State Key Laboratory of Ultrasound in Medicine and Engineering, College of Biomedical Engineering, Chongqing Medical University, Chongqing 400016, China.
Chongqing Key Laboratory of Biomedical Engineering, College of Biomedical Engineering, Chongqing Medical University, Chongqing 400016, China.
Int J Mol Sci. 2021 Sep 28;22(19):10461. doi: 10.3390/ijms221910461.
Metal-based magnetic materials have been used in different fields due to their particular physical or chemical properties. The original magnetic properties can be influenced by the composition of constituent metals. As utilized in different application fields, such as imaging monitoring, thermal treatment, and combined integration in cancer therapies, fabricated metal-based magnetic materials can be doped with target metal elements in research. Furthermore, there is one possible new trend in human activities and basic cancer treatment. As has appeared in characterizations such as magnetic resonance, catalytic performance, thermal efficiency, etc., structural information about the real morphology, size distribution, and composition play important roles in its further applications. In cancer studies, metal-based magnetic materials are considered one appropriate material because of their ability to penetrate biological tissues, interact with cellular components, and induce noxious effects. The disruptions of cytoskeletons, membranes, and the generation of reactive oxygen species (ROS) further influence the efficiency of metal-based magnetic materials in related applications. While combining with cancer cells, these magnetic materials are not only applied in imaging monitoring focus areas but also could give the exact area information in the cure process while integrating ultrasound treatment. Here, we provide an overview of metal-based magnetic materials of various types and then their real applications in the magnetic resonance imaging (MRI) field and cancer cell treatments. We will demonstrate advancements in using ultrasound fields co-worked with MRI or ROS approaches. Besides iron oxides, there is a super-family of heterogeneous magnetic materials used as magnetic agents, imaging materials, catalytic candidates in cell signaling and tissue imaging, and the expression of cancer cells and their high sensitivity to chemical, thermal, and mechanical stimuli. On the other hand, the interactions between magnetic candidates and cancer tissues may be used in drug delivery systems. The materials' surface structure characteristics are introduced as drug loading substrates as much as possible. We emphasize that further research is required to fully characterize the mechanisms of underlying ultrasounds induced together, and their appropriate relevance for materials toxicology and biomedical applications.
基于金属的磁性材料由于其特殊的物理或化学性质而被应用于不同领域。组成金属的成分会影响原始的磁性。在不同的应用领域中,如成像监测、热处理和癌症治疗的联合集成,制造的基于金属的磁性材料可以在研究中掺杂目标金属元素。此外,在人类活动和癌症基础治疗中出现了一种新的趋势。在磁共振、催化性能、热效率等特性中,真实形态、尺寸分布和成分的结构信息在其进一步应用中起着重要作用。在癌症研究中,基于金属的磁性材料因其能够穿透生物组织、与细胞成分相互作用并产生有害影响而被认为是一种合适的材料。细胞骨架、膜的破坏和活性氧(ROS)的产生进一步影响了基于金属的磁性材料在相关应用中的效率。在与癌细胞结合时,这些磁性材料不仅应用于成像监测领域,还可以在超声治疗过程中提供精确的治疗区域信息。在这里,我们提供了各种类型的基于金属的磁性材料的概述,然后介绍了它们在磁共振成像(MRI)领域和癌症细胞治疗中的实际应用。我们将展示如何利用超声场与 MRI 或 ROS 方法相结合的最新进展。除了氧化铁,还有一个异构磁性材料的超家族,被用作磁性剂、成像材料、细胞信号和组织成像中的催化候选物,以及癌细胞的表达及其对化学、热和机械刺激的高敏感性。另一方面,磁性候选物与癌症组织之间的相互作用可能用于药物输送系统。我们尽可能地将材料的表面结构特征引入作为药物负载基底。我们强调,需要进一步研究以充分描述超声诱导相互作用的机制,以及它们在材料毒理学和生物医学应用中的适当相关性。