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Microsurgical free tissue transfers have become the method of choice for reconstructing large defects. A period of ischemia occurs during such free tissue transfers. When this period exceeds the tissue’s tolerance, I/R injury can cause failure of the practiced free flap9. The description of the methodology to develop a cost-effective and translational preclinical model to study I/R injury in reconstructive microsurgery may help lead the study of different compounds to counteract this pathophysiological process.
In the described animal model, after the vascular ligatures were placed and the free flap was raised, no hindlimb blood flow compromises were noted, nor pain or limp. As Kochi et al.10 described, our model also left three collateral routes through intramuscular networks.
Monitoring of free flaps is of major importance11, as salvage is inversely related to the duration between ischemia onset and its clinical recognition. For this purpose, free flaps should be studied intra- and postoperatively.
Intraoperatively, the widely used empty and refill test or the acoustic Doppler enable identification but not quantification of flow presence or absence through an anastomosis12. For this reason, we used transit-time ultrasound technology, a novel method that allows surgeons to quantify the blood flow of microsurgical anastomoses13. In our study, all microsurgical anastomoses were patent after 8 h of ischemic insult as well as at the end of the study. Immediately after the creation of the microsurgical anastomoses, we noted higher blood flow volumes than the minimums recommended in literature8. This predicted good pedicle perfusion at the end of the study, demonstrating that the results were not influenced by the microsurgical technique but rather by the I/R injury cascade of events. However, this technique is not free of limitations. To obtain reliable results, the microsurgical probes must be held neutral to the plane of the vessel, not pulling it or creating any tension. A good acoustic coupling is needed to obtain a proper signal, which can be achieved using ultrasonic gel or saline. A high-quality coupling signal, provided by the equipment, is an important parameter to consider during the measurements.
We have used LASCA, also known as laser speckle contrast imaging or laser speckle imaging, postoperatively14. This technology represents a valuable technique for semi-quantitative real-time mapping of flow within free flaps as verified here. One of the limitations is that the results are provided in arbitrary units and not directly related to actual flow values. In this sense, further research is needed to validate this correlation. Laser Doppler flowmetry is more commonly used but limited by the fact that it only measures perfusion in a single point in the flap, whereas LASCA allows the detection of regional changes in skin perfusion within the flap15. Furthermore, a recent study16 indicated that LASCA may perioperatively predict the regions at high risk of postoperative flap necrosis. Our results suggest that LASCA is a promising technique for the peri- and postoperative monitoring of free flaps.