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An Experimental Study on the Apparent Stiffness of Size-Isolated Microbubbles Used for Blood-Brain Barrier Opening Applications

机译:用于血脑屏障开放应用的尺寸隔离微泡表观刚度的实验研究

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In order to fully assess contrast-enhanced acoustic bioeffects in diagnostic and therapeutic applications, the mechanical properties of microbubbles need to be taken into account. In the current study, direct measurements of the microbubble apparent stiffness were performed using atomic force microscopy by applying nanoscale compressions (up to 25 nN/s) on size-isolated, phospholipid-coated microbubbles (diameters between 4-6 and 6-8 μm). The apparent stiffness was found to lie between 4 and 22 mN/m and to decrease exponentially with microbubble size within the diameter range investigated. No cantilever spring constant effect was found on the measured stiffness. The Young's modulus of the size-isolated microbubbles used in our study ranged between 0.4 and 2 MPa. Microstructures on the surface of the microbubbles were found to influence the overall microbubble elasticity. Our results indicated that more detailed theoretical models are needed to account for the size-dependent microbubble mechanical properties in order to accurately predict their acoustic behavior. The findings provided useful insights to control cavitation-induced drug and gene delivery and could be used as part of the framework in studies on the shear stresses induced on the blood vessel walls by the oscillating microbubbles.
机译:为了在诊断和治疗应用中完全评估对比度增强的声学生物效应,需要考虑微泡的机械性能。在目前的研究中,使用原子力显微镜通过在尺寸分离的尺寸分离的磷脂涂覆的微泡(直径为4-6和6-8μm的直径)上使用原子力显微镜进行微泡表观刚度的直接测量。 )。发现表观刚度在4至22mN / m之间,并且在研究的直径范围内用微泡尺寸呈指数下降。在测量的刚度上没有发现悬臂弹簧常量效果。我们研究中使用的尺寸分离微泡的杨氏模量在0.4和2MPa之间。发现微泡表面上的微观结构影响整体微胶质弹性。我们的结果表明,需要更详细的理论模型来考虑依赖于依赖性微泡机械性能,以便准确地预测其声学行为。该研究结果提供了控制空化诱导的药物和基因递送的有用见解,并且可以作为振荡微泡通过振荡微泡在血管壁上诱导的剪切应力的研究的一部分。

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