Department of Agricultural and Biological Engineering, Purdue University, West Lafayette, Indiana, 47907, United States.
Purdue University Center for Cancer Research, West Lafayette, Indiana, 47907, United States.
Sci Rep. 2018 Feb 15;8(1):3112. doi: 10.1038/s41598-018-20363-8.
New intravesical treatment approaches for bladder cancer are needed as currently approved treatments show several side effects and high tumor recurrence rate. Our study used MB49 murine urothelial carcinoma model to evaluate oxygen encapsulated cellulosic nanobubbles as a novel agent for imaging and ultrasound guided drug delivery. In this study, we show that oxygen nanobubbles (ONB) can be propelled (up to 40 mm/s) and precisely guided in vivo to the tumor by an ultrasound beam. Nanobubble velocity can be controlled by altering the power of the ultrasound Doppler beam, while nanobubble direction can be adjusted to different desired angles by altering the angle of the beam. Precise ultrasound beam steering of oxygen nanobubbles was shown to enhance the efficacy of mitomycin-C, resulting in significantly lower tumor progression rates while using a 50% lower concentration of chemotherapeutic drug. Further, dark field imaging was utilized to visualize and quantify the ONB ex vivo. ONBs were found to localize up to 500 µm inside the tumor using beam steering. These results demonstrate the potential of an oxygen nanobubble drug encapsulated system to become a promising strategy for targeted drug delivery because of its multimodal (imaging and oxygen delivery) and multifunctional (targeting and hypoxia programming) properties.
需要新的膀胱内治疗方法来治疗膀胱癌,因为目前批准的治疗方法存在多种副作用和高肿瘤复发率。我们的研究使用 MB49 小鼠尿路上皮癌模型来评估氧包封纤维素纳米气泡作为一种新的成像和超声引导药物输送的试剂。在这项研究中,我们表明,氧纳米气泡(ONB)可以通过超声束被推动(高达 40mm/s)并在体内精确引导至肿瘤。可以通过改变超声多普勒束的功率来控制纳米气泡的速度,而通过改变束的角度可以将纳米气泡的方向调整到不同的期望角度。精确的超声束转向氧纳米气泡显示可以增强丝裂霉素 C 的疗效,从而在使用 50%低浓度化疗药物的情况下,显著降低肿瘤进展率。此外,还利用暗场成像来可视化和量化体外的 ONB。通过转向光束,发现 ONB 可以定位到肿瘤内高达 500µm 的位置。这些结果表明,氧纳米气泡药物包封系统具有成为有前途的靶向药物输送策略的潜力,因为它具有多模态(成像和氧气输送)和多功能(靶向和缺氧编程)特性。