Lapusan Radu, Borlan Raluca, Focsan Monica
Biomolecular Physics Department, Faculty of Physics, Babes-Bolyai University Cluj-Napoca Romania.
Nanobiophotonics and Laser Microspectroscopy Centre, Interdisciplinary Research Institute on Bio-Nano-Sciences, Babes-Bolyai University Cluj-Napoca Romania
Nanoscale Adv. 2024 Apr 2;6(9):2234-2259. doi: 10.1039/d3na01064c. eCollection 2024 Apr 30.
The nexus of advanced technology and medical therapeutics has ushered in a transformative epoch in contemporary medicine. Within this arena, Magnetic Resonance Imaging (MRI) emerges as a paramount tool, intertwining the advancements of technology with the art of healing. MRI's pivotal role is evident in its broad applicability, spanning from neurological diseases, soft-tissue and tumour characterization, to many more applications. Though already foundational, aspirations remain to further enhance MRI's capabilities. A significant avenue under exploration is the incorporation of innovative nanotechnological contrast agents. Forefront among these are Superparamagnetic Iron Oxide Nanoparticles (SPIONs), recognized for their adaptability and safety profile. SPION's intrinsic malleability allows them to be tailored for improved biocompatibility, while their functionality is further broadened when equipped with specific targeting molecules. Yet, the path to optimization is not devoid of challenges, from renal clearance concerns to potential side effects stemming from iron overload. This review endeavors to map the intricate journey of SPIONs as MRI contrast agents, offering a chronological perspective of their evolution and deployment. We provide an in-depth current outline of the most representative and impactful pre-clinical and clinical studies centered on the integration of SPIONs in MRI, tracing their trajectory from foundational research to contemporary applications.
先进技术与医学治疗的紧密结合开创了当代医学的变革时代。在这个领域中,磁共振成像(MRI)成为了一个至关重要的工具,它将技术进步与治疗艺术交织在一起。MRI的关键作用在其广泛的适用性中显而易见,涵盖从神经疾病、软组织和肿瘤特征描述到更多应用领域。尽管MRI已经是基础技术,但人们仍期望进一步提升其性能。正在探索的一条重要途径是引入创新的纳米技术造影剂。其中最前沿的是超顺磁性氧化铁纳米颗粒(SPIONs),它们以其适应性和安全性而闻名。SPIONs的固有可塑性使其能够进行定制以提高生物相容性,而当配备特定靶向分子时,其功能会进一步扩展。然而,优化之路并非没有挑战,从肾脏清除问题到铁过载可能产生的副作用。这篇综述致力于描绘SPIONs作为MRI造影剂的复杂历程,按时间顺序呈现它们的发展和应用情况。我们深入概述了以SPIONs在MRI中的整合为中心的最具代表性和影响力的临床前和临床研究,追溯它们从基础研究到当代应用的轨迹。