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Photoacoustic technique to measure temperature effects on microbubble viscoelastic properties

机译:光声技术测量温度对微泡粘弹性的影响

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摘要

Phospholipid-coated microbubbles are being developed for several biomedical applications, but little is known about the effect of temperature on the viscoelastic properties of the shell. Here, we report on the use of a photoacoustic technique to study the shell properties of individual microbubbles as a function of temperature. The microbubbles were driven into small-amplitude oscillations by ultrasound waves generated from the absorption of an intensity-modulated infrared laser, and these oscillations were detected by forward-light scattering of a second blue laser. The drive laser modulation frequency was swept to determine the resonant response of 2–4 μm radius microbubbles. Lipid shell elasticity and viscosity were determined by modeling the microbubble response as a linear harmonic oscillator. The results from slow heating showed a linear decrease in elasticity and viscosity between 21 and 53 °C and a corresponding increase in the maximum oscillation amplitude. Rapid heating to 38 °C, on the other hand, showed a transient response in the viscoelastic properties, suggesting shell rupture and reformation during microbubble growth and subsequent dissolution. These effects are important for biomedical applications, which require warming of the microbubbles to body temperature.
机译:磷脂包衣的微泡正在开发用于多种生物医学应用,但是对于温度对壳的粘弹性的影响知之甚少。在这里,我们报道了使用光声技术来研究单个微泡的壳性能随温度的变化。通过吸收强度调制的红外激光产生的超声波,将微气泡驱动为小振幅振荡,并通过第二个蓝色激光的前向光散射检测这些振荡。扫描驱动激光调制频率以确定2–4μm半径的微气泡的共振响应。通过将微泡响应建模为线性谐波振荡器来确定脂质壳的弹性和粘度。缓慢加热的结果表明,弹性和粘度在21至53 C之间线性下降,并且最大振荡幅度相应增加。另一方面,迅速加热到38°C时,显示出粘弹性能的瞬态响应,表明在微泡生长和随后的溶解过程中壳破裂并重新形成。这些作用对于需要将微气泡加热至体温的生物医学应用很重要。

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