Advances in nanobased platforms for cardiovascular diseases: Early diagnosis, imaging, treatment, and tissue engineering

纳米载体 纳米医学 纳米技术 医学 药物输送 纳米颗粒 材料科学
作者
Laleh Shariati,Yasaman Esmaeili,Ilnaz Rahimmanesh,Shahrzad Babolmorad,Ghazal Ziaei,Anwarul Hasan,Maryam Boshtam,Pooyan Makvandi
出处
期刊:Environmental Research [Elsevier]
卷期号:238 (Pt 1): 116933-116933 被引量:29
标识
DOI:10.1016/j.envres.2023.116933
摘要

Cardiovascular diseases (CVDs) present a significant threat to health, with traditional pharmaceuticals for their treatment being hindered by inefficiencies due to non-targeted actions, limited biological effects, poor water solubility, and drug resistance. Addressing these challenges requires advanced approaches for early disease diagnosis and therapy. Nanotechnology and nanomedicine have emerged as promising avenues for personalized CVD diagnosis and treatment through theranostic agents. Nanoparticles serve as nanodevices or nanocarriers, efficiently transporting drugs to injury sites. These nanocarriers offer the potential for precise drug and gene delivery, overcoming issues like bioavailability and solubility. By attaching specific target molecules to nanoparticle surfaces, controlled drug release to targeted areas becomes feasible. Within cardiology, nanoplatforms have gained popularity due to their attributes such as passive or active targeting of cardiac tissues, enhancing sensitivity and specificity, and easy penetration into heart and artery tissues due to their small size. However, concerns persist about the immunogenicity and cytotoxicity of nanomaterials, necessitating careful consideration. Nanoparticles also hold promise for CVD diagnosis and imaging, enabling straightforward diagnostic procedures and real-time tracking during therapy. Nanotechnology has revolutionized cardiovascular imaging, yielding multimodal and multifunctional vehicles that outperform traditional methods. The paper provides an overview of nanomaterial delivery routes, targeting techniques, and recent advances in treating, diagnosing, and engineering tissues for CVDs. It also discusses the future potential of nanomaterials in CVDs, including theranostics, aiming to enhance cardiovascular treatment in clinical practice. Ultimately, refining nanocarriers and delivery methods has the potential to bolster treatment effectiveness, minimize side effects, and improve patients' well-being and outcomes.
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