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Plast Reconstr Surg Glob Open
Plast Reconstr Surg Glob Open
GOX
Plastic and Reconstructive Surgery Global Open
2169-7574
Lippincott Williams & Wilkins Hagerstown, MD

GOX-D-24-00597
00034
10.1097/GOX.0000000000006155
3
Letter to the Editor
Intraoperative Near-infrared Spectroscopy Can Predict Skin Flap Necrosis
Shadgan Babak MD, MSc, PhD *†
Butskiy Oleksandr MSc, FRCSC ‡
From the * Department of Orthopaedics, University of British Columbia, Vancouver, British Columbia, Canada
† International Collaborations on Repair Discoveries, Vancouver, British Columbia, Canada
‡ Division of Otolaryngology, Head and Neck Surgery, Department of Surgery, University of British Columbia, Vancouver, British Columbia, Canada.
Babak Shadgan, MD, MSc, PhD, University of British Columbia, Vancouver, British Columbia, Canada, E-mail: Babak.shadgan@ubc.ca, Instagram: shadgan.b
9 2024
10 9 2024
12 9 e6155Copyright © 2024 The Authors. Published by Wolters Kluwer Health, Inc. on behalf of The American Society of Plastic Surgeons.
2024
https://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-Non Commercial-No Derivatives License 4.0 (CCBY-NC-ND), where it is permissible to download and share the work provided it is properly cited. The work cannot be changed in any way or used commercially without permission from the journal.

OPEN-ACCESSTRUE
COUNTRYCANADA
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pmcDear sir,

We have carefully reviewed with interest the article titled “Intraoperative Near-infrared Spectroscopy Can Predict Skin Flap Necrosis” by Hill et al,1 published in Plastic and Reconstructive Surgery Global Open on March 26, 2024.

We acknowledge the importance of investigating a new noninvasive optical technology for early detection of skin flap necrosis, supported by a substantial sample size. We also appreciate the complexities involved in conducting such a study, as we are familiar with the optical technology used in this study and its utilization for the intraoperative assessment of tissue oxygenation.2 Although we found this study engaging and important, we would like to offer some comments and observations. We hope that these observations can be addressed, as the article has the potential to make a valuable contribution to the literature.

The technology used in this study has been misinterpreted. Specifically, Snapshot-NIR should be classified as a near-infrared imaging (NIRI) technique rather than a near-infrared spectroscopy (NIRS) technique. Although both methodologies are based on the same principles of tissue optics, they are different techniques. NIRI, also known as diffuse optical imaging or topography, is a noncontact technique that assesses regional tissue oxygenation (StO2) in superficial layers (up to 2 mm) by calculating NIR light reflection and reconstructing two-dimensional images of the chromophore concentrations in tissue. In contrast, NIRS is a contact technique that evaluates changes in tissue StO2 in deeper layers (up to 20 mm) by calculating NIR light absorption by tissue chromophores.3 Therefore, although we concur with the article’s title indicating that intraoperative NIRS can predict skin flap necrosis, the study utilizes NIRI as the technique.4

The article describes Snapshot as an NIRS device that measures tissue perfusion, which is not an accurate definition. NIRI and NIRS techniques can only measure changes in tissue oxygenation, not tissue perfusion. Tissue perfusion refers to the delivery of blood to a capillary bed in tissue, whereas tissue oxygenation indicates the status of oxygen consumption by tissue cells.5 Although tissue oxygenation is often a good surrogate of tissue perfusion, it may not always hold true, especially in pathological conditions and injured tissues where the correlation between the two parameters may be inconsistent. For example, a flap may have good microvascular blood supply, but the cells within the flap may not be able to efficiently utilize oxygen due to cell damage. In scenarios like these, which are not uncommon in transplant surgery, local perfusion may be sufficient, but tissue oxygenation could be inadequate, potentially compromising tissue viability. Understanding the differences and relationship between tissue perfusion and oxygenation in pathological conditions is highly important, especially in reconstructive surgery, where the use of NIRS and NIRI techniques is increasingly improving the monitoring of flap vitality and function.

In reconstructive surgery, postsurgical care requires reliable techniques for monitoring the hemodynamics and metabolic conditions of reconstructed tissue. This necessitates real-time, continuous monitoring of both local tissue perfusion and oxygenation independently.

We hope addressing these points will enhance the precision and coherence of this valuable article. Thank you for considering our letter.

DISCLOSURE

The authors received a Research Project Grant from the Canadian Institute of Health Research to conduct research titled “Advanced optical monitoring of free tissue transfer hemodynamics” (Application Number: 497249) in 2023.

Published online 10 September 2024.
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REFERENCES

1. Hill WF Kinaschuk K Temple-Oberle C . Intraoperative near-infrared spectroscopy can predict skin flap necrosis. Plast Reconstr Surg Glob Open. 2024;12 :e5669.38533520
2. Khurana A Nguan C Afshar K . Near-infrared imaging for intraoperative evaluation of allograft viability and function in human kidney transplantation. Paper presented at: Proceedings SPIE 12817, Advanced Photonics in Urology 2024, San Francisco, CA, 128170F; April 10, 2024.
3. Wolf M Ferrari M Quaresima V . Progress of near-infrared spectroscopy and topography for brain and muscle clinical applications. J Biomed Opt. 2007;12 :062104.18163807
4. Kagaya Y Miyamoto S . A systematic review of near-infrared spectroscopy in flap monitoring: current basic and clinical evidence and prospects. J Plast Reconstr Aesthet Surg. 2018;71 :246–257.29175135
5. Benedik PS . Monitoring tissue blood flow and oxygenation: a brief review of emerging techniques. Crit Care Nurs Clin North Am. 2014;26 :345–356.25169688
