Prophylactic Antibiotic Efficacy and Factors Associated with Surgical Site Infection in Complicated Appendicitis Undergoing Appendectomy: A Systematic Review and Meta-Analysis
Abstract
Introduction: Surgical site infection (SSI) is the leading preventable complication after appendectomy for complicated (gangrenous, perforated, or abscess-forming) appendicitis. Perioperative antibiotic prophylaxis is established; however, whether prolonging postoperative antibiotics adds benefit and which patient- and operation-related factors drive SSI remain contested. We synthesized the efficacy of prolonged versus short-course prophylaxis and the factors associated with SSI.
Methods: Following PRISMA 2020, we searched MEDLINE, Embase, and CENTRAL to July 2026 for studies of patients undergoing appendectomy for complicated appendicitis that reported SSI. Randomized and cohort studies comparing short versus extended postoperative antibiotics were pooled as risk ratios (RR); adjusted odds ratios (OR) for factors associated with SSI were pooled by inverse-variance random-effects (DerSimonian–Laird) models. Heterogeneity (I²), prediction intervals, leave-one-out analyses, and Egger's test were assessed.
Results: Eleven studies (4,135 patients) were included in the analysis. Prolonging antibiotics beyond a short course did not reduce incisional SSI (randomized trials: RR 1.91, 95% CI 0.90–4.03; all studies: RR 1.12, 95% CI 0.54–2.36, I²=34%) or intra-abdominal abscesses (RR 1.00, 95% CI 0.71–1.42, I²=0%). Three factors were independently associated with SSI: complicated/perforated pathology (OR 4.75, 95% CI 2.81–8.04), open versus laparoscopic approach (OR 2.41, 95% CI 1.22–4.77), and prolonged operative duration (OR 2.68, 95% CI 1.75–4.11).
Conclusion: Prophylaxis is essential in complicated appendicitis, but it need not be prolonged; extending beyond a course does not reduce SSI or intra-abdominal abscesses, supporting stewardship. The SSI burden reflects disease severity, open approach, and prolonged operations, guiding risk-adapted prevention over longer courses.
Keywords: Complicated Appendicitis, Appendectomy, Surgical Site Infection, Antibiotic Prophylaxis, Antimicrobial Stewardship, Meta-Analysis
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- 1. Ferris M, Quan S, Kaplan BS, et al. The global incidence of appendicitis: a systematic review of population-based studies. Ann Surg. 2017;266(2):237–241.PubMedGoogle Scholar
- 2. Bhangu A, Søreide K, Di Saverio S, Assarsson JH, Drake FT. Acute appendicitis: modern understanding of pathogenesis, diagnosis, and management. Lancet. 2015;386(10000):1278–1287.PubMedGoogle Scholar
- 3. Di Saverio S, Podda M, De Simone B, et al. Diagnosis and treatment of acute appendicitis: 2020 update of the WSES Jerusalem guidelines. World J Emerg Surg. 2020;15(1):27.PubMedGoogle Scholar
- 4. Andersen BR, Kallehave FL, Andersen HK. Antibiotics versus placebo for prevention of postoperative infection after appendicectomy. Cochrane Database Syst Rev. 2005;(3):CD001439.PubMedGoogle Scholar
- 5. de Wijkerslooth EML, Boerma EG, van Rossem CC, et al. 2 days versus 5 days of postoperative antibiotics for complex appendicitis: a pragmatic, open-label, multicentre, non-inferiority randomised trial (APPIC). Lancet. 2023;401(10374):366–376.PubMedGoogle Scholar
- 6. Ramson DM, Gao H, Penny-Dimri JC, et al. Duration of post-operative antibiotic treatment in acute complicated appendicitis: systematic review and meta-analysis. ANZ J Surg. 2021;91(7-8):1397–1404.PubMedGoogle Scholar
- 7. Saar S, Mihnovitš V, Lustenberger T, et al. Twenty-four hour versus extended antibiotic administration after surgery in complicated appendicitis: a randomized controlled trial. J Trauma Acute Care Surg. 2019;86(1):36–42.PubMedGoogle Scholar
- 8. van Rossem CC, Schreinemacher MHF, van Geloven AAW, Bemelman WA; Snapshot Appendicitis Collaborative Study Group. Antibiotic duration after laparoscopic appendectomy for acute complicated appendicitis. JAMA Surg. 2016;151(4):323–329.PubMedGoogle Scholar
- 9. Taylor E, Dev V, Shah D, Festekjian J, Gaw F. Complicated appendicitis: is there a minimum intravenous antibiotic requirement? A prospective randomized trial. Am Surg. 2000;66(9):887–890.PubMedGoogle Scholar
- 10. Bancke Laverde BL, Maak M, Langheinrich M, et al. Antibiotic treatment after appendectomy for acute complicated appendicitis to prevent intra-abdominal abscess and wound infections. Langenbecks Arch Surg. 2024;409(1):180.PubMedGoogle Scholar
- 11. Giesen LJX, van den Boom AL, van Rossem CC, den Hoed PT, Wijnhoven BPL. Retrospective multicenter study on risk factors for surgical site infections after appendectomy for acute appendicitis. Dig Surg. 2017;34(2):103–107.PubMedGoogle Scholar
- 12. Fayraq A, Alzahrani SA, Alsayaf Alghamdi AG, Alzhrani SM, Alghamdi AA, Abood HB. Risk factors for post-appendectomy surgical site infection in laparoscopy and laparotomy: a retrospective cohort study. Cureus. 2023;15(8):e44237.PubMedGoogle Scholar
- 13. Alyhari Q, Marzah S, Ghabisha S, et al. A retrospective cohort study on postoperative surgical site infections following open appendectomy: predictive factors and development and validation of a risk prediction model. Cureus. 2025;17(6):e85697.PubMedGoogle Scholar
- 14. Page MJ, McKenzie JE, Bossuyt PM, et al. The PRISMA 2020 statement: an updated guideline for reporting systematic reviews. BMJ. 2021;372:n71.PubMedGoogle Scholar
- 15. Sterne JAC, Savović J, Page MJ, et al. RoB 2: a revised tool for assessing risk of bias in randomised trials. BMJ. 2019;366:l4898.PubMedGoogle Scholar
- 16. DerSimonian R, Laird N. Meta-analysis in clinical trials. Control Clin Trials. 1986;7(3):177–188.PubMedGoogle Scholar
- 17. IntHout J, Ioannidis JPA, Rovers MM, Goeman JJ. Plea for routinely presenting prediction intervals in meta-analysis. BMJ Open. 2016;6(7):e010247.PubMedGoogle Scholar
- 18. Egger M, Davey Smith G, Schneider M, Minder C. Bias in meta-analysis detected by a simple, graphical test. BMJ. 1997;315(7109):629–634.PubMedGoogle Scholar
- 19. Sawyer RG, Claridge JA, Nathens AB, et al. Trial of short-course antimicrobial therapy for intraabdominal infection (STOP-IT). N Engl J Med. 2015;372(21):1996–2005.PubMedGoogle Scholar
- 20. Noorit P, Siribumrungwong B, Thakkinstian A. Clinical prediction score for superficial surgical site infection after appendectomy in adults with complicated appendicitis. World J Emerg Surg. 2018;13:23.PubMedGoogle Scholar
- 21. Kamath R, Kumar AS, Bari T, et al. Risk factors for surgical site infections after paediatric appendectomies in a tertiary care teaching hospital in coastal Karnataka. F1000Res. 2025;14:565.PubMedGoogle Scholar
- 22. Thapa B, Sutanto E, Bhandari R. Thickness of subcutaneous fat is a risk factor for incisional surgical site infection in acute appendicitis surgery: a prospective study. BMC Surg. 2021;21:4.PubMedGoogle Scholar
- 23. Daskalakis K, Juhlin C, Påhlman L. The use of pre- or postoperative antibiotics in surgery for appendicitis: a systematic review. Scand J Surg. 2014;103(1):14–20.PubMedGoogle Scholar
- 24. Rushing A, Bugaev N, Jones C, et al. Management of acute appendicitis in adults: a practice management guideline from the Eastern Association for the Surgery of Trauma. J Trauma Acute Care Surg. 2019;87(1):214–224.PubMedGoogle Scholar
- 25. van den Boom AL, de Wijkerslooth EML, Wijnhoven BPL. Systematic review and meta-analysis of postoperative antibiotics for patients with a complex appendicitis. Dig Surg. 2020;37(2):101–110.PubMedGoogle Scholar
- 26. Kwak HD, Ju JK. Efficacy of intra-abdominal drainage in patients with perforated appendicitis: a systematic review and meta-analysis. Ann Coloproctol. 2022;38(3):208–216.PubMedGoogle Scholar
- 27. Coccolini F, Improta M, Sartelli M, et al. Acute abdomen in the immunocompromised patient: WSES, SIS-E, WSIS, AAST, and GAIS guidelines. World J Emerg Surg. 2021;16(1):40.PubMedGoogle Scholar
- 28. Foster D, Kethman W, Cai LZ, Weiser TG, Forrester JD. Surgical site infections after appendectomy performed in low and middle human development-index countries: a systematic review. Surg Infect (Larchmt). 2018;19(3):237–244.PubMedGoogle Scholar
- 29. Boomer LA, Cooper JN, Deans KJ, et al. Does delay in appendectomy affect surgical site infection in children with appendicitis? J Pediatr Surg. 2014;49(6):1026–1029.PubMedGoogle Scholar
- 30. Emile SH, Elfeki H, Sakr A, Shalaby M. Post-appendectomy incisional surgical site infection: development and validation of a risk prediction score. Updates Surg. 2021;73(6):2189–2197.PubMedGoogle Scholar
- 31. Xiao Y, Shi G, Zhang J, et al. Surgical site infection after laparoscopic and open appendectomy: a systematic review and meta-analysis. Surg Laparosc Endosc Percutan Tech. 2015;25(6):465–471.PubMedGoogle Scholar
- 32. Sartelli M, Coccolini F, Kluger Y, et al. WSES/GAIS/WSIS/SIS-E/AAST global clinical pathways for patients with intra-abdominal infections. World J Emerg Surg. 2021;16(1):49.PubMedGoogle Scholar
- 33. Hersh AL, Rubin MA, Neuhauser MM, et al. Antimicrobial stewardship in surgery: principles and practice. Infect Control Hosp Epidemiol. 2020;41(6):716–724.PubMedGoogle Scholar
- 34. Higgins JPT, Thompson SG. Quantifying heterogeneity in a meta-analysis. Stat Med. 2002;21(11):1539–1558.PubMedGoogle Scholar
