Pellow Carly, Jafari Sojahrood Amin, Zhao Xiaoxiao, Kolios Michael C, Exner Agata A, Goertz David E
Sunnybrook Research Institute, Toronto M4N 3M5, Canada.
Department of Physics, Toronto Metropolitan University, Toronto M5B 2K3, Canada.
ACS Nano. 2024 Jan 9;18(1):410-427. doi: 10.1021/acsnano.3c07711. Epub 2023 Dec 26.
Focused ultrasound-stimulated microbubbles can induce blood flow shutdown and ischemic necrosis at higher pressures in an approach termed antivascular ultrasound. Combined with conventional therapies of chemotherapy, immunotherapy, and radiation therapy, this approach has demonstrated tumor growth inhibition and profound synergistic antitumor effects. However, the lower cavitation threshold of microbubbles can potentially yield off-target damage that the polydispersity of clinical agent may further exacerbate. Here we investigate the use of a monodisperse nanodroplet formulation for achieving antivascular effects in tumors. We first develop stable low boiling point monodisperse lipid nanodroplets and examine them as an alternative agent to mediate antivascular ultrasound. With synchronous intravital imaging and ultrasound monitoring of focused ultrasound-stimulated nanodroplets in tumor microvasculature, we show that nanodroplets can trigger blood flow shutdown and do so with a sharper pressure threshold and with fewer additional events than conventionally used microbubbles. We further leverage the smaller size and prolonged pharmacokinetic profile of nanodroplets to allow for potential passive accumulation in tumor tissue prior to antivascular ultrasound, which may be a means by which to promote selective tumor targeting. We find that vascular shutdown is accompanied by inertial cavitation and complex-order sub- and ultraharmonic acoustic signatures, presenting an opportunity for effective feedback control of antivascular ultrasound.
聚焦超声刺激微泡在较高压力下可诱导血流阻断和缺血性坏死,这种方法被称为抗血管超声。与化疗、免疫疗法和放射疗法等传统疗法相结合,该方法已显示出抑制肿瘤生长和显著的协同抗肿瘤作用。然而,微泡较低的空化阈值可能会产生脱靶损伤,而临床制剂的多分散性可能会进一步加剧这种损伤。在此,我们研究使用单分散纳米液滴制剂在肿瘤中实现抗血管作用。我们首先开发出稳定的低沸点单分散脂质纳米液滴,并将其作为介导抗血管超声的替代剂进行研究。通过对肿瘤微脉管系统中聚焦超声刺激的纳米液滴进行同步活体成像和超声监测,我们发现纳米液滴能够触发血流阻断,并且与传统使用的微泡相比,其触发血流阻断的压力阈值更尖锐,伴随的额外事件更少。我们进一步利用纳米液滴较小的尺寸和延长的药代动力学特征,使其在抗血管超声之前有可能被动积聚在肿瘤组织中,这可能是促进选择性肿瘤靶向的一种手段。我们发现血管阻断伴随着惯性空化以及复杂阶次的次谐波和超谐波声学特征,这为抗血管超声的有效反馈控制提供了机会。