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Bioluminescence imaging and two-photon microscopy guided laser ablation of GBM decreases tumor burden

机译:生物发光成像和双光子显微镜引导的GBM激光消融可减轻肿瘤负担

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Brain tumor delineation and treatment are the main concerns of neurosurgeons in neurosurgical operations. Bridging the gap between imaging/diagnosis and treatment will provide great convenience for neurosurgeons. Here, we developed an optical theranostics platform that helps to delineate the boundary and quantitatively analyze glioblastoma multiforms (GBMs) with bioluminescence imaging (BLI) to guide laser ablation, and we imaged the GBM cells with two-photon microscopy (TPM) to visualize the laser ablation zone in vivo . Methods: Laser ablation, using the method of coupled ablated path planning with the guidance of BLI, was implemented in vivo for mouse brain tumors. The mapping relationship between semi-quantitative BLI and the laser ablation path was built through the quantitative tumor burden. The mapping was reflected through coupled ablated path planning. The BLI quantitatively and qualitatively evaluated treatment using laser ablation with the appropriate laser parameters and laser-tissue parameters. These parameters were measured after treatment. Furthermore, histopathological analysis of the brain tissue was conducted to compare the TPM images before and after laser ablation and to evaluate the results of in vivo laser ablation. The local recurrences were measured with three separate cohorts. The weights of all of the mice were measured during the experiment. Results: Our in vivo BLI data show that the tumor cell numbers were significantly attenuated after treatment with the optical theranostics platform, and the delineation of GBM margins had clear views to guide the laser resection; the fluorescence intensity in vivo of GBMs quantitatively analyzed the rapid progression of GBMs. The laser-tissue parameters under guidance of multimodality imaging ranged between 1.0 mm and 0.1 mm. The accuracy of the laser ablation reached a submillimeter level, and the resection ratio reached more than 99% under the guidance of BLI. The histopathological sections were compared to TPM images, and the results demonstrated that these images highly coincided. The weight index and local recurrence results demonstrated that the therapeutic effect of the optical theranostics platform was significant. Conclusion: We propose an optical multimodality imaging-guided laser ablation theranostics platform for the treatment of GBMs in an intravital mouse model. The experimental results demonstrated that the integration of multimodality imaging can precisely guide laser ablation for the treatment of GBMs. This preclinical research provides a possibility for the precision treatment of GBMs. The study also provides some theoretical support for clinical research.
机译:脑肿瘤的描述和治疗是神经外科手术中神经外科医生的主要关注点。缩小影像/诊断与治疗之间的差距将为神经外科医师提供极大的便利。在这里,我们开发了一个光学治疗学平台,该平台有助于划定边界并利用生物发光成像(BLI)来定量分析胶质母细胞瘤多形体(GBM),以指导激光消融,并用双光子显微镜(TPM)对GBM细胞进行成像以可视化体内激光烧蚀区。方法:在BLI的指导下,采用结合消融路径规划的方法对小鼠脑肿瘤进行激光消融。通过定量的肿瘤负荷建立了半定量BLI与激光消融路径之间的映射关系。通过耦合的消融路径计划反映了该映射。 BLI使用具有适当激光参数和激光组织参数的激光烧蚀对治疗进行定量和定性评估。这些参数在治疗后测量。此外,对脑组织进行了组织病理学分析,以比较激光消融前后的TPM图像,并评估体内激光消融的结果。用三个独立的队列测量局部复发。在实验期间测量所有小鼠的体重。结果:我们的体内BLI数据显示,使用光学治疗术平台治疗后,肿瘤细胞数量显着减少,GBM边缘的轮廓清晰可见,可指导激光切除术。 GBMs的体内荧光强度定量分析了GBMs的快速发展。在多模态成像的指导下,激光组织参数范围在1.0毫米至0.1毫米之间。在BLI的指导下,激光消融的准确性达到了亚毫米级,切除率达到了99%以上。将组织病理切片与TPM图像进行比较,结果表明这些图像高度一致。体重指数和局部复发结果证明光学治疗平台的治疗效果显着。结论:我们提出了一种光学多模态成像引导激光消融治疗学平台,用于治疗活体小鼠模型中的GBM。实验结果表明,多模态成像的集成可以精确地指导激光消融治疗GBM。此临床前研究为GBM的精确治疗提供了可能性。该研究还为临床研究提供了一些理论支持。

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