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Updated: Jun 13, 2025

Ferric Chloride-induced Murine Thrombosis Models
Published on: September 5, 2016
Cutting-edge advances in nano/biomedicine: A review on transforming thrombolytic therapy
Chia-Hung Liu1, Lekshmi Rethi2, Pei-Wei Weng3
1Department of Urology, School of Medicine, College of Medicine, Taipei Medical University, 250 Wu-Hsing Street, Taipei 11031, Taiwan; TMU Research Center of Urology and Kidney, Taipei Medical University, 250 Wu-Hsing Street, Taipei 11031, Taiwan; Department of Urology, Shuang Ho Hospital, Taipei Medical University, 291 Zhongzheng Road, Zhonghe District, New Taipei City 23561, Taiwan.
Insights
Nanomedicine enhances thrombolysis by encapsulating Plasminogen Activators (PA) in targeted nanocarriers. This approach improves treatment efficacy and safety for thrombotic disorders like stroke and heart attack.
Area of Science:
- Cardiovascular Research
- Nanomedicine
- Biotechnology
Background:
- Thrombotic blockages cause severe cardiovascular diseases such as stroke and myocardial infarction.
- Current thrombolysis using Plasminogen Activators (PA) faces limitations including rapid elimination and bleeding risks.
- Nanomedicine offers a promising strategy to overcome these limitations by improving PA delivery and efficacy.
Purpose of the Study:
- To review the pathophysiology of venous and arterial thrombi.
- To provide an overview of approved Plasminogen Activators (PA) for thrombotic conditions.
- To explore nanomedicine strategies for targeted thrombolytic therapy.
Main Methods:
- Review of current literature on thrombolysis and nanocarrier systems.
- Analysis of various targeted nanocarriers (lipid, polymeric, inorganic, biological) for PA delivery.
- Discussion of ultrasound-assisted Sono thrombolysis and microbubble technologies.
Main Results:
- Nanomedicine significantly improves PA delivery, efficacy, and safety in preclinical and clinical studies.
- Targeted nanocarriers demonstrate precise delivery of PA to thrombus sites.
- Ultrasound-mediated Sono thrombolysis shows enhanced therapeutic outcomes.
Conclusions:
- Nanomedicine provides a precise and effective therapeutic approach for severe thrombus conditions.
- Targeted nano-based carriers offer a pathway to improved patient outcomes and reduced complications in treating thrombotic disorders.
- Further development of nanocarrier systems holds significant potential for advancing thrombolytic therapy.
Abstract:
Thrombotic blockages within blood vessels give rise to critical cardiovascular disorders, including ischemic stroke, venous thromboembolism, and myocardial infarction. The current approach to the therapy of thrombolysis involves administering Plasminogen Activators (PA), but it is hindered by fast drug elimination, narrow treatment window, and the potential for bleeding complications. Leveraging nanomedicine to encapsulate and deliver PA offers a solution by improving the efficacy of therapy, safeguarding the medicine from proteinase biodegradation, and reducing unwanted effects in in vivo trials. In this review, we delve into the underlying venous as well as arterial thrombus pathophysiology and provide an overview of clinically approved PA used to address acute thrombotic conditions. We explore the existing challenges and potential directions within recent pivotal research on a variety of targeted nanocarriers, such as lipid, polymeric, inorganic, and biological carriers, designed for precise delivery of PA to specific sites. We also discuss the promising role of microbubbles and ultrasound-assisted Sono thrombolysis, which have exhibited enhanced thrombolysis in clinical studies. Furthermore, our review delves into approaches for the strategic development of nano-based carriers tailored for targeting thrombolytic action and efficient encapsulation of PA, considering the intricate interaction in biology systems as well as nanomaterials. In conclusion, the field of nanomedicine offers a valuable method for the exact and effective therapy of severe thrombus conditions, presenting a pathway toward improved patient outcomes and reduced complications.
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