Erythrocyte‐Membrane‐Camouflaged Magnetic Nanocapsules With Photothermal/Magnetothermal Effects for Thrombolysis

Author:

Zhu Liqiong1,Lian Weishuai2,Yu Nuo1,Meng Jialan3,Zeng Hongchun4,Wang Yue4,Wang Xiao1,Wen Mei1,Chen Zhigang1ORCID

Affiliation:

1. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials Shanghai Engineering Research Center of Nano‐Biomaterials and Regenerative Medicine College of Materials Science and Engineering Donghua University Shanghai 201620 China

2. Department of Interventional and Vascular Surgery Shanghai Tenth People's Hospital Tongji University School of Medicine Shanghai 200072 China

3. Department of Ultrasound Songjiang Maternity & Child Health Hospital of Shanghai Shanghai 201600 China

4. Department of Radiology Songjiang Hospital Affiliated to Shanghai Jiao Tong University School of Medicine Shanghai 201600 P. R. China

Abstract

AbstractVenous/arterial thrombosis poses significant threats to human health. However, drug‐enabled thrombolysis treatment often encounters challenges such as short half‐life and low bioavailability. To address these issues, the design of erythrocyte‐membrane (EM) camouflaged nanocapsules (USIO/UK@EM) incorporating ultra‐small iron oxide (USIO) and urokinase (UK) drug, which exhibits remarkable photothermal/magnetothermal effects and drug delivery ability for venous/arterial thrombolysis, is reported. USIO, UK, and EM are coextruded to fabricate USIO/UK@EM with average sizes of 103.7 nm. As USIO/UK@EM possesses wide photoabsorption and good magnetic properties, its solution demonstrates a temperature increase to 41.8–42.9 °C within 5 min when exposed to an 808 nm laser (0.33 mW cm−2) or alternating magnetic field (AMF). Such photothermal/magnetothermal effect along with UK confers impressive thrombolytic rates of 82.4% and 74.2%, higher than that (≈15%) achieved by UK alone. Further, the EM coating extends the circulating half‐life (t1/2 = 3.28 h). When USIO/UK@EM is administered to mice and rabbits, tail vein thrombus in mice and femoral artery thrombus in rabbits can be dissolved by the synergetic effect of thermothrombolysis and UK. Therefore, this study not only offers insights into the rational design of multifunctional biomimetic nanocapsules but also showcases a promising thrombolysis strategy utilizing nanomedicine.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Science and Technology Commission of Shanghai Municipality

Publisher

Wiley

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