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Theoretical and experimental investigation of the nonlinear dynamics of nanobubbles excited at clinically relevant ultrasound frequencies and pressures: The role oflipid shell buckling

机译:在临床相关的超声频率和压力下激发的纳米气泡的非线性动力学的理论和实验研究:脂质壳屈曲的作用

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The usage of microbubbles (MBs) is limited to the blood pool due to their large size yet the detection of biomarkers on tumor cells and effective drug delivery, require MBs to reach the tumor tissue outside of the vasculature. To tackle these problems, nanobubbles (NBs) are proposed as a potential alternative. NBs can pass through submicron blood vessels and extravasate to tissue. Due to their higher number density; higher doses of NBs can be delivered to the target. However, despite their potential, the use of NBs has been limited because of the limited information of their complex dynamics. In this work, we manufactured lipid and surfactant-stabilized C3F8 NBs (mean diameter ~200 nm). NB scattering response was investigated by single bubble scattering experiments with narrowband pulses with 16-55 MHz and acoustic pressure of 0.250-1.5 MPa (Vevo-770 Machine, Fujifilm visualsonics), and in-vivo imaging at 18 MHz and 4% power (Vevo 3100, Fujifilmvisualsonics). The nonlinear response of the NBs was numerically studied by solving the Marmottant model for the US pulses used in the experiments. The results were visualized using the resonance curves and bifurcation diagrams of the oscillations of the NBs versus frequency and pressure. Experimental results demonstrate strong echogenicity of NBs at a frequency range of 10-25 MHz. Single NB experiments suggest that NBs generate strong subharmonic and super harmonic responses even at lower acoustic pressures ~250 kPa. This contradicts the linear theoretical predictions, as the resonance frequency (fr) of the NBs is calculated to be ~130 MHz. Results of numerical simulations show that when the initial surface tension of the NBs is ~<;0.01 N/m, the fr of the NBs rapidly decreases as the acoustic pressure increases. Thus, NBs become active at frequencies below 50 MHz due to the nonlinear behavior of the lipid shell. Bifurcation diagrams confirmed the generation of subharmonics and super harmonics only for NBs which are initially close to the buckling state.
机译:由于微泡(MBs)的尺寸较大,因此其使用仅限于血池,而检测肿瘤细胞上的生物标记物和有效的药物输送则需要MBs到达脉管系统之外的肿瘤组织。为了解决这些问题,提出了纳米气泡(NBs)作为潜在的替代方案。 NB可穿过亚微米级血管并渗入组织。由于其较高的数字密度;更高剂量的NB可以递送至靶标。然而,尽管它们具有潜力,但由于其复杂动态的信息有限,因此其使用受到了限制。在这项工作中,我们制造了脂质和表面活性剂稳定的C3F8 NB(平均直径〜200 nm)。通过单气泡散射实验对NB散射响应进行研究,该实验使用16-55 MHz的窄带脉冲和0.250-1.5 MPa的声压(Vevo-770 Machine,Fujifilm visualsonics),以及在18 MHz和4%功率下的体内成像( Vevo 3100,Fujifilmvisualsonics)。通过求解实验中使用的美国脉冲的Marmottant模型,对NB的非线性响应进行了数值研究。使用共振曲线和NB振荡相对于频率和压力的分叉图将结果可视化。实验结果表明,在10-25 MHz的频率范围内,NB具有很强的回声性。单个NB实验表明,即使在约250 kPa的较低声压下,NB也会产生强大的次谐波和超谐波响应。这与线性理论预测相矛盾,因为计算得出的NB的共振频率(fr)为〜130 MHz。数值模拟结果表明,当NBs的初始表面张力为〜<; 0.01 N / m时,随着声压的增加,NBs的fr迅速减小。因此,由于脂质壳的非线性行为,NB在低于50 MHz的频率下变得活跃。分叉图确认了仅对于最初接近屈曲状态的NB会产生次谐波和超谐波。

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