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利用血小板衍生膜构建具有凝块靶向能力的高回声胶体

Engineering Hyperechogenic Colloids with Clot-Targeting Capabilities from Platelet-Derived Membranes.

作者信息

Vidallon Mark Louis P, Moon Mitchell J, Liu Haikun, Song Yuyang, Crawford Simon, Teo Boon Mian, McFadyen James D, Bishop Alexis I, Tabor Rico F, Peter Karlheinz, Wang Xiaowei

机构信息

Molecular Imaging and Theranostics Laboratory, Baker Heart and Diabetes Institute, 75 Commercial Road, Melbourne, VIC 3004, Australia.

Baker Department of Cardiometabolic Health, University of Melbourne, Parkville, VIC 3010, Australia.

出版信息

ACS Appl Mater Interfaces. 2024 Oct 3;16(41):55142-54. doi: 10.1021/acsami.4c12024.

Abstract

Thrombosis-related cardiovascular diseases remain the leading global cause of mortality and morbidity. In this study, we present a pioneering approach in the field of nanobiotechnology, with a focus on clinical translation, aimed at advancing early diagnosis and enhancing treatment options for thrombotic disorders. We introduce the fabrication of Platelet Membrane-Derived Bubbles (PMBs), which exhibit distinctive characteristics compared to conventional nanoparticles. These PMBs possess an average diameter of 700 nm and a negative ζ-potential, mirroring the attributes of parent platelet membranes. Utilizing diagnostic ultrasound imaging, we demonstrated the ability to visualize PMBs as hyperechogenic entities in agarose phantoms and in live mice . Furthermore, through confocal laser microscopy, we verified the retention of crucial transmembrane proteins, such as CD41 (GPIIb) and CD42 (GPIb), pivotal in conferring platelet-specific targeting functions. Importantly, our platelet aggregation studies confirmed that PMBs do not induce platelet aggregation but instead adhere to preformed platelet-rich thrombi. Overall, our work showcases the safe and precise utilization of PMBs to directly target acute thrombosis induced by laser injury in murine mesenteric veins , as visualized through intravital microscopy. In conclusion, we have successfully developed a rapid method for generating PMBs with unique ultrasound-directed and thrombus-targeting properties. These exceptional attributes of PMBs hold significant promise for advancing the field of ultrasound diagnostic thrombus imaging and clot-targeted therapy in the clinical context.

摘要

血栓形成相关的心血管疾病仍然是全球死亡和发病的主要原因。在本研究中,我们在纳米生物技术领域提出了一种开创性方法,重点是临床转化,旨在推进血栓性疾病的早期诊断并增加治疗选择。我们介绍了血小板膜衍生气泡(PMB)的制备,与传统纳米颗粒相比,其具有独特的特性。这些PMB的平均直径为700nm,ζ电位为负,反映了母体血小板膜的特性。利用诊断超声成像,我们证明了在琼脂糖模型和活体小鼠中能够将PMB可视化为高回声实体。此外,通过共聚焦激光显微镜,我们验证了关键跨膜蛋白如CD41(糖蛋白IIb)和CD42(糖蛋白Ib)的保留,这些蛋白在赋予血小板特异性靶向功能方面至关重要。重要的是,我们的血小板聚集研究证实,PMB不会诱导血小板聚集,而是粘附于预先形成的富含血小板的血栓。总体而言,我们的工作展示了PMB在活体显微镜下可视化时,对小鼠肠系膜静脉激光损伤诱导的急性血栓形成进行安全、精确的靶向作用。总之,我们成功开发了一种快速方法来生成具有独特超声引导和血栓靶向特性的PMB。PMB的这些卓越特性在临床环境中推进超声诊断血栓成像和凝块靶向治疗领域具有重大前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7b28/11492166/ad6908bf7ff4/am4c12024_0001.jpg

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