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Assessment of intratumor non-antibody directed iron oxide nanoparticle hyperthermia cancer therapy and antibody directed IONP uptake in murine and human cells

机译:评估肿瘤内非抗体指导的氧化铁纳米粒子热疗癌症疗法和鼠和人细胞中抗体指导的IONP摄取

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Hyperthermia, as an independent modality or in combination with standard cancer treatments such as chemotherapy and radiation, has been established in vitro and in vivo as an effective cancer treatment. However, despite efforts over the past 25 years, such therapies have never been optimized or widely-accepted clinically. Although methods continue to improve, conventionally-delivered heat (RF, ultrasound, microwave etc) can not be delivered in a tumor selective manner. The development of antibody-targeted, or even nontargeted, biocompatible iron oxide nanoparticles (IONP) now allows delivery of cytotoxic heat to individual cancer cells. Using a murine mouse mammary adenocarcinoma (MTGB) and human colon carcinoma (HT29) cells, we studied the biology and treatment of IONP hyperthermia tumor treatment. Methods: Cancer cells (1 × 10~6) with or without iron oxide nanoparticles (IONP) were studied in culture or in vivo via implanted subcutaneously in female C3H mice, Tumors were grown to a treatment size of 150 mm~3 and tumors volumes were measured using standard 3-D caliper measurement techniques. Mouse tumors were heated via delivery of an alternating magnetic field, which activated the nanoparticles, using a cooled 36 mm diameter square copper tube induction coil which provided optimal heating in 1.5 cm wide region of the coil. The IONPs were dextran coated and had a hydrodynamic radius of approximately 100 nm. For the in vivo studies, intra-tumor, peritumor and rectal (core body) temperatures were continually measured throughout the treatment period. Results: Although some eddy current heating was generated in non-target tissues at the higher field strengths, our preliminary IONP hyperthermia studies show that whole mouse AMF exposure @160 KHz and 400 or 550 Oe, for a 20 minutes (heat-up and protocol heating), provides a safe and efficacious tumor treatment. Initial electron and light microscopic studies {in vitro and in vivo) showed the 100 nm used in our studies are rapidly taken up and retained by the tumor cells. Additional in vitro studies suggest antibodies can significantly enhance the cellular uptake of IONPs.
机译:作为独立形式或与标准癌症治疗方法(如化学疗法和放射疗法)结合使用的高热疗法已在体外和体内确立为一种有效的癌症治疗方法。然而,尽管在过去的25年中做出了努力,但这种疗法从未在临床上得到优化或广泛接受。尽管方法不断改进,但是常规传递的热量(RF,超声,微波等)无法以肿瘤选择性的方式传递。以抗体为目标,甚至是非目标的生物相容性氧化铁纳米粒子(IONP)的发展,现在都可以将细胞毒性热量传递给各个癌细胞。使用鼠类小鼠乳腺腺癌(MTGB)和人结肠癌(HT29)细胞,我们研究了IONP热疗肿瘤治疗的生物学和治疗方法。方法:通过皮下植入雌性C3H小鼠体内或体内研究具有或不具有氧化铁纳米粒子(IONP)的癌细胞(1×10〜6),将肿瘤生长至150 mm〜3的治疗尺寸,并处理肿瘤体积使用标准的3-D卡尺测量技术进行测量。通过冷却的36毫米直径的方形铜管感应线圈,通过交变磁场的传递来加热小鼠肿瘤,该磁场激活纳米颗粒,该感应线圈在线圈的1.5厘米宽区域提供最佳加热。 IONPs是葡聚糖包被的,其流体力学半径约为100 nm。对于体内研究,在整个治疗过程中不断测量肿瘤内,直肠癌和直肠(核心体)的温度。结果:尽管在较高磁场强度下非目标组织中产生了一些涡流加热,但我们的IONP初步热疗研究表明,整个小鼠AMF在160 KHz和400或550 Oe下的暴露时间为20分钟(加热和实验方案)加热),提供了一种安全有效的肿瘤治疗方法。最初的电子和光学显微镜研究(体外和体内)表明,我们的研究中使用的100 nm被肿瘤细胞迅速吸收并保留。其他体外研究表明,抗体可以显着增强IONPs的细胞吸收。

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