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Published on: September 5, 2016
Thrombus-Targeting Polymeric Nanocarriers and Their Biomedical Applications in Thrombolytic Therapy
1State Key Laboratory of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai, China.
Abstract:
Due to the high morbidity and mortality of cardiovascular diseases, there is an urgent need for research on antithrombotic strategies. In view of the short half-life, insufficient drug penetration, poor targeting capabilities, and hemorrhagic side-effects of traditional thrombus treatment methods, the combination of thrombolytic therapy and nanocarriers brought by the development of nanotechnology in recent years may provide effective solutions for these undesirable side-effects caused by insufficient targeting. Polymeric nanocarriers, based on macromolecules and various functional groups, can connect specific targeting molecules together through chemical modification to achieve the protection and targeted delivery of thrombolytic drugs. However, simple chemical molecular modifications may be easily affected by the physiological environment encountered in the circulatory system. Therefore, the modification of nanocarriers with cell membranes can provide camouflage to these platforms and help to extend their circulation time while also imparting them with the biological functions of cell membranes, thus providing them with precise targeting capabilities, among which the most important is the biological modification of platelet membranes. In addition, some nanoparticles with their own therapeutic functions have also been developed, such as polypyrrole, which can exhibit a photothermal effect to induce thrombolysis. Herein, combined with the mechanism of thrombosis and thrombolysis, we outline the recent advances achieved with thrombus-targeting nanocarriers with regard to thrombosis treatment. On this basis, the design considerations, advantages, and challenges of these thrombolytic therapies in clinical transformation are discussed.
Insights
Novel nanocarriers offer improved thrombus treatment by enhancing drug delivery and reducing side effects. Platelet membrane-coated nanoparticles show promise for targeted antithrombotic strategies.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cardiovascular Research
Background:
- Cardiovascular diseases pose significant health risks, necessitating advanced antithrombotic strategies.
- Traditional thrombolytic therapies suffer from short half-lives, poor targeting, and hemorrhagic side effects.
- Nanotechnology offers potential solutions to overcome the limitations of conventional treatments.
Purpose of the Study:
- To review recent advances in thrombus-targeting nanocarriers for cardiovascular disease treatment.
- To discuss the design, benefits, and challenges of nanocarrier-based thrombolytic therapies for clinical translation.
Main Methods:
- Development of polymeric nanocarriers with specific targeting molecules.
- Modification of nanocarriers with cell membranes, particularly platelet membranes, for enhanced circulation and targeting.
- Exploration of nanoparticles with intrinsic therapeutic functions, like polypyrrole for photothermal thrombolysis.
Main Results:
- Nanocarriers protect thrombolytic drugs and enable targeted delivery, mitigating side effects.
- Cell membrane camouflage, especially platelet membrane coating, improves circulation time and targeting precision.
- Nanoparticles like polypyrrole demonstrate combined therapeutic effects, enhancing thrombolysis.
Conclusions:
- Thrombus-targeting nanocarriers represent a promising advancement in antithrombotic therapy.
- Platelet membrane-based nanocarriers offer significant advantages for precise drug delivery.
- Further research is needed to address challenges for successful clinical translation of these nanotechnologies.
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