Medical Ultrasonics Laboratory (MEDUSA), Department of Neuroscience and Biomedical Engineering, Aalto University, 02150, Espoo, Finland.
Electronics Research Laboratory, Department of Physics, University of Helsinki, 00560, Helsinki, Finland.
Sci Rep. 2021 Apr 15;11(1):8234. doi: 10.1038/s41598-021-87303-x.
Despite the ubiquitous use over the past 150 years, the functions of the current medical needle are facilitated only by mechanical shear and cutting by the needle tip, i.e. the lancet. In this study, we demonstrate how nonlinear ultrasonics (NLU) extends the functionality of the medical needle far beyond its present capability. The NLU actions were found to be localized to the proximity of the needle tip, the SonoLancet, but the effects extend to several millimeters from the physical needle boundary. The observed nonlinear phenomena, transient cavitation, fluid streams, translation of micro- and nanoparticles and atomization, were quantitatively characterized. In the fine-needle biopsy application, the SonoLancet contributed to obtaining tissue cores with an increase in tissue yield by 3-6× in different tissue types compared to conventional needle biopsy technique using the same 21G needle. In conclusion, the SonoLancet could be of interest to several other medical applications, including drug or gene delivery, cell modulation, and minimally invasive surgical procedures.
尽管在过去的 150 年中被广泛使用,但目前的医用针的功能仅通过针尖的机械剪切和切割来实现,即柳叶刀。在这项研究中,我们展示了非线性超声(NLU)如何将医用针的功能远远超出其现有能力。发现 NLU 作用局限于针尖附近的 SonoLancet,但效果可延伸至物理针边界几毫米处。对观察到的非线性现象、瞬态空化、流体流、微纳米颗粒和雾化的平移进行了定量表征。在细针活检应用中,与使用相同 21G 针的传统针活检技术相比,SonoLancet 有助于获得组织芯,不同类型的组织中组织产量增加了 3-6×。总之,SonoLancet 可能对其他几种医疗应用感兴趣,包括药物或基因传递、细胞调节和微创手术。