Realtime assessment of vascular occlusion and reperfusion in animal models of intraoperative imaging – a pilot study
Author:
Kandukuri Jayanth1, Jain Aseem1, Karmarkar Parag1, Gadagkar Hrishikesh1, Aberman Harold2, Wang Qihong3, Rege Abhishek1
Affiliation:
1. Vasoptic Medical, Inc. , Columbia , MD , USA 2. Noble Life Sciences, Inc. , Sykesville , MD , USA 3. Department of Pediatrics , University of Maryland School of Medicine , Baltimore , MD , USA
Abstract
Abstract
Objectives
Intraoperative monitoring of blood flow (BF) remains vital to guiding surgical decisions. Here, we report the use of SurgeON™ Blood Flow Monitor (BFM), a prototype system that attaches to surgical microscopes and implements laser speckle contrast imaging (LSCI) to noninvasively obtain and present vascular BF information in real-time within the microscope’s eyepiece.
Methods
The ability of SurgeON BFM to monitor BF status during reversible vascular occlusion procedures was investigated in two large animal models: occlusion of saphenous veins in six NZW rabbit hindlimbs and clipping of middle cerebral artery (MCA) branches in four Dorset sheep brain hemispheres. SurgeON BFM acquired, presented, and stored LSCI-based blood flow velocity index (BFVi) data and performed indocyanine green video angiography (ICG-VA) for corroboration.
Results
Stored BFVi data were analyzed for each phase: pre-occlusion (baseline), with the vessel occluded (occlusion), and after reversal of occlusion (re-perfusion). In saphenous veins, BFVi relative to baseline reduced to 5.2±3.7 % during occlusion and returned to 102.9±14.9 % during re-perfusion. Unlike ICG-VA, SurgeON BFM was able to monitor reduced BFVi and characterize re-perfusion robustly during five serial occlusion procedures conducted 2–5 min apart on the same vessel. Across four sheep MCA vessels, BFVi reduced to 18.6±7.7 % and returned to 120.1±27.8 % of baseline during occlusion and re-perfusion phases, respectively.
Conclusions
SurgeON BFM can noninvasively monitor vascular occlusion status and provide intuitive visualization of BF information in real-time to an operating surgeon. This technology may find application in vascular, plastic, and neurovascular surgery.
Funder
National Institute of Biomedical Imaging and Bioengineering
Publisher
Walter de Gruyter GmbH
Reference41 articles.
1. Nakayama, N, Kuroda, S, Houkin, K, Takikawa, S, Abe, H. Intraoperative measurement of arterial blood flow using a transit time flowmeter: monitoring of hemodynamic changes during cerebrovascular surgery. Acta Neurochir 2001;143:17–24. https://doi.org/10.1007/s007010170133. 2. Yang, B, Yang, O, Guzman, J, Nguyen, P, Crouzet, C, Osann, KE, et al.. Intraoperative, real-time monitoring of blood flow dynamics associated with laser surgery of port wine stain birthmarks. Lasers Surg Med 2015;47:469–75. https://doi.org/10.1002/lsm.22369. 3. Lorenzetti, F, Kuokkanen, H, von Smitten, K, Asko-Seljavaara, S. Intraoperative evaluation of blood flow in the internal mammary or thoracodorsal artery as a recipient vessel for a free TRAM flap. Ann Plast Surg 2001;46:590–3. https://doi.org/10.1097/00000637-200106000-00003. 4. Della Puppa, A, Rossetto, M, Volpin, F, Rustemi, O, Grego, A, Gerardi, A, et al.. Microsurgical clipping of intracranial aneurysms assisted by neurophysiological monitoring, microvascular flow probe, and ICG-VA: outcomes and intraoperative data on a multimodal strategy. World Neurosurg 2018;113:e336–44. https://doi.org/10.1016/j.wneu.2018.02.029. 5. Pasqualin, A, Meneghelli, P, Musumeci, A, Della Puppa, A, Pavesi, G, Pinna, G, et al.. Intraoperative measurement of arterial blood flow in aneurysm surgery. Acta Neurochir Suppl 2018;129:43–52. https://doi.org/10.1007/978-3-319-73739-3_7.
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