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一种用于体内骨重塑应用的植入式磁性微流泵。

An Implanted Magnetic Microfluidic Pump for In Vivo Bone Remodeling Applications.

作者信息

Chen Ziyu, Noh Sunggi, Prisby Rhonda D, Lee Jeong-Bong

机构信息

Department of Electrical Engineering, The University of Texas at Dallas, Richardson, TX 75080, USA.

Department of Kinesiology, The University of Texas at Arlington, Arlington, TX 76019, USA.

出版信息

Micromachines (Basel). 2020 Mar 13;11(3):300. doi: 10.3390/mi11030300.

Abstract

Modulations of fluid flow inside the bone intramedullary cavity has been found to stimulate bone cellular activities and augment bone growth. However, study on the efficacy of the fluid modulation has been limited to external syringe pumps connected to the bone intramedullary cavity through the skin tubing. We report an implantable magnetic microfluidic pump which is suitable for in vivo studies in rodents. A compact microfluidic pump (22 mm diameter, 5 mm in thickness) with NdFeB magnets was fabricated in polydimethylsiloxane (PDMS) using a set of stainless-steel molds. An external actuator with a larger magnet was used to wirelessly actuate the magnetic microfluidic pump. The characterization of the static pressure of the microfluidic pump as a function of size of magnets was assessed. The dynamic pressure of the pump was also characterized to estimate the output of the pump. The magnetic microfluidic pump was implanted into the back of a Fischer-344 rat and connected to the intramedullary cavity of the femur using a tube. On-demand wireless magnetic operation using an actuator outside of the body was found to induce pressure modulation of up to 38 mmHg inside the femoral intramedullary cavity of the rat.

摘要

已发现骨髓腔内流体流动的调节可刺激骨细胞活动并促进骨生长。然而,关于流体调节功效的研究仅限于通过皮肤管道连接到骨髓腔的外部注射泵。我们报告了一种适用于啮齿动物体内研究的植入式磁性微流体泵。使用一组不锈钢模具在聚二甲基硅氧烷(PDMS)中制造了一个带有钕铁硼磁铁的紧凑型微流体泵(直径22毫米,厚度5毫米)。使用一个带有较大磁铁的外部致动器对磁性微流体泵进行无线驱动。评估了微流体泵的静压随磁铁尺寸变化的特性。还对泵的动压进行了表征以估计泵的输出。将磁性微流体泵植入Fischer-344大鼠的背部,并使用一根管子连接到股骨的骨髓腔。发现使用体外致动器进行按需无线磁性操作可在大鼠股骨骨髓腔内诱导高达38 mmHg的压力调节。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/968a/7143022/9f4c500fbba7/micromachines-11-00300-g001.jpg

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