Carlos Jacinto, Wagner F. Silva, Joel Garcia, Gelo P. Zaragosa, Carlo Nonato D. Ilem, Tasso O. Sales, Harrisson D. A. Santos, Blessed Isaac C. Conde, Helliomar Pereira Barbosa, Sonia Malik and Surender Kumar Sharma
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A comprehensive analysis of nanomaterial architecture ensues, delineating the functionalities of magnetic, plasmonic, and luminescent nanomaterials within the context of thermal therapies. Nano-design intricacies, including core–shell structures and monodisperse properties, are dissected for their impact on therapeutic efficacy. Furthermore, considerations in designing <em>in vivo</em> nanomaterials, such as hydrodynamic radii and core sizes at sub-tissue levels, are elucidated. The review then delves into specific modalities of thermally induced therapy, including magnetically induced hyperthermia and luminescent-based thermal treatments. Magnetic hyperthermia treatment is explored alongside its imaging and relaxometric properties, emphasizing the implications of imaging formulations on biotransformation and biodistribution. This review also provides an overview of the magnetic hyperthermia treatment using magnetic nanoparticles to induce localized heat in tissues. 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引用次数: 0
摘要
纳米粒子已成为热疗领域的多功能工具,可为靶向治疗提供精确控制和反馈机制。本综述探讨了纳米技术与热疗的交叉点,重点是利用纳米粒子进行图像引导干预和温度监测。我们首先探讨了局部温度动态与全身反应的比较,然后深入探讨了纳米材料及其在纳米医学中的关键作用。我们仔细研究了治疗和成像中使用的各种物理刺激,为纳米热疗法和随之而来的挑战奠定了基础。随后对纳米材料结构进行了全面分析,在热疗法的背景下描述了磁性、等离子体和发光纳米材料的功能。纳米设计的复杂性,包括核壳结构和单分散特性,被剖析为对疗效的影响。此外,还阐明了设计体内纳米材料的注意事项,如亚组织水平的流体动力学半径和核心尺寸。综述随后深入探讨了热诱导疗法的具体模式,包括磁诱导热疗和基于发光的热疗。在探讨磁热疗的同时,还探讨了其成像和弛豫特性,强调了成像配方对生物转化和生物分布的影响。本综述还概述了利用磁性纳米粒子诱导组织局部发热的磁性热疗。同样,还讨论了利用发光纳米材料的光学和热成像技术,强调了它们在光诱导热疗和细胞级温度监测方面的潜力。最后,还考察了诊断和光热疗法(PTT)的应用前景,包括癌症治疗、药物输送、抗菌疗法和免疫疗法等多个领域。报告强调了纳米温度计作为诊断工具在阐明热弛豫动力学方面的作用,并讨论了 PTT 热疗方案。此外,还介绍了纳米粒子磁成像的进展和成像制剂的影响,特别是在创建正磁共振成像对比剂方面。这篇全面的综述深入探讨了基于纳米粒子的图像引导热疗法的发展前景、精准医疗和靶向干预的前景,强调了继续开展优化研究以充分发挥磁热疗的潜力,从而提高其疗效和临床转化的重要性。
Nanoparticles based image-guided thermal therapy and temperature feedback
Nanoparticles have emerged as versatile tools in the realm of thermal therapy, offering precise control and feedback mechanisms for targeted treatments. This review explores the intersection of nanotechnology and thermal therapy, focusing on the utilization of nanoparticles for image-guided interventions and temperature monitoring. Starting with an exploration of local temperature dynamics compared to whole-body responses, we delve into the landscape of nanomaterials and their pivotal role in nanomedicine. Various physical stimuli employed in therapy and imaging are scrutinized, laying the foundation for nanothermal therapies and the accompanying challenges. A comprehensive analysis of nanomaterial architecture ensues, delineating the functionalities of magnetic, plasmonic, and luminescent nanomaterials within the context of thermal therapies. Nano-design intricacies, including core–shell structures and monodisperse properties, are dissected for their impact on therapeutic efficacy. Furthermore, considerations in designing in vivo nanomaterials, such as hydrodynamic radii and core sizes at sub-tissue levels, are elucidated. The review then delves into specific modalities of thermally induced therapy, including magnetically induced hyperthermia and luminescent-based thermal treatments. Magnetic hyperthermia treatment is explored alongside its imaging and relaxometric properties, emphasizing the implications of imaging formulations on biotransformation and biodistribution. This review also provides an overview of the magnetic hyperthermia treatment using magnetic nanoparticles to induce localized heat in tissues. Similarly, optical and thermal imaging techniques utilizing luminescent nanomaterials are discussed, highlighting their potential for light-induced thermal therapy and cellular-level temperature monitoring. Finally, the application landscape of diagnosis and photothermal therapy (PTT) is surveyed, encompassing diverse areas such as cancer treatment, drug delivery, antibacterial therapy, and immunotherapy. The utility of nanothermometers in elucidating thermal relaxation dynamics as a diagnostic tool is underscored, alongside discussions on PTT hyperthermia protocols. Moreover, the advancements in nanoparticle magnetic imaging and implications of imaging formulations especially in creating positive MRI contrast agents are also presented. This comprehensive review offers insights into the evolving landscape of nanoparticle-based image-guided thermal therapies, promising advancements in precision medicine and targeted interventions, underscoring the importance of continued research in optimization for the full potential of magnetic hyperthermia to improve its efficacy and clinical translation.
期刊介绍:
Journal of Materials Chemistry A, B & C cover high quality studies across all fields of materials chemistry. The journals focus on those theoretical or experimental studies that report new understanding, applications, properties and synthesis of materials. Journal of Materials Chemistry A, B & C are separated by the intended application of the material studied. Broadly, applications in energy and sustainability are of interest to Journal of Materials Chemistry A, applications in biology and medicine are of interest to Journal of Materials Chemistry B, and applications in optical, magnetic and electronic devices are of interest to Journal of Materials Chemistry C.Journal of Materials Chemistry B is a Transformative Journal and Plan S compliant. Example topic areas within the scope of Journal of Materials Chemistry B are listed below. This list is neither exhaustive nor exclusive:
Antifouling coatings
Biocompatible materials
Bioelectronics
Bioimaging
Biomimetics
Biomineralisation
Bionics
Biosensors
Diagnostics
Drug delivery
Gene delivery
Immunobiology
Nanomedicine
Regenerative medicine & Tissue engineering
Scaffolds
Soft robotics
Stem cells
Therapeutic devices