Fischell Department of Bioengineering, University of Maryland at College Park, College Park, Maryland, USA.
Department of Neurosurgery, University of Maryland School of Medicine, Baltimore, Maryland, USA.
Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2022 Sep;14(5):e1826. doi: 10.1002/wnan.1826. Epub 2022 Jun 23.
Laser interstitial thermal therapy (LITT) guided by magnetic resonance imaging (MRI) is a new treatment option for patients with brain and non-central nervous system (non-CNS) tumors. MRI guidance allows for precise placement of optical fiber in the tumor, while MR thermometry provides real-time monitoring and assessment of thermal doses during the procedure. Despite promising clinical results, LITT complications relating to brain tumor procedures, such as hemorrhage, edema, seizures, and thermal injury to nearby healthy tissues, remain a significant concern. To address these complications, nanoparticles offer unique prospects for precise interstitial hyperthermia applications that increase heat transport within the tumor while reducing thermal impacts on neighboring healthy tissues. Furthermore, nanoparticles permit the co-delivery of therapeutic compounds that not only synergize with LITT, but can also improve overall effectiveness and safety. In addition, efficient heat-generating nanoparticles with unique optical properties can enhance LITT treatments through improved real-time imaging and thermal sensing. This review will focus on (1) types of inorganic and organic nanoparticles for LITT; (2) in vitro, in silico, and ex vivo studies that investigate nanoparticles' effect on light-tissue interactions; and (3) the role of nanoparticle formulations in advancing clinically relevant image-guided technologies for LITT. This article is categorized under: Therapeutic Approaches and Drug Discovery > Nanomedicine for Neurological Disease Implantable Materials and Surgical Technologies > Nanoscale Tools and Techniques in Surgery.
磁共振成像(MRI)引导的激光间质热疗(LITT)是一种治疗脑肿瘤和非中枢神经系统(non-CNS)肿瘤患者的新选择。MRI 引导可精确将光纤放置在肿瘤中,而磁共振测温法可在手术过程中实时监测和评估热剂量。尽管临床结果很有前景,但与脑肿瘤手术相关的 LITT 并发症,如出血、水肿、癫痫发作和邻近健康组织的热损伤,仍然是一个重大问题。为了解决这些并发症,纳米颗粒为精确间质热疗应用提供了独特的前景,可增加肿瘤内的热传递,同时减少对邻近健康组织的热影响。此外,纳米颗粒还可以共递治疗化合物,这些化合物不仅与 LITT 协同作用,还可以提高整体效果和安全性。此外,具有独特光学特性的高效产热纳米颗粒可以通过改进实时成像和热感应来增强 LITT 治疗。这篇综述将重点介绍(1)用于 LITT 的无机和有机纳米颗粒的类型;(2)研究纳米颗粒对光-组织相互作用影响的体外、计算和离体研究;以及(3)纳米颗粒配方在推进与临床相关的基于图像引导的 LITT 技术中的作用。本文属于以下类别:治疗方法和药物发现 > 神经疾病的纳米医学 可植入材料和手术技术 > 手术中的纳米尺度工具和技术。