Shahid Labib, Gonzalez-Pereira Juan Pablo, Johnson Cody, Bushman Wade, Roldán-Alzate Alejandro
Department of Mechanical Engineering, University of Wisconsin-Madison, Madison, Wisconsin, USA.
Department of Radiology, University of Wisconsin-Madison, Madison, Wisconsin, USA.
Int J Numer Method Biomed Eng. 2024 Sep;40(9):e3850. doi: 10.1002/cnm.3850. Epub 2024 Jul 15.
Over the last couple of decades, image-based computational fluid dynamics (CFD) has revolutionized cardiovascular research by uncovering hidden features of wall strain, impact of vortices, and its use in treatment planning, as examples, that were simply not evident in the gold-standard catheterization studies done previously. In the work presented here, we have applied magnetic resonance imaging (MRI)-based CFD to study bladder voiding and to demonstrate the feasibility and potential of this approach. We used 3D dynamic MRI to image the bladder and urethra during voiding. A surface mesh processing tool was developed to process the bladder wall prior to executing a wall-motion driven CFD simulation of the bladder and urethra. The obtained flow rate and pressure were used to calculate urodynamic nomograms, which are currently used in the clinical setting to assess bladder voiding dysfunction. These nomograms concluded that our healthy volunteer has an unobstructed bladder and normal contractility. We calculated the work done to void the bladder and propose this as an additional quantitative metric to comprehensively assess bladder function. Further, we discuss the areas that would improve this relatively new methodology of image-based CFD in urodynamics.
在过去几十年里,基于图像的计算流体动力学(CFD)彻底改变了心血管研究,例如揭示了壁应变的隐藏特征、涡旋的影响及其在治疗规划中的应用,而这些在以前的金标准导管插入术研究中根本不明显。在本文介绍的工作中,我们应用基于磁共振成像(MRI)的CFD来研究膀胱排尿,并证明这种方法的可行性和潜力。我们使用三维动态MRI对排尿过程中的膀胱和尿道进行成像。在对膀胱和尿道进行壁运动驱动的CFD模拟之前,开发了一种表面网格处理工具来处理膀胱壁。获得的流速和压力用于计算尿动力学列线图,目前临床中使用该列线图来评估膀胱排尿功能障碍。这些列线图表明我们的健康志愿者膀胱无梗阻且收缩功能正常。我们计算了排空膀胱所做的功,并将其作为一种额外的定量指标来全面评估膀胱功能。此外,我们还讨论了在尿动力学中改进这种相对较新的基于图像的CFD方法的领域。