-04, Vol.97, p.784-792
Hauptverfasser: Cho, Suehyun K., Su, Lih-Jen, Mao, Chenchen, Wolenski, Connor D., Flaig, Thomas W., Park, Wounjhang
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Sprache:eng
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Zusammenfassung:This paper reports successful synthesis of multifunctional nanoclusters of upconversion nanoparticle (UCNP) and gold nanorod (AuNR) through a PEGylation process. UCNPs emit visible luminescence under near-infrared excitation, producing high-contrast images with no background fluorescence. When coupled with AuNRs, the resulting UCNP-AuNR multifunctional nanoclusters are capable of simultaneous detection and treatment of bladder cancer. These UCNP-AuNR nanoclusters are further functionalized with antibodies to epidermal growth factor receptor (EGFR) to target bladder cancer cells known to overexpress EGFRs. This paper demonstrates, for the first time, efficient targeting of bladder cancer cells with UCNP-AuNR nanoclusters. In addition to high-contrast imaging and consequently high sensitivity detection of bladder cancer cells, highly selective optoporation-assisted chemotherapy was accomplished using a dosage of chemotherapy agent significantly lower than any previous reports, within a clinically relevant incubation time window. These results are highly relevant to the eventual human application in which the nanoclusters and chemotherapy drugs will be directly instilled in bladder via urinary catheter. [Display omitted] •Multifunctional nanoclusters enable simultaneous detection and treatment of cancer•Upconversion nanoparticles allow high sensitivity fluorescence detection of cancer cells•Plasmonic aided optoporation of cancer cells enable highly selective chemotherapy•Efficient cell binding and optoporation-enabled chemotherapy was demonstrated within a clinically relevant time scale.
ISSN:0928-4931
1873-0191
DOI:10.1016/j.msec.2018.12.113