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A precision 3D conformal treatment technique in rats: Application to whole‐brain radiotherapy with hippocampal avoidance

机译:大鼠精密3D全成形治疗技术:应用于海马避免的全脑放射治疗

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Purpose To develop and validate three‐dimensional (3D) conformal hippocampal sparing whole‐brain radiation therapy (HA‐WBRT) for Wistar rats utilizing precision 3D‐printed immobilization and micro‐blocks. This technique paves the way for future preclinical studies investigating brain treatments that reduce neurotoxicity. Methods and materials A novel preclinical treatment planning and delivery process was developed to enable precision 3D conformal treatment and hippocampal avoidance capability for the Xrad 225cx small animal irradiator. A range of conformal avoidance plans were evaluated consisting of equiangularly spaced coplanar axial beams, with plans containing 2, 4, 7, and 8 fields. The hippocampal sparing and coverage of these plans were investigated through Monte Carlo dose calculation (SmART‐Plan Xrad 225cx planning system). Treatment delivery was implemented through a novel process where hippocampal block shapes were computer generated from an MRI rat atlas which was registered to on‐board cone beam CT of the rat in treatment position. The blocks were 3D printed with a tungsten‐doped filament at lateral resolution of 80?μm. Precision immobilization was achieved utilizing a 3D‐printed support system which enabled angled positioning of the rat head in supine position and bite block to improve coverage of the central diencephalon. Treatment delivery was verified on rodent‐morphic Presage ? 3D dosimeters optically scanned at 0.2‐mm isotropic resolution. Biological verification of hippocampal avoidance was performed with immunohistologic staining. Results All simulated plans spared the hippocampus while delivering high dose to the brain (22.5–26.2?Gy mean dose to brain at mean hippocampal dose of 7?Gy). No significant improvement in hippocampal sparing was observed by adding beams beyond four fields. Dosimetric sparing of hippocampal region of the four‐field plan was verified with the Presage ? dosimeter (mean dose?=?9.6?Gy, D100%?=?7.1?Gy). Simulation and dosimeter match at distance‐to‐agreement of 2?mm and dose difference of ±3% at 91.7% gamma passing rate (passing criteria of γ??1). Agreement is less at 1?mm and ±5% at 69.0% gamma passing rate. The four‐field plan was further validated with immunohistochemistry and showed a significant reduction in DNA double‐strand breaks within the spared region compared with whole‐brain irradiated groups ( P ?=?0.021). However, coverage of the whole brain was low at 48.5–57.8% of the volume receiving 30Gy at 7Gy mean hippocampal dose in simulation and 46.7–52.5% in dosimetric measurements. This can be attributed to the shape of the rat hippocampus and the inability of treatment platform to employ non‐coplanar beams. Conclusion A novel approach for conformal microradiation therapy using 3D‐printing technology was developed, implemented, and validated. A workflow was developed to generate accurate 3D‐printed blocks from registered high‐resolution rat MRI atlas structures. Although hippocampus was spared with this technique, whole‐brain target coverage was suboptimal, indicating that non‐coplanar beams and IMRT capability may be required to meet stringent dose criteria associated with current human RTOG trials.
机译:目的要开发和验证三维(3D)共形海马对Wistar大鼠的全脑放射治疗(HA-WBRT)利用精密3D印刷固定和微块。这种技术为未来的临床前研究铺平了调查减少神经毒性的脑治疗的临床前研究。方法和材料开发了一种新型的临床前治疗规划和递送过程,为XRAD 225CX小动物辐照器实现精密3D全成形处理和海马避免能力。评估了一系列共形避免计划,这些避免计划由等式间隔开的共面轴向梁组成,其中包含2,4,7和8个字段的计划。通过Monte Carlo剂量计算研究了这些计划的海马备用和覆盖范围(智能计划XRAD 225CX规划系统)。通过新的方法实施处理递送,其中海马块形状是从MRI大鼠地图集的计算机产生的计算机,该计算机在治疗位置登记到大鼠的车载锥梁CT。该块以横向分辨率为80Ωμm的钨掺杂灯丝。利用3D印刷支撑系统实现精度固定,该3D印刷支撑系统能够使大鼠头部处于仰卧位置和咬合块以改善中央Diencephalon的覆盖率的倾斜定位。治疗递送在啮齿动物的情况下验证? 3D剂量计光学扫描0.2mm各向同性分辨率。用免疫组织染色进行海马避免的生物核实。结果所有模拟计划都备受了海马,同时向大脑提供高剂量(22.5-26.2?Gy平均给脑时为7μmHippomampe剂量为7μlby)。通过在超出四个场的梁中,观察到海马备件的显着改善。验证了四场计划的海马区域的剂量扫描,预测有所了解吗?剂量表(平均剂量?=?9.6?GY,D100%?=?7.1?GY)。模拟和剂量计在距离到达的距离达到2°Mm,剂量差为±3%,γ3%±3%(γ≤1)的通过标准。协议少于1?mm,±5%在69.0%的伽玛通过率。与全脑照射基团相比,用免疫组织化学进一步验证了四场计划,并在粪便区域内的DNA双链断裂显着降低(P?= 0.021)。然而,在7Gy平均海马剂量的体积上的48.5-57.8%的覆盖率低48.5-57.8%,模拟中的78.7-52.5%,剂量测量值46.7-52.5%。这可以归因于大鼠海马的形状以及采用非共面梁的治疗平台的无法永久性。结论开发,实施,验证了一种采用3D印刷技术的全成形微感染治疗的新方法。开发了一种工作流以从已注册的高分辨率RAT MRI图集结构生成精确的3D打印块。尽管用这种技术备受了海马,但全脑目标覆盖率是次优的,表明可能需要非共面光束和IMRT能力来满足与当前人的RTOG试验相关的严格剂量标准。

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