Agyare Edward, Kandimalla Karunyna
College of Pharmacy and Pharmaceutical Sciences, Florida A&M University, Tallahassee, FL ; Division of Radiation Oncology, University of Texas M. D. Anderson Cancer Center, Houston, TX, USA.
Department of Pharmaceutics and Brain Barriers Research Center, University of Minnesota, Minneapolis, MN, USA.
J Biomol Res Ther. 2014 Jan;3(1). doi: 10.4172/2167-7956.s1-001.
Current advances in nanotechnology have paved the way for the early detection, prevention and treatment of various diseases such as vascular disorders and cancer. These advances have provided novel approaches or modalities of incorporating or adsorbing therapeutic, biosensor and targeting agents into/on nanoparticles. With significant progress, nanomedicine for vascular therapy has shown significant advantages over traditional medicine because of its ability to selectively target the disease site and reduce adverse side effects. Targeted delivery of nanoparticles to vascular endothelial cells or the vascular wall provides an effective and more efficient way for early detection and/or treatment of vascular diseases such as atherosclerosis, thrombosis and Cerebrovascular Amyloid Angiopathy (CAA). Clinical applications of biocompatible and biodegradable polymers in areas such as vascular graft, implantable drug delivery, stent devices and tissue engineering scaffolds have advanced the candidature of polymers as potential nano-carriers for vascular-targeted delivery of diagnostic agents and drugs. This review focuses on the basic aspects of the vasculature and its associated diseases and relates them to polymeric nanoparticle-based strategies for targeting therapeutic agents to diseased vascular site.
纳米技术的当前进展为诸如血管疾病和癌症等各种疾病的早期检测、预防和治疗铺平了道路。这些进展提供了将治疗剂、生物传感器和靶向剂掺入或吸附到纳米颗粒中/上的新方法或模式。随着取得的重大进展,用于血管治疗的纳米医学由于能够选择性地靶向疾病部位并减少不良副作用,已显示出相对于传统医学的显著优势。将纳米颗粒靶向递送至血管内皮细胞或血管壁为早期检测和/或治疗诸如动脉粥样硬化、血栓形成和脑血管淀粉样血管病(CAA)等血管疾病提供了一种有效且更高效的方法。生物相容性和可生物降解聚合物在血管移植物、可植入药物递送、支架装置和组织工程支架等领域的临床应用,提升了聚合物作为诊断剂和药物血管靶向递送潜在纳米载体的候选资格。本综述聚焦于脉管系统及其相关疾病的基本方面,并将它们与基于聚合物纳米颗粒的将治疗剂靶向递送至患病血管部位的策略相关联。