Current Advances in Nanotheranostics for Molecular Imaging and Therapy of Cardiovascular Disorders

医学 磁共振成像 分子成像 正电子发射断层摄影术 纳米载体 纳米医学 生物医学中的光声成像 医学影像学 光热治疗 个性化医疗 医学物理学 纳米技术 放射科 生物信息学 纳米颗粒 药理学 材料科学 物理 生物技术 药品 体内 光学 生物
作者
Aseem Setia,Abhishesh Kumar Mehata,Vishnu Priya,Datta Maroti Pawde,Dharmendra Jain,Sanjeev Kumar Mahto,Madaswamy S. Muthu
出处
期刊:Molecular Pharmaceutics [American Chemical Society]
卷期号:20 (10): 4922-4941 被引量:17
标识
DOI:10.1021/acs.molpharmaceut.3c00582
摘要

Cardiovascular diseases (CVDs) refer to a collection of conditions characterized by abnormalities in the cardiovascular system. They are a global problem and one of the leading causes of mortality and disability. Nanotheranostics implies to the combination of diagnostic and therapeutic capabilities inside a single nanoscale platform that has allowed for significant advancement in cardiovascular diagnosis and therapy. These advancements are being developed to improve imaging capabilities, introduce personalized therapies, and boost cardiovascular disease patient treatment outcomes. Significant progress has been achieved in the integration of imaging and therapeutic capabilities within nanocarriers. In the case of cardiovascular disease, nanoparticles provide targeted delivery of therapeutics, genetic material, photothermal, and imaging agents. Directing and monitoring the movement of these therapeutic nanoparticles may be done with pinpoint accuracy by using imaging modalities such as cardiovascular magnetic resonance (CMR), computed tomography (CT), positron emission tomography (PET), photoacoustic/ultrasound, and fluorescence imaging. Recently, there has been an increasing demand of noninvasive for multimodal nanotheranostic platforms. In these platforms, various imaging technologies such as optical and magnetic resonance are integrated into a single nanoparticle. This platform helps in acquiring more accurate descriptions of cardiovascular diseases and provides clues for accurate diagnosis. Advances in surface functionalization methods have strengthened the potential application of nanotheranostics in cardiovascular diagnosis and therapy. In this Review, we have covered the potential impact of nanomedicine on CVDs. Additionally, we have discussed the recently developed various nanoparticles for CVDs imaging. Moreover, advancements in the CMR, CT, PET, ultrasound, and photoacoustic imaging for the CVDs have been discussed. We have limited our discussion to nanomaterials based clinical trials for CVDs and their patents.
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