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Renal Clearable Nanodots-Engineered Erythrocytes with Enhanced Circulation and Tumor Accumulation for Photothermal Therapy of Hepatocellular Carcinoma.

Small(2024)

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Abstract
Living cell-mediated nanodelivery system is considered a promising candidate for targeted antitumor therapy; however, their use is restricted by the adverse interactions between carrier cells and nanocargos. Herein, a novel erythrocyte-based nanodelivery system is developed by assembling renal-clearable copper sulfide (CuS) nanodots on the outer membranes of erythrocytes via a lipid fusion approach, and demonstrate that it is an efficient photothermal platform against hepatocellular carcinoma. After intravenous injection of the nanodelivery system, CuS nanodots assembled on erythrocytes can be released from the system, accumulate in tumors in response to the high shear stress of bloodstream, and show excellent photothermal antitumor effect under the near infrared laser irradiation. Therefore, the erythrocyte-mediated nanodelivery system holds many advantages including prolonged blood circulation duration and enhanced tumor accumulation. Significantly, the elimination half-life of the nanodelivery system is 74.75 +/- 8.77 h, which is much longer than that of nanodots (33.56 +/- 2.36 h). Moreover, the other two kinds of nanodots can be well assembled onto erythrocytes to produce other erythrocyte-based hitchhiking platforms. Together, the findings promote not only the development of novel erythrocyte-based nanodelivery systems as potential platforms for tumor treatment but also their further clinical translation toward personalized healthcare. A novel erythrocyte-based nanodelivery system comprising renal clearable nanodots assembled on the erythrocytes via a lipid fusion approach is rationally designed and developed. Possessing the prolonged blood circulation duration, enhanced tumor accumulation, and low systemic toxicity, the erythrocyte-based nanodelivery system can emerge as an efficient photothermal antitumor platform for autotransplantation-assisted personalized healthcare in the future.image
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Key words
antitumor treatment,erythrocytes,lipid fusion approach,nanodelivery system,renal clearable materials
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