Fontana F, Iberite F, Cafarelli A, Aliperta A, Baldi G, Gabusi E, Dolzani P, Cristino S, Lisignoli G, Pratellesi T, Dumont E, Ricotti L
The BioRobotics Institute, Scuola Superiore Sant'Anna, 56127 Pisa, Italy; Department of Excellence in Robotics & AI, Scuola Superiore Sant'Anna, 56127 Pisa, Italy.
IRCCS Istituto Ortopedico Rizzoli, SC Laboratorio di Immunoreumatologia e Rigenerazione Tissutale, 40136 Bologna, Italy.
Ultrasonics. 2021 Sep;116:106495. doi: 10.1016/j.ultras.2021.106495. Epub 2021 Jun 15.
This work aims to describe the development and validation of two low-intensity pulsed ultrasound stimulation systems able to control the dose delivered to the biological target. Transducer characterization was performed in terms of pressure field shape and intensity, for a high-frequency range (500 kHz to 5 MHz) and for a low-frequency value (38 kHz). This allowed defining the distance, on the beam axis, at which biological samples should be placed during stimulation and to exactly know the intensity at the target. Carefully designed retaining systems were developed, for hosting biological samples. Sealing tests proved their impermeability to external contaminants. The assembly/de-assembly time of the systems resulted ~3 min. Time-domain acoustic simulations allowed to precisely estimate the ultrasound beam within the biological sample chamber, thus enabling the possibility to precisely control the pressure to be transmitted to the biological target, by modulating the transducer's input voltage. Biological in vitro tests were also carried out, demonstrating the sterility of the system and the absence of toxic and inflammatory effects on growing cells after multiple immersions in water, over seven days.
这项工作旨在描述两种能够控制输送到生物靶标的剂量的低强度脉冲超声刺激系统的开发与验证。针对高频范围(500kHz至5MHz)和低频值(38kHz),从压力场形状和强度方面对换能器进行了表征。这使得能够确定在刺激过程中生物样品应放置在束轴上的距离,并准确了解靶标的强度。开发了精心设计的固定系统来容纳生物样品。密封测试证明了它们对外部污染物的不渗透性。系统的组装/拆卸时间约为3分钟。时域声学模拟能够精确估计生物样品室内的超声束,从而通过调制换能器的输入电压精确控制传递到生物靶标的压力成为可能。还进行了生物体外测试,证明了该系统的无菌性以及在水中多次浸泡七天后对生长细胞无毒性和炎症影响。