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Brief Report

A Hypothetical New Challenging Use for Indocyanine Green Fluorescence during Laparoscopic Appendectomy: A Mini-Series of Our Experience and Literary Review

1
Department of General Surgery, “A. Costa” Hospital—Alto Reno Terme, 40046 Bologna, Italy
2
Department of Surgical Sciences, La Sapienza University, 00186 Rome, Italy
3
Sidney Kimmel Medical College, Thomas Jefferson University, Philadelphia, PA 19107, USA
*
Author to whom correspondence should be addressed.
J. Clin. Med. 2023, 12(16), 5173; https://doi.org/10.3390/jcm12165173
Submission received: 21 June 2023 / Revised: 31 July 2023 / Accepted: 7 August 2023 / Published: 8 August 2023
(This article belongs to the Section General Surgery)

Abstract

:
Laparoscopic appendectomy (LA) is a well-standardized surgical procedure, but there are still controversies about the different devices to be used for the appendiceal stump closure and the related postoperative complications. Indocyanine green (ICG) fluorescence angiography (FA) has already been shown to be helpful in elective and emergency surgery, providing intraoperative information on tissue and organ perfusion, thus guiding the surgical decisions and the technical strategies. According to these two aspects, we report a mini-series of the first five patients affected by gangrenous and flegmonous acute appendicitis intraoperatively evaluated with ICG-FA during LA. The patients were admitted to the Emergency Department with an usual range of symptoms for acute appendicitis. The patients were successfully managed by fully LA with the help of a new hypothetical challenging use of ICG-FA.

1. Introduction

Acute appendicitis (AA) is the most common abdominal surgical emergency in the world, and its diagnosis is based on history, physical evaluation, laboratory tests, and imaging [1]. Although increasing evidence suggests that broad-spectrum antibiotics or combination therapy successfully treat uncomplicated acute appendicitis in approximately 70% of patients, LA remains the most common treatment [1]. Specific imaging findings on computed tomography (CT) such as appendicolith, mass effect, and a dilated appendix greater than 13 mm are associated with a higher risk of treatment failure (≈40%) of an antibiotics-first approach; so, in these cases, surgical management should be recommended. Non-surgical management, in selected cases, has an acceptable initial success rate, but almost 38% of therapeutic failure occurs in the first 12 months after the first episode, and patients should be carefully informed. Either appendectomy or antibiotics can be considered first-line therapy [1] in patients without high-risk CT findings.
AA is classified as uncomplicated or complicated: uncomplicated appendicitis is defined by acute appendicitis without clinical or radiographic signs of perforation (inflammatory mass, phlegmon, or abscess), while a complicated one is defined by appendiceal rupture with subsequent abscess or phlegmon formation [2]. Gangrenous appendicitis, even without perforation, is considered subsidiary to having suffered bacterial translocation, and in general terms, the literature considers it a complicated appendicitis.
Indocyanine green (ICG) is a low-risk dye used in medicine and surgery, with multiple applications providing “real-time” images by combining white light (WL) images with fluorescence (near infrared, NIR), which can be used for the identification of anatomical structures and the evaluation of tissues vascularization [3].
In the following sequence of patients, taking into account both the grade of appendicitis, the vascularized base, and the ICG background, “an idea was born”: using indocyanine green fluorescence angiography (ICG-FA) in order to evaluate if the addition of this dye could add some data to improve the surgical management of this common urgent surgery worldwide.

2. Mini-Series and Evolution

Five patients were admitted to the Emergency Department (ED) and were included in this mini-series according to the diagnosis of acute appendicitis.
The socio-demographic characteristics and laboratory tests are collected in Table 1, while the radiological features are collected in Figure 1.
After the evaluation of a general surgeon, all the patients were admitted, and an emergency surgical procedure was recommended. Written informed consent was obtained and antibiotic prophylaxis was given. Laparoscopy was initiated by placing a supraumbilical 12 mm Hasson trocar using an open technique. After pneumoperitoneum induction, two other trocars were placed in the left flank and suprapubic position (10 mm and 5 mm, respectively), with identification of the appendix, cut, and coagulation of the mesoappendix.
Usually, the choice for the device to manage the base of the appendiceal stump is made by the operating surgeon, evaluating the appendicular base.

3. Materials and Methods

We performed a search on PubMed based on the following key words: acute appendicitis, laparoscopic appendectomy, and indocyanine green fluorescence angiography. To the best of our knowledge, we did not find previous publications regarding this specific application for ICG.
Our hypothesis is to explire if ICG-FA during LA, especially for complicated AA, can provide more data about the vascularization of appendicular base and stump, suggesting that, in selected cases, the use of an endo-stapler could be advisable in order to reduce post-operative complications and, first of all, intra-abdominal abscesses (IAA).
All patients were >18 years old, had no allergy to Iodine, and were not in therapy for hyperthyroidism. Written provided informed consent for the use of their data and for the off-label administration of ICG were collected.
The fluorescence is detected using specific cameras that transmit the signal to a monitor; the technical characteristics of the camera used for this study are the NIR/ICG visualization modes with 4K-3D imaging chain.
For all the patients, the first aim of our study was the evaluation of the appendicular bases with ICG-FA before proceeding with resection (Figure 2). Patients received endovenous (ev) administration of ICG according to this dilution: one vial of 25 mg was diluted in 10 cc of saline solution, and 5 cc were given at the first peak between 20 and 40 s. The first infusion was administered to evaluate good blood flow perfusion of the appendix bases once they were completely visualized. Considering that the appendix bases were not gangrenous, such as the cecum, and thanks to this confirmation and integrity after 40–60 s from the infusion of ICG-FA, endo-loop was used in all procedures. The appendicular stump was then dissected 3–5 mm away from cecum.
After the resection, in P3, P4, and P5, the stump was assessed using ICG-FA because of the significant gangrenous grade of these appendicitis (Figure 3). The second aim was therefore to evaluate the appendicular stump with ICG-FA, administrating the remnant 5 cc of solution and waiting for the peak at 20–40 s.
In our patients, good blood tissue perfusion of the stump and of the cecum was confirmed (Figure 4), no futher indication for endostapler was given, and the surgical specimen was then removed in an endo-bag using the 12 mm trocar.
At the end of the procedure, peritoneal lavage was conducted, and an abdominal drain was left in the pelvis. Antibiotic therapy was recommended according to the recent literature [4]. All patients were discharged in good clinical condition.

4. Discussion and Literary Review

ICG is a historical dye and low-risk molecular compound for patients used in different fields of medicine and both elective and emergency surgery that has been around since the mid-1950s [3,5,6,7].
Combined in real-time WL images with fluorescence NIR, ICG provides intraoperative information on blood perfusion and tissue vitality, guiding the successive surgical strategy [8,9].
For several years, in colorectal surgery, ICG showed feasibility and usefulness in the intraoperative assessment of vascular anastomotic perfusion, leading, if necessary, to changing the site of resection and/or anastomosis, thus reducing the anastomotic leak (AL) rate [10,11]. Consequently, the outcome and patients‘ safety improve, also decreasing the need for surgical reintervention for anastomotic leaks [12,13].
Also, in emergency intestinal surgery (for example, acute mesenteric ischemia, strangulated ileus, and incarcerated hernia), ICG-FA demonstrated a role in preventing undue intestinal resection or its entity, facilitating the identification of the intestinal ischemic zone, detecting the well-perfused intestine, avoiding postoperative complications, and mitigating high mortality rates [14,15,16,17].
Acute appendicitis (AA) is one of the most frequent causes of acute abdominal pain and is one of the main indications for urgent surgery worldwide; according to this, appendectomy is a high-volume procedure, and the laparoscopic approach (laparoscopic appendectomy, LA) has shown advantages in terms of clinical results and cost-effectiveness, above all if the endo-loop is used as the device chosen to ligate the appendiceal stump [18,19].
According to the above-mentioned background, we thought of testing intraoperatively a new hypothetical challenging use of ICG-FA for this very widespread emergency surgical procedure, assured by this dye’s safety in colorectal surgery.
As far as we know, there are no published manuscripts or case reports regarding this topic or this new possible use of ICG-FA in the literature.
Our main aims were to evaluate the appendicular base before proceeding with resection and the appendicular stump, to decide whether the use of an endo-stapler could be secondly suggested.
Our patients had no immediate complications after the surgical procedure, and the 30-day follow-up was regular, without wound infections, intra-abdominal post-operative abscesses, or other complications according to the Clavien-Dindo classification [20].
We are aware that our experiment has many limitations, such as the limited number of patients involved and the absence of standardization, but ICG fluorescence could be a useful method to assess stump vascularization, guide the following surgical strategy, and eventually reduce postoperative complications.
We performed a search on PubMed using the following key words: acute appendicitis, laparoscopic appendectomy, indocyanine-green, and fluorescence angiography. To the best of our knowledge, no manuscripts concerning the use of ICG-FA to evaluate vascularization, the trophism of the appendicular basis, or the stump were found regarding this specific application.
We are aware that a randomized pilot study, also considering cost-effectiveness, is mandatory to explore this topic more deeply.

5. Conclusions

Our experiment, even if limited, could suggest that ICG-FA could be one of the decision-making modalities for patients with complicated acute appendicitis to manage the appendicular base and stump with the different devices, reducing the use of endo-staplers in well-selected patients.
We are aware that further studies are necessary.
In our mini-series, no patients developed postoperative complications such as IAA, wound infections, or others. The postoperative course was uneventful. P1 and P2 were discharged on post-operative day (POD) two, while P3, P4, and P5 were discharged on POD three. A 30-day follow-up was performed with these patients without finding any adverse effects.
Larger, further randomized prospective trials are needed to standardize, test, and eventually validate this new technique.

6. Key Messages

  • ICG-FA has feasibility and usefulness in the intraoperative assessment of colorectal and intestinal surgical procedures.
  • ICG-FA could be a useful method for assessing stump vascularization, guiding the following surgical strategy, and eventually reducing postoperative complications.
  • As far as we know, there are no published manuscripts or case reports regarding this topic in the literature or this new possible use of ICG-FA, and larger, further randomized trials are needed.

Author Contributions

Conceptualization, N.Z.; Methodology, N.Z., A.L. and I.R.M.; Investigation, N.Z., M.C. and M.L.G.; Data curation, N.Z.; Writing—original draft, N.Z.; Writing—review & editing, A.L.; Visualization, I.R.M.; Supervision, S.S., V.D., A.M. and G.G.N. All authors have read and agreed to the published version of the manuscript.

Funding

This research received no external funding.

Institutional Review Board Statement

Ethical review and approval were waived for this study due to the fact that this is a first mini-series and we are waiting for the approval number for a larger study.

Informed Consent Statement

Informed consent was obtained from all subjects involved in the study.

Data Availability Statement

At the moment there is not this possibility.

Acknowledgments

Moderate English changes have been edited. We wish to thank Maria Di Matteo for her invaluable support in English editing.

Conflicts of Interest

The authors declare no conflict of interest.

Abbreviations

EDEmergency Department
ICGIndocyanine green
WBCWhite blood cell
CRPC-reactive protein
FAFluorescence angiography
WLWhite light
NIRNear infrared
ALAnastomotic leak
AAAcute appendicitis
LALaparoscopic appendectomy
IAAIntra-abdominal abscess
PODPost-operative day

References

  1. Moris, D.; Paulson, E.K.; Pappas, T.N. Diagnosis and Management of Acute Appendicitis in Adults. JAMA 2021, 326, 2299–2311. [Google Scholar] [CrossRef] [PubMed]
  2. Krzyzak, M.; Mulrooney, S.M. Acute Appendicitis Review: Background, Epidemiology, Diagnosis, and Treatment. Cureus 2020, 12, e8562. [Google Scholar] [CrossRef] [PubMed]
  3. Morales-Conde, S.; Licardie, E.; Alarcón, I.; Balla, A. Indocyanine green (ICG) fluorescence guide for the use and indications in general surgery: Recommendations based on the descriptive review of the literature and the analysis of experience. Cirugía Española 2022, 100, 534–554. [Google Scholar] [CrossRef] [PubMed]
  4. Sartelli, M.; Coccolini, F.; Kluger, Y.; Agastra, E.; Abu-Zidan, F.M.; Abbas, A.E.S.; Ansaloni, L.; Adesunkanmi, A.K.; Atanasov, B.; Augustin, G.; et al. WSES/GAIS/SIS-E/WSIS/AAST global clinical pathways for patients with intra-abdominal infections. World J. Emerg. Surg. 2021, 16, 49. [Google Scholar] [CrossRef] [PubMed]
  5. Reinhart, M.B.; Huntington, C.R.; Blair, L.J.; Heniford, B.T.; Augenstein, V.A. Indocyanine green: Historical context, current applications, and future considerations. Surg. Innov. 2016, 23, 166–175. [Google Scholar] [CrossRef] [PubMed]
  6. Van Manen, L.; Handgraaf, H.J.; Diana, M.; Dijkstra, J.; Ishizawa, T.; Vahrmeijer, A.L.; Mieog, J.S.D. A practical guide for the use of indocyanine green and methylene blue in fuorescence-guided abdominal surgery. J. Surg. Oncol. 2018, 118, 283–300. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  7. Cassinotti, E.; Boni, L.; Baldari, L. Application of indocyanine green (ICG)-guided surgery in clinical practice: Lesson to learn from other organs—An overview on clinical applications and future perspectives. Updat. Surg. 2022, 75, 357–365. [Google Scholar] [CrossRef] [PubMed]
  8. Guerra, F.; Coletta, D.; Greco, P.A.; Eugeni, E.; Patriti, A. The use of indocyanine green fluorescence to define bowel microcirculation during laparoscopic surgery for acute small bowel obstruction. Colorectal Dis. 2021, 23, 2189–2194. [Google Scholar] [CrossRef] [PubMed]
  9. Liot, E.; Assalino, M.; Buchs, N.C.; Schiltz, B.; Douissard, J.; Morel, P.; Ris, F. Does near-infrared (NIR) fluorescence angiography modify operative strategy during emergency procedures? Surg. Endosc. 2018, 32, 4351–4356. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  10. Boni, L.; David, G.; Dionigi, G.; Rausei, S.; Cassinotti, E.; Fingerhut, A. Indocyanine green-enhanced fluorescence to assess bowel perfusion during laparoscopic colorectal resection. Surg. Endosc. 2015, 30, 2736–2742. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  11. Pang, H.Y.; Chen, X.L.; Song, X.H.; Galiullin, D.; Zhao, L.Y.; Liu, K.; Zhang, W.H.; Yang, K.; Chen, X.Z.; Hu, J.K. Indocyanine green fluorescence angiography prevents anastomotic leakage in rectal cancer surgery: A systematic review and meta-analysis. Langenbecks Arch. Surg. 2021, 406, 261–271. [Google Scholar] [CrossRef]
  12. Trastulli, S.; Munzi, G.; Desiderio, J.; Cirocchi, R.; Rossi, M.; Parisi, A. Indocyanine green fluorescence angiography versus standard intraoperative methods for prevention of anastomotic leak in colorectal surgery: Meta-analysis. Br. J. Surg. 2021, 108, 359–372. [Google Scholar] [CrossRef] [PubMed]
  13. Ambe, P.C. Editorial: Increasing patient’s safe in colorectal surgery via real-time bowel perfusion using near infrared ICG fluorescence studies. Front. Surg. 2022, 9, 922090. [Google Scholar] [CrossRef] [PubMed]
  14. Nakashima, K.; Ryu, S.; Okamoto, A.; Hara, K.; Ishida, K.; Ito, R.; Nakabayashi, Y. Intestinal blood flow evaluation using the indocyanine green fluorescence imaging method in a case of incarcerated obturator hernia: A case report. Asian J. Endosc. Surg. 2021, 14, 565–569. [Google Scholar] [CrossRef] [PubMed]
  15. Ryu, S.; Hara, K.; Goto, K.; Okamoto, A.; Kitagawa, T.; Marukuchi, R.; Ito, R.; Nakabayashi, Y. Fluorescence angiography vs. direct palpation for bowel viability evaluation with strangulated bowel obstruction. Langenbeck's Arch. Surg. 2021, 407, 797–803. [Google Scholar] [CrossRef] [PubMed]
  16. Furusawa, K.; Yoshimitsu, M.; Matsukawa, H.; Oi, K.; Yunoki, K.; Tamura, A. Precise diagnosis of acute mesenteric ischemia using indocyanine green imaging prevents small bowel resection: A case report. Int. J. Surg. Case Rep. 2022, 97, 107463. [Google Scholar] [CrossRef] [PubMed]
  17. Nohara, K.; Takemura, N.; Ito, K.; Oikawa, R.; Yagi, S.; Wake, H.; Enomoto, N.; Yamada, K.; Kokudo, N. Bowel perfusion demonstrated using indocyanine green fluorescence imaging in two cases of strangulated ileus. Clin. J. Gastroenterol. 2022, 15, 886–889. [Google Scholar] [CrossRef] [PubMed]
  18. Mönttinen, T.; Kangaspunta, H.; Laukkarinen, J.; Ukkonen, M. Routine use of laparoscopic techniques in daily practice improves outcomes after appendectomy. Eur. J. Trauma. Emerg. Surg. 2022. [Google Scholar] [CrossRef] [PubMed]
  19. Zorzetti, N.; Lauro, A.; Vaccari, S.; Ussia, A.; Brighi, M.; D’andrea, V.; Cervellera, M.; Tonini, V. A systematic review on the cost evaluation of two different laparoscopic surgical techniques among 996 appendectomies from a single center. Updat. Surg. 2020, 72, 1167–1174. [Google Scholar] [CrossRef] [PubMed]
  20. Dindo, D.; Demartines, N.; Clavien, P.-A. Classifcation of surgical complications: A new proposal with evaluation in a cohort of 6336 patients and results of a survey. Ann. Surg. 2004, 240, 205–213. [Google Scholar] [CrossRef] [PubMed]
Figure 1. Radiological features.
Figure 1. Radiological features.
Jcm 12 05173 g001aJcm 12 05173 g001b
Figure 2. Visualization of the appendicular bases with ICG-FA.
Figure 2. Visualization of the appendicular bases with ICG-FA.
Jcm 12 05173 g002aJcm 12 05173 g002bJcm 12 05173 g002c
Figure 3. Intraoperative WL presentation of gangrenous appendicitis in P3, P4, and P5.
Figure 3. Intraoperative WL presentation of gangrenous appendicitis in P3, P4, and P5.
Jcm 12 05173 g003aJcm 12 05173 g003b
Figure 4. Visualization of the appendicular stump with ICG-FA.
Figure 4. Visualization of the appendicular stump with ICG-FA.
Jcm 12 05173 g004aJcm 12 05173 g004b
Table 1. Socio-demographic characteristics.
Table 1. Socio-demographic characteristics.
PatientSexAgeBMILaboratory TestsComorbiditiesEtnicity
P1M20 years24.7WBC 17.14 109/L, CRP 0.08 mg/dLNoCaucasian
P2F18 years29.8WBC 19.55 109/L, CRP 3.52 mg/dLNoCaucasian
P3M79 years27.5WBC 12.23 109/L, CRP 1.79 mg/dLAtrial fibrillation in treatment with new oral anticoagulant; high blood pressureCaucasian
P4M52 years26.8WBC 22.37 109/L, CRP 17.19 mg/dLNoCaucasian
P5M65 years27.9WBC 18.06 109/L, CRP 7.48 mg/dLNoCaucasian
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MDPI and ACS Style

Zorzetti, N.; Lauro, A.; Cuoghi, M.; La Gatta, M.; Marino, I.R.; Sorrenti, S.; D’Andrea, V.; Mingoli, A.; Navarra, G.G. A Hypothetical New Challenging Use for Indocyanine Green Fluorescence during Laparoscopic Appendectomy: A Mini-Series of Our Experience and Literary Review. J. Clin. Med. 2023, 12, 5173. https://doi.org/10.3390/jcm12165173

AMA Style

Zorzetti N, Lauro A, Cuoghi M, La Gatta M, Marino IR, Sorrenti S, D’Andrea V, Mingoli A, Navarra GG. A Hypothetical New Challenging Use for Indocyanine Green Fluorescence during Laparoscopic Appendectomy: A Mini-Series of Our Experience and Literary Review. Journal of Clinical Medicine. 2023; 12(16):5173. https://doi.org/10.3390/jcm12165173

Chicago/Turabian Style

Zorzetti, Noemi, Augusto Lauro, Manuela Cuoghi, Marco La Gatta, Ignazio R. Marino, Salvatore Sorrenti, Vito D’Andrea, Andrea Mingoli, and Giuseppe Giovanni Navarra. 2023. "A Hypothetical New Challenging Use for Indocyanine Green Fluorescence during Laparoscopic Appendectomy: A Mini-Series of Our Experience and Literary Review" Journal of Clinical Medicine 12, no. 16: 5173. https://doi.org/10.3390/jcm12165173

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