Lee Sangkyu, Seong Duhwan, Yoon Jiyong, Lee Sungjun, Baac Hyoung Won, Lee Deukhee, Son Donghee
Department of Electrical and Computer Engineering, Sungkyunkwan University, Suwon 16419, Korea.
Center for Bionics of Biomedical Research Institute, Korea Institute of Science and Technology, Seoul 02792, Korea.
Micromachines (Basel). 2020 Feb 13;11(2):194. doi: 10.3390/mi11020194.
Augmented reality (AR) surgical navigation systems have attracted considerable attention as they assist medical professionals in visualizing the location of ailments within the human body that are not readily seen with the naked eye. Taking medical imaging with a parallel C-shaped arm (C-arm) as an example, surgical sites are typically targeted using an optical tracking device and a fiducial marker in real-time. These markers then guide operators who are using a multifunctional endoscope apparatus by signaling the direction or distance needed to reach the affected parts of the body. In this way, fiducial markers are used to accurately protect the vessels and nerves exposed during the surgical process. Although these systems have already shown potential for precision implantation, delamination of the fiducial marker, which is a critical component of the system, from human skin remains a challenge due to a mechanical mismatch between the marker and skin, causing registration problems that lead to poor position alignments and surgical degradation. To overcome this challenge, the mechanical modulus and stiffness of the marker patch should be lowered to approximately 150 kPa, which is comparable to that of the epidermis, while improving functionality. Herein, we present a skin-conformal, stretchable yet breathable fiducial marker for the application in AR-based surgical navigation systems. By adopting pore patterns, we were able to create a fiducial marker with a skin-like low modulus and breathability. When attached to the skin, the fiducial marker was easily identified using optical recognition equipment and showed skin-conformal adhesion when stretched and shrunk repeatedly. As such, we believe the marker would be a good fiducial marker candidate for patients under surgical navigation systems.
增强现实(AR)手术导航系统已引起了广泛关注,因为它们能帮助医疗专业人员可视化人体内部肉眼难以看到的疾病位置。以使用平行C形臂(C臂)进行医学成像为例,手术部位通常通过光学跟踪设备和基准标记进行实时定位。然后,这些标记通过指示到达身体受影响部位所需的方向或距离,来引导使用多功能内窥镜设备的操作人员。通过这种方式,基准标记可用于在手术过程中精确保护暴露的血管和神经。尽管这些系统已显示出精确植入的潜力,但由于标记与皮肤之间存在机械不匹配,作为系统关键组件的基准标记从人体皮肤上分层仍然是一个挑战,这会导致配准问题,进而导致位置对准不佳和手术效果下降。为了克服这一挑战,应将标记贴片的机械模量和刚度降低至约150 kPa,这与表皮的模量相当,同时提高其功能性。在此,我们展示了一种用于基于AR的手术导航系统的贴合皮肤、可拉伸且透气的基准标记。通过采用孔隙图案,我们能够制造出具有类似皮肤的低模量和透气性的基准标记。当附着在皮肤上时,该基准标记很容易被光学识别设备识别,并且在反复拉伸和收缩时显示出与皮肤贴合的附着力。因此,我们认为该标记将是手术导航系统下患者的良好基准标记候选物。