Matthew Frain, Nagheme Thomas, Sandra C Yan, Aida Karachi, Farhad Dastmalchi, Ghaidaa Ebrahim, Didier Rajon, Richard Tyc, Catherine Flores, Anjali Chauhan, Elias Sayour, Duane A Mitchell, Frank J Bova, Maryam Rahman
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引用次数: 0
Abstract
Objective: The objective of this study was to develop a murine system for the delivery of laser interstitial thermotherapy (LITT) with probe-based thermometry as a model for human glioblastoma treatment to investigate thermal diffusion in heterogeneous brain tissue.
Methods: First, the tissue heating properties were characterized using a diode-pumped solid-state near-infrared laser in a homogeneous tissue model. The laser was adapted for use with a repurposed stereotactic surgery frame utilizing a micro laser probe and Hamilton syringe. The authors designed and manufactured a stereotactic frame attachment to work as a temperature probe stabilizer. Application of this novel design was used as a precise method for real-time thermometry at known distances from the thermal ablative center mass during murine LITT studies.
Results: Temperature measurements were achieved during LITT that verified the direct thermometry capability of the system without the need for MR-based thermal monitoring. Application of multiple stereotactic design iterations led to an accurately reproducible surgical laser ablation procedure. Histological staining confirmed precise thermal ablation and controllable lesion size based on time and temperature control. Treatment of a syngeneic intracranial glioma model highly resistant to conventional therapy resulted in a modest survival benefit.
Conclusions: The authors have successfully developed a murine model system of LITT with direct in situ thermometry for investigation into the effects of thermal ablation and combinatorial treatments in murine brain tumor models.
研究目的本研究的目的是开发一种小鼠激光间质热疗(LITT)系统,以探针测温法作为人类胶质母细胞瘤治疗模型,研究异质脑组织中的热扩散:方法:首先,在均质组织模型中使用二极管泵浦固体近红外激光对组织加热特性进行表征。利用微型激光探头和汉密尔顿注射器,对激光进行了改装,以便与重新利用的立体定向手术架配合使用。作者设计并制造了一个立体定向框架附件,用作温度探针稳定器。在小鼠 LITT 研究中,应用这种新颖的设计作为一种精确的方法,在距离热烧蚀中心块已知距离处进行实时温度测量:结果:在 LITT 研究中实现了温度测量,验证了该系统的直接测温能力,无需基于磁共振的热监测。多次立体定向设计迭代的应用使手术激光消融过程具有精确的可重复性。组织学染色证实了精确的热消融以及基于时间和温度控制的可控病灶大小。对传统疗法高度耐药的颅内胶质瘤模型进行治疗后,患者的生存率略有提高:作者成功开发了一种具有直接原位测温功能的 LITT 小鼠模型系统,用于研究热消融和组合疗法在小鼠脑肿瘤模型中的效果。