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35 Enterotomy During Hernia Repair: Prevention and Management
Fig. 35.2 Incidence of enterotomy or bowel resection (EBR) by the type o f hernia repair. Reprinted from Gray SH, Vick CC, Graham LA et al. (2008) Risk of Complications From Enterotomy or Unplanned Bowel Resection During Elective Hernia Repair. Arch Surg 143(6):582–586
373
[ 11 ]. Eighty-one percent of surgeons responding to the survey who were not performing laparo­scopic ventral hernia repair did not anticipate performing this procedure in the future. The sec­ond most common reason that the surgeons did not anticipate performing this procedure in the future was the perceived risk of enterotomy dur­ing laparoscopic ventral hernia repair. Nevertheless, the reported incidence of enterot­omy in laparoscopic ventral hernia repair has been comparable to open ventral hernia repair in independent, prospective, longitudinal noncom­parative studies. In a series of 850 consecutive patients undergoing laparoscopic ventral hernia repair repairs , Heniford et al. reported 10 (1.2%) enterotomies [ 12 ]. This is comparable to the rate of 1.4% reported by Sharma et al. in 2346 patients over a 17-year period [ 13 ]. However, in a meta- analysis of randomized, controlled trials of lapa­roscopic versus open ventral hernia repair, Awaiz et al. revealed a statistically signifi cant increase in “bowel complications” in the laparoscopic group [ 14 ]. However, enterotomies, serosal tears, and postoperative small bowel obstruction were
pooled and reported as “bowel complications,” confounding the actual incidence of enterotomy.
One of the most devastating situations after laparoscopic ventral hernia repair is an unrecog­nized enterotomy or one that occurs in a delayed fashion . It should be noted that this is not exclu­sive to laparoscopic ventral hernia repair. The mortality rate for an unrecognized enterotomy after laparoscopic ventral hernia repair approaches 8% [ 15 ]. An enterotomy most frequently happens during adhesiolysis, although a trocar or access injuries can occur, especially in the re-operative abdomen. The trocar placement strategy is criti­cal in the re-operative abdomen to avoid bowel injury. An ideal location for the initial trocar is in an abdominal quadrant remote from previous sur­gery. An open (Hasson) or closed (Veress) tech­nique is appropriate and the method for placement should be based on the surgeon’s experience. If the optical trocar without Veress insuffl ation is chosen, the access point should be right off the costal margin at the mid-clavicular or anterior axillary lines, away from previous scars/opera­tions. The overwhelming majority of iatrogenic enterotomies occur in the small intestine. An unrec-
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Table 35.1 Adhesion characteristics defined by tenacity, surface area, and ratio of adhesiolysis time to mesh surface area
Adhesion characteristics Score No adhesion 0 Filmy adhesions: viscera/omentum not attached to mesh, disrupted manually 1 Dense adhesion: viscera/omentum attached to mesh requiring blunt dissection
to separate viscera/omentum from mesh Dense adhesion: viscera/omentum attached to mesh requiring sharp dissection
to separate viscera/omentum from mesh Dense adhesion: viscera/omentum entwined to mesh requiring sharp dissection
to separate mesh from abdominal wall, leaving mesh attached to viscera/ omentum
Adhesion surface
Intraperitoneal mesh Adhesion tenacity DualMesh ( n = 14) Composix ( n = 17) Absorbable-barrier-coated mesh ( n = 18) Uncoated macroporous mesh ( n = 12) Biologic mesh ( n = 8)
Reprinted from to intraperitoneal mesh and adhesiolysis-related complications during laparoscopic re-exploration after prior ventral hernia repair. Surg Endosc 24(12):3002–7
Jenkins ED , Yom V , Melman L et al. (2010) Prospective evaluation of adhesion characteristics
2.4 ± 0.6 5.9 ± 1.8 0.14 ± 0.1
3.5 ± 0.6 8.6 ± 1.1 0.36 ± 0.1
3.2 ± 0.5 6.9 ± 2.0 0.21 ± 0.1
3.5 ± 0.9 8.4 ± 1.1 0.38 ± 0.4
2.9 ± 0.4 6.6 ± 1.8 0.33 ± 0.1
area (0–10)
2
3
4
Adhesiolysis time per mesh surface area (min/cm 2 )
B.D. Matthews
ognized enterotomy can occur due to the inherent diffi culty with examining the intestine laparo­scopically if it has moved out of the fi eld of vision. As such, vigilance is paramount. Inspection of the bowel is recommended after initial trocar entry, during adhesiolysis and at the conclusion of adhe­siolysis or the end of the procedure. A delayed enterotomy may be the result of a partial thick­ness injury at the time of laparoscopic adhesioly­sis or the consequences of a thermal injury to the intestine. Electrosurgery or ultrasonic coagulation should be employed judiciously for adhesiolysis and minimized or avoided when the intestine is in close proximity. Maneuvers to enable adhesioly­sis and minimize the risk of enterotomy are described in the Guidelines for Laparoscopic Ventral Hernia Repair from the Society of American Gastrointestinal and Endoscopic Surgeons [ 16 ]. These maneuvers, many funda- mental to laparoscopic surgery, include traction/ counter-traction technique , use of an angled or fl exible laparoscope, alternating the laparoscope among the various ports, improved exposure uti­lizing outside pressure on the abdominal wall for “inline” dissection, meticulous sharp dissection under direct vision, limited use of an energy
source, particularly near the hollow viscera, repo­sitioning/adding ports to maintain appropriate ergonomic position and access to the operative fi eld, use of instruments with appropriate length (as longer instruments are occasionally required to maintain the fulcrum near the middle of the instrument shaft), avoiding too much torque on access ports during critical aspects of the adhe­siolysis, keeping a clear camera image, maintain­ing a conscious vigilance for the mucosa of the gastrointestinal tract (as an enterotomy may only be visible for a fl eeting moment), and mandatory fi nal inspection of the bowel to identify enterotomies.
Management of Enterotomies
There is a general debate about the most appropri­ate management strategy for an enterotomy dur­ing laparoscopic and open ventral hernia repair. This highlights the paucity of evidence-based data to support a preferred approach. In a survey of practicing general surgeons, Adler et al. asked “if you encounter an enterotomy, how would you proceed?” [
11 ]. Only 3% of respondents would
35 Enterotomy During Hernia Repair: Prevention and Management
375
place mesh regardless of the amount of spillage from the gastrointestinal tract while 41% would place mesh only if “minimal” spillage occurred. The majority, 56% of respondents, would not place mesh. If the respondents were to delay the ventral hernia repair, the mean time from the enterotomy would be 4 weeks (range, 3 days–6 months). Regardless of the treatment strategy, the patient should be knowledgeable preoperatively, as part of the informed consent process, of the procedural options and basic decision algorithm for management of an enterotomy. Typically, the hernia sac has not been violated during laparo­scopic adhesiolysis; therefore options exist for staging the ventral hernia repair in 3 months or beyond to avoid a ventral hernia repair in a clean/ contaminated or contaminatied fi eld. This is the most conservative approach and preferable if the enterotomy can be repaired without conversion to open. Nonetheless, this is considered Level 4 evi­dence (expert committee opinions, or clinical experience of respected authorities, or both) in published guidelines for the management of bowel injury during laparoscopic ventral inci­sional hernia repair. In the Guidelines for
Laparoscopic Treatment of Ventral and Incisional Abdominal Wall Hernias , the International
Endohernia Society gives Grade C (low-quality evidence) recommendations for enterotomy man­agement [ 17 ]. The recommendations from the International Endohernia Society include:
1. Conversion to laparotomy is advisable if the surgeon is not profi cient with laparoscopic bowel repair techniques.
2. A primary open repair is advisable in the pres­ence of gross spillage. An open prosthetic repair may be undertaken if conditions remain sterile.
3. A small laparotomy away from the hernia defect may be used to repair a bowel injury and may be followed by continuation of lapa­roscopic ventral hernia repair.
4. If a bowel injury is repaired laparoscopically, laparoscopic ventral hernia repair may be per­formed after an observation period of 3–7 days on intravenous antibiotic therapy if no evidence of infection is observed.
5. A laparoscopic ventral hernia repair may be performed in the event of a bowel injury repaired immediately with minimal spillage, but this option requires experience with laparo­scopic repair of bowel injury.
A staged repair during the index hospitaliza-
tion with a period of observation (3–7 days) on broad spectrum intravenous antibiotics, and return to the operating room for a laparoscopic ventral hernia repair has been described as a successful approach [ 18 ]. The unpredictability of infection- related complications after the 7-day period pres­ents additional risk versus a 3 month or greater interval. Recent published data would support a more conservative management algorithm. In 33 patients who had an inadvertent enterotomy dur­ing laparoscopic ventral hernia repair, Sharma et al. reported 6-month follow-up in 31 patients [ 13 , 19 ]. The additional 2 patients died postopera- tive due to sepsis and multisystem organ failure for a mortality rate of 6% in this cohort. The over­all complication rate was 49%. The most common complications were wound infection (27%), ileus (24%), hernia recurrence (24%), mesh infection (18%), unplanned readmission (18%), and fi stula formation (6%). Additional surgical procedures were required in 55% of these patients within 6 months of the index procedure. As expected, out­comes were worse in patients who had an enter­otomy recognized postoperatively.
In the event the enterotomy occurs during an
open ventral hernia repair or conversion to open is required to repair the intestinal injury or perform a bowel resection and the hernia sac is violated, several options exist for manage­ment of the ventral hernia. If possible, primary repair is a simple option, although the majority of patients will develop a recurrent ventral her­nia. More commonly, surgeons are repairing the hernia using a biologic (allograft or xeno­graft) or absorbable synthetic mesh [ 20 ]. Depending on the complexity of the hernia and the degree of contamination, a retrorectus (Rives-Stoppa) repair, transversus abdominis release (TAR), anterior component release or external oblique aponeurosis release, may be required for re-approximation of the linea alba.
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B.D. Matthews
Outcomes studies describing single-stage repairs utilizing biologics or absorbable syn­thetic mesh for clean- contaminated, contami­nated and infected wounds are limited. The RICH (Repair of Infected and Contaminated Hernias) trial is the only long-term multi­centered, prospective trial to evaluate biologic mesh in CDC Class II–IV wounds [ 21 ]. This prospective trial reported a 66% surgical site occurrence rate and 37% hernia recurrence rate (intention-to-treat) after 2 years follow-up in patients who underwent ventral hernia repair with a non-crosslinked porcine dermis. The recurrence rate in “bridged” ventral hernia repairs was 45%. In addition, location of mesh placement appeared to infl uence recurrence rates with a higher rate of recurrence when the biologic mesh was placed intraperitoneal com­pared to the retrorectus position. In a similar multicentered prospective, longitudinal clinical trial, an absorbable synthetic mesh was evalu­ated in single-staged ventral hernia repair in Class II–III wounds [ 22 ]. The primary endpoint in the COBRA (Complex Open Bioabsorbable Reconstruction of the Abdominal Wall) trial was ventral hernia recurrence. Based on Kaplan-Meier analysis, the overall hernia recurrence rate was 17% at 24 months, almost 20% less than in the RICH trial. Similar to the RICH trial, hernias repaired with intraperito­neal mesh in the COBRA trial had a higher recurrence rate (3.41-fold increase). Although the RICH and COBRA trials describe ventral hernia repair in clean-contaminated and con­taminated wounds, the clinical scenario is dif­ferent from an unanticipated enterotomy during elective ventral hernia repair in a patient with an initial clean wound. Extrapolating data from these trials to an enterotomy during elective ventral hernia repair may not be representative of actual clinical outcomes.
There is an increasing amount of experience with synthetic mesh in clean-contaminated and contaminated wounds. Specifi cally, clinical stud­ies evaluating large pore, reduced weight syn­thetic mesh in clean-contaminated and contaminated ventral hernia repairs have been published. Carbonell et al. reported primary out-
comes of SSI, surgical site occurrence, need for mesh removal, and hernia recurrence in 100 patients with Class II–III wounds undergoing ventral hernia repair with retrorectus mesh place­ment [ 23 ]. The overall incidence of surgical site occurrence was 31%, higher in the contaminated then clean-contaminated cases. The 30-day SSI rate was 14%. The recurrence rate was 7% (inten­tion-to-treat) at mean follow-up of 10.8 ± 9.9 months (range 1–63 months). Mesh removal was required in 4 patients, all due to unrelated explo­rations for anastomotic leaks. The impetus for permanent synthetic mesh is to reduce the recur­rence rate witnessed for biologic and absorbable synthetic mesh and reduce the cost primarily associated with biologic meshes. Carbonell et al. calculated that the overall cost for the 100 pieces of 30 × 30 cm large pore, reduced weight syn­thetic mesh (15 cents/cm 2 ) to repair the ventral hernias was equivalent to the cost of one single piece or biologic mesh ($10,000). Despite the sig­nifi cant potential for reduction in healthcare expenditures with the use of synthetic mesh in these patients, it is off-label to use synthetic mesh in clean-contaminated, contaminated, or infected wounds. In addition, extrapolating data from this clinical trial to an enterotomy during elective ven­tral hernia repair in initially clean wounds may not be representative of actual clinical outcomes.
Conclusions
An inadvertent enterotomy during a laparoscopic or open ventral hernia repair is unavoidable. An enterotomy is associated with an increased risk of wound infections, mesh infections, enterocuta­neous fi stulas, and hernia recurrences. Multiple options exist for management of the ventral her­nia when an enterotomy occurs; however, the management of the enterotomy takes priority. A postoperatively recognized enterotomy increases the mortality rate after ventral hernia repair so attentiveness is paramount throughout the entire procedure. Although certain risk factors associ­ated with an increased risk of enterotomy during ventral hernia repair, such as previous surgical history, previous ventral hernia repair with mesh
35 Enterotomy During Hernia Repair: Prevention and Management
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and in situ intraperitoneal mesh, are identifi able preoperatively, all patients should be advised of the risk of enterotomy and instructed of the basic decision algorithm for management of an enter­otomy during the informed consent process.
References
1. van der Krabben AA, Dijkstra FR, Nieuwenhuijzen M,
et al. Morbidity and mortality of inadvertent enterot­omy during adhesiolysis. Br J Surg. 2000;87:467–71.
2. Igbal CW, Phar TH, Jospeh A, et al. Long-term out-
come of 254 complex incisional hernia repairs using the modifi ed Rives-Stoppa technique. World J Surg. 2007;31(12):2398–404.
3. Salum M, Wexner SD, Nogueras JJ, et al. Does
sodium hyaluronate- and carboxymethylcellulose­based bioresorbable membrane (Seprafi lm) decrease operative time for loop ileostomy closure? Tech Coloproctol. 2006;10(3):187–91.
4. Kumar S, Wong PF, Leaper DJ. Intra-peritoneal pro-
phylactic agents for preventing adhesions and adhe­sive intestinal obstruction after non-gynaecological abdominal surgery. Cochrane Database Syst Rev. 2009;21(1):1–34.
5. ten Broek RPG, van den Beukel BAW, vn Goor
H. Comparison of operative notes with real-time observation of adhesiolysis-related complications during surgery. Br J Surg. 2013;100:426–32.
6. ten Broek R, Schreinemacher M, Jilesen A, et al.
Enterotomy risk in abdominal wall repair: a prospec­tive study. Ann Surg. 2012;256:280–7.
7. Gray SH, Vick CC, Graham LA, et al. Risk of compli-
cations from enterotomy or unplanned bowel resec­tion during elective hernia repair. Arch Surg. 2008;143(6):582–6.
8. Halm JA, de Wall LL, Steyerberg EW, et al.
Intraperitoneal polypropylene mesh hernia repair complicates subsequent abdominal surgery. World J Surg. 2007;31:423–9.
9. Huntington CR, Augenstein VA, Blair LJ et al. (2015)
Inadvertent enterotomy: signifi cant consequences for the open ventral hernia patient. Paper presented at the 1st world conference on abdominal wall hernia sur­gery, Milan, Italy, April 25–29, 2015.
10. Jenkins ED, Yom V, Melman L, et al. Prospective
evaluation of adhesion characteristics to intraperito­neal mesh and adhesiolysis-related complications during laparoscopic re-exploration after prior ventral hernia repair. Surg Endosc. 2010;24(12):3002–7.
11. Adler AC, Adler SC, Livingston EH, et al. Current opinions about laparoscopic incisional hernia repair: a survey of practicing surgeons. Am J Surg. 2007; 194(5):659–62.
12. Heniford BT, Park A, Ramshaw BJ, et al. Laparoscopic repair of ventral hernias nine years’ experience with 850 consecutive hernias. Ann Surg. 2003;238: 391–400.
13. Sharma A, Khullar R, Soni V, et al. Iatrogenic enter­otomy in laparoscopic ventral/incisional hernia repair: a single center experience of 2,346 patients over 17 years. Hernia. 2013;17:581–7.
14. Awaiz A, Rahman F, Hossain MB, et al. Meta- analysis and systematic review of laparoscopic versus open mesh repair for elective incisional hernia. Hernia. 2015.
15. LeBlanc KA, Elieson MJ, Corder JM. Enterotomy and mortality rates of laparoscopic incisional and ven­tral hernia repair: a review of the literature. JSLS. 2007;11:408–14.
16. Earle D, Roth S, Saber A et al (2014) Guidelines for laparoscopic ventral hernia repair. http://www.sages. org/publications/guidelines/guidelines-for-laparoscopic­ventral-hernia-repair.
17. Bittner R, Bingener-Casey J, Dietz U, et al. Guidelines for laparoscopic treatment of ventral and incisional abdominal wall hernias (International Endohernia Society [IEHS])—Part 2. Surg Endosc. 2014;28(2): 353–79.
18. Tintinu AJ, Asonganyi W, Turner PL. Staged laparo­scopic ventral and incisional hernia repair when faced with enterotomy or suspicion of an enterotomy. J Natl Med Assoc. 2012;104(3–4):202–10.
19. Lederman AB, Ramshaw BJ. A short-term delayed approach to laparoscopic ventral hernia when injury is suspected. Surg Innov. 2005;12(1):31–5.
20. Harth KC, Krpata DM, Chawla A, et al. Biologic mesh use practice patterns in abdominal wall recon­struction: a lack of consensus among surgeons. Hernia. 2013;17:13–20.
21. Itani KM, Rosen M, Vargo D, et al. Prospective study of single-stage repair of contaminated hernias using a biologic porcine tissue matrix: the RICH Study. Surgery. 2012;152(3):498–505.
22. Rosen MJ, Carbonell AM, Cobb WS et al. Multicenter, prospective, longitudinal trial evaluating recurrence, surgical site infection and quality of life after contam­inated ventral hernia repair using biosynthetic absorb­able mesh. Paper presented at the 1st world conference on abdominal wall hernia surgery, Milan, Italy, April 25–29, 2015.
23. Carbonell AM, Criss CN, Cobb WS, et al. Outcomes of synthetic mesh in contaminated ventral hernia repairs. J Am Coll Surg. 2013;217:991–8.
Abdominal Wall Surgery
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in the Setting of an Enterocutaneous Fistula: Combined Versus Staged Defi nitive Repair
Michael G. Sarr
Enterocutaneous fi stulas are usually the conse­quence of an intra-abdominal operation gone bad and, as such, are all-too-often accompanied by an incisional hernia, further complica ting an already unpleasant situation for both the patient and sur­geon. Both parties (patient and surgeon) want the fi stula and the hernia fi xed as soon as possible, raising the questions of “How soon can it be done?” and “Please, can we fi x both at the same time?” However, it is important to remember that the basic principles of the management of entero­cutaneous fi stulae, as well as the basic principles of repair of incisional hernias, must be followed and each considered individually. Level 1 evi­dence for the latter topic is absent, as is Level 2 evidence, and much of the discussion on this topic is fi lled with bravado, opinion, and lack of appropriate follow-up [ thing can be done (simultaneous repair of both fi stula and hernia) does not mean it should be done. Failed hernia repairs in this setting will have major consequences. This chapter will address briefl y the preoperative considerations of preparing for the repair of the fi stula and then will address whether a simultaneous or staged DEFINITIVE repair is prudent.
M. G. Sarr , M.D. (*) James C. Masson Professor of Surgery, Department of Surgery, Subspecialty General Surgery , Mayo Clinic , 200 1st St SW , Rochester , MN 55902 , USA
sarr.michael@mayo.edu
e-mail:
1 ]. Just because some-
36
Preoperative Considerations in the Patient with an Enterocutaneous Fistula
Most often, an enterocutaneous or colocutaneous fi stula occurs from a complication of an intraperi­toneal procedure (enteric or colonic anastomosis or unappreciated enterotomy) and is complicated initially by some element of abdominal wall sepsis that disrupts the fascial closure leading to the her­nia. Thus, the clinical situation is often compli­cated by sepsis, nutritional challenges, and abdominal wall infection, colonization, and/or an open wound such as an enteroatmospheric fi stula, each of which will challenge the option of any defi nitive repair of the hernia.
The Basics First
Initially, the focus must be directed at the fi stula from the aspect of a GI surgeon, and not from that of a “herniologist.” One of the best overall discus­sions of the evaluation and approach to the man­agement of enterocutaneous fi stulas was by Visschers and colleagues [ 2 ] who proposed the SOWATS approach : S-sepsis; O-optimization of nutrition; W-wound care; A-anatomy; T-timing of operation; and S-surgical strategy. This approach should be utilized during the three phases of the clinical course of an enterocutaneous fi stula: devel­opment, the early phase, and the late phase [ 3 , 4 ].
Y.W. Novitsky (ed.), Hernia Surgery, DOI 10.1007/978-3-319-27470-6_36
379© Springer International Publishing Switzerland 2016
380
M.G. Sarr
Development : If the fi stula occurs early postop- eratively, immediate reoperation in the fi rst week to 10 days (before the hernia forms) should be consid­ered, provided there was not an extensive adhe­siolysis , because if there was an extensive adhesiolysis, then after the second or third postop­erative day, the bowel will be agglutinated. Most fi stulas, however, become evident later, and reop­eration is not necessarily a consideration.
Early phase : This phase requires the focus to be directed on control of sepsis, nutritional resus­citation, and control of the fi stula; reoperation during this phase is contraindicated.
Late phase : Here the focus should be on the planning for operative repair after adequate mat­uration and resolution of the acute infl ammatory phase, maximizing nutritional resuscitation, and defi nition of all the relevant anatomy.
The GI surgical approach should involve the following points during the early phase (Table
36.1 ). Read all prior operative notes; you will want no surprises in the operating room. Exclude any areas of sepsis; persistent undrained collec­tions can prevent fi stula closure and nutritional
Table 36.1 Surgical principles of evaluation and repair of an enterocutaneous fi stula
Early phase Read and understand all operative notes Exclude undrained sepsis Maximize nutrition Feed the gut whenever possible; re-feed
pancreatobiliary secretions distal to the fi stula
Multidisciplinary approach (in addition to surgeon)
• Nutritionist/dietician
• Psychiatrist—situational depression helped by antidepressant(s)?
• Physical therapist—reverse deconditioned state
• Family support
• Social worker Bag/control the fi stula—consult a trained
enterostomal therapist if any diffi culty Late phase Image all the pertinent gut Defi ne the anatomy—no surprises in the OR! Allow acute/subacute infl ammation to resolve; do
not be bullied into operating too soon Plan the operation; recruit the potential help of a
reconstructive plastic surgeon
resuscitation. Maximize nutrition possibly by feeding (or re-feeding enteric content) distal to the fi stula; enteric feeding is more effective than parenteral feeding and maintains the health, integrity, and function of the distal gut. Involve a multidisciplinary team, including a nutritionist (dietitian or physician), physical therapist, psy­chologist if necessary (patients are often situa­tionally depressed), family/social supports, and, very importantly, an enterostomal therapist if you are having any diffi culty bagging the fi stula [ 1 ]. For the patient, there is nothing worse than an uncontrolled fi stula. And, fi nally, remember TPN can be cycled and given via a backpack to allow increased patient mobility.
The GI approach to the late phase requires experience and a resolute surgeon. Everyone will be pressuring you to operate—the patient, the fam­ily, and all the other physicians who are not sur­geons [ 4 ]! Your goal is to allow the acute/subacute infl ammation to subside. Most fi stulas require 3 months to mature, some 6 months, and some maybe even 12 months. A good barometer of reso­lution of the infl ammation is the ability to “pinch” a skin graft if present or the redness of the primary incision. Remember, many fi stulas occur/reoccur from too early a reoperation. Other considerations involve the nutritional state of the patient, as shown by Visschers et al. [ 2 ]. Optimal outcomes , occur when the patient’s serum albumin is 3.0 g/ dL. Operative planning requires imaging of all parts of the involved gut, especially excluding any distal obstruction. Likewise, the goals of a suc­cessful fi stula repair are careful technique, full mobilization, and coverage of the repair with autogenous tissue; the latter may require assis­tance of a reconstructive plastic surgeon.
Should You Fix the Hernia Concurrently?
Your operative plan should be FIRST to fi x the fi stula—that is the patient’s primary concern! The fi stula takes precedence, while the repair of the hernia should be a somewhat distant second precedence. The decision to repair the abdominal wall hernia should not be infl uenced by emotion,
36 Abdominal Wall Surgery in the Setting of an Enterocutaneous Fistula: Combined…
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381
but rather by good, sound, surgical judgment based on several considerations: patient factors/ nutritional state, local conditions/tissues/risk of infection, confi dence in your repair of the fi stula, size of the defect/need for tissue advancement (components separation), and, in this author’s opinion, whether the patient is a hernia-former which goes hand-in-hand with the latter consid­eration of the need for tissue advancement, because use of a permanent, alloplastic prosthesis classically is contraindicated (although see below—“Use of Permanent Prosthetic Material”).
D e fi nitive Herniorrhaphy at Time of Fistula Repair
Obviously, the worries of any operation involving takedown of an enterocutaneous fi stula are anasto­motic leak and surgical site infection, both of which jeopardize markedly any abdominal wall hernia repair. Takedown of a traumatic enterocuta­neous fi stula in an otherwise healthy, non-mal­nourished, non-obese, 22-year-old male is completely different from an enterocutaneous fi s­tula in an obese, elderly patient in whom the fi stula developed secondary to an unrecognized enterot­omy that occurred during an extensive adhesioly­sis while attempting to repair an abdominal wall hernia or in a patient who is immunosuppressed either from chronic disease/malnutrition, malig­nancy, or because of a prior organ transplantation. The spectrum of clinical presentation of enterocu­taneous fi stulas complicated by concomitant abdominal wall hernias is very broad.
Who are the best candidates for a defi nitive repair concurrently (Table 36.2 ) Note: Just because a defi nitive repair can be done does not mean it should be done. This decision requires non-emotional, good, mature surgical judgment. In addition, there are some senior surgeons who feel that many (perhaps most) abdominal wall hernias complicating an enterocutaneous fi stula should not undergo any complicated defi nitive repair other than a simple autogenous fascia reapproximation. Ideal patients are those lacking any of the underlying risk factors for incisional hernia—obesity, malnutrition, prior incisional
Table 36.2 Who can be considered for simultaneous repair of the abdominal wall hernia?
Small defect allowing primary fascial reapproximation None of the following underlying risk factors for
incisional hernia
• Marked obesity
• Large open wound
• Malnutrition
• Immunosuppressed patient
• Concomitant infected mesh
• Prior incisional hernia
• Smoking Larger defect able to be repaired by components
separation in the ideal patient
• The patient who is not a hernia-former
• Has no malnutrition
• Has good local tissues
a
Taken at a calculated risk, because wound infection will probably lead to fascial breakdown, hernia formation, and a very diffi cult subsequent hernia to repair
a
hernia (i.e., a hernia-former), or signs of local abdominal wall infection, cellulitis, or a large surface area of open wound (that contains bacte­rial colonization). Small defects able to be closed with a primary, autogenous tissue repair are dealt with quite easily by simple reapproximation of the fascia and, should a wound infection occur and develop into another hernia, no loss of abdominal wall tissue has occurred; equally important, a later defi nitive repair has not been jeopardized by lateral dissection. In contrast, when the defect is large, unable to be re­approximated by primary repair, and will require some form of tissue transfer/myocutaneous advancement (components separation) to obtain midline myofascial approximation, very serious pause should be taken. A wound infection would lead to a subsequent hernia that will be very dif­fi cult to repair. Two large series [ 5 , 6 ] of com- bined takedown of fi stulas and components separation techniques describe what in this author’s opinion are unsatisfactory outcomes with rates of recurrent hernias of 21% and 32%, respectively, and recurrent fi stulas of 26% and 20%. Thus, only the low-risk, ideal patients should be considered for takedown of an entero­cutaneous fi stula with simultaneous abdominal
382
M.G. Sarr
wall reconstruction. In this author’s opinion, con­sideration of defi nitive repair by a so-called “tension- free” components separation in a hernia­former should be reconsidered; remember, this repair is an autogenous tissue repair, and the “tension-free” situation is only when the patient is anesthetized and paralyzed–not when the patient coughs, sits up, or strains to have a bowel movement. Use of permanent prosthetic material to reinforce the repair is classically contraindi­cated (see below, “Use of Permanent Prosthetic Material”). The recurrence rate will be very high, and should a surgical site infection occur, the resultant hernia will be extremely diffi cult to repair, because your best option in this high-risk group of patients has already been used—and you have burned your bridges. This group of patients gets one good chance at defi nitive hernia repair (abdominal wall reconstruction), and a staged repair seems most prudent.
Who should not have a defi nitive repair? (Table 36.3 ) By “defi nitive” repair, I mean either a permanent, prosthetic-based incisional hernior­raphy or a true abdominal wall reconstruction requiring myofascial advancement/transfer. Inappropriate candidates include the markedly obese, malnourished, or immunosuppressed patients, those with dirty or open wounds, the chronically ill or markedly deconditioned, those with infected/colonized mesh from a prior abdominal wall herniorraphy, or those with a his­tory of a prior incisional hernia (the “hernia­former”). It should go without saying that a defi nitive repair should not be entertained seri­ously in someone still smoking and especially any form of tissue transfer !
Table 36.3 Who should not have a simultaneous DEFINITIVE hernia repair ?
Dirty wound (subjective observation) Large open area Poor nutrition Large defect “able to be closed” by components
separation in patients with risk factors
• Obesity
• Prior incisional hernia (hernia-formers)
• Concomitant mesh infection?
How to Deal with the Hernia Defect
After takedown of the enterocutaneous fi stula, every attempt should be used to provide two important principles: (1) autogenous, vascular­ized tissue coverage of all anastomoses, and (2) abdominal wall stability, even if only temporary (several weeks to several months). Ideally, pri­mary fascial closure is best and will provide abdominal wall stability; although recurrence of the hernia may be quite high and should be expected in the high-risk patient (hernia-former, malnourished, immunosuppressed, etc.), you provide autogenous coverage and at least tempo­rary abdominal wall stability.
The larger defects unable to be reapproxi­mated present major challenges that are more dif­fi cult. Again, autogenous coverage of the anastomoses is paramount. Input and options from a reconstructive plastic surgeon can really help [ 7 ]. Techniques include omental coverage, mesenteric or serosal coverage from adjacent bowl, or use of the hernia “sac.” On rare occa­sions, a vascularized tissue transfer from the thigh (rectus femoris or gracilis grafts) or back (latissimus dorsi grafts) can provide vascularized tissue cover, but these types of “fl aps” do not pro­vide abdominal wall stability and cannot reach the areas of the abdominal wall cranial to the umbilicus.
Some form of abdominal wall stability is usually necessary to prevent evisceration. In the very unusual patient with a frozen abdomen in whom you can repair the fi stula and provide viable, vascularized coverage of exposed bowel but cannot provide coverage of adhesed bowel not at risk for evisceration, no attempt at span­ning the hernia defect may actually be the best choice. The open wound can then be managed with a wound vac (not directly on bowel, how­ever) or simple dressings with the future aim of placing a skin graft and delaying the hernia repair to the future under ideal conditions (closed epithelialized wound, full nutritional resuscitation, and a planned elective abdominal wall reconstruction) [ 8 ].
Unfortunately, the more common situation is the patient in whom a more extensive adhesioly­sis for fi stula repair results in mobile bowel that
36 Abdominal Wall Surgery in the Setting of an Enterocutaneous Fistula: Combined…
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demands provision of some form of abdominal wall stability. In this situation, the possible solu­tions involve performing a components separa­tion (in the appropriate patient) with a primary autogenous fascial closure, possibly reinforced with a bioprosthesis or synthetic absorbable prosthesis placed as either a sublay or an onlay [ 5 , 6 ]. The concept of performing a components separation, knowing that fascial re- approximation will not be possible but planning on spanning the fascial defect with a bioprosthesis, is not a good option in my opinion, because the likelihood of such bioprosthesis providing a defi nitive repair is highly unlikely [ 9 , 10 ]. Similarly, spanning such a defect with a permanent prosthesis in this type of “contaminated” wound would not be considered standard of care, and also result in violating spaces that may preclude the use of a technique that would be best for a future abdominal wall reconstruction.
In most patients, a better solution would be to accept the idea of not being able to provide a defi nitive repair of the hernia, plan for a staged repair, and to span (patch) the hernia defect with either a bioprosthesis or a synthetic absorbable prosthesis [ 1 , 3 ]. Although adding a components separation would decrease the size of the hernia defect, it will essentially prevent the ability to use this technique of abdominal wall reconstruction to perform a much better, defi nitive repair in the future under elective conditions. Therefore, the goal should be to fi x the primary indication for operation and the major complaints of the patient—i.e., THE FISTULA—and to address the secondary concern—i.e., THE HERNIA—at a later date under elective, non-bacterially con­taminated conditions in a stable, nutritionally optimized patient.
Choice of “temporary,” absorbable prostheses vary considerably with their characteristics [ 3 ]. These bioprostheses are usually constructed from proprietary processes that remove most cells and immunologic epitopes that could cause a true immune response when implanted in humans. The tissues from which these bioprostheses are commonly derived include human cadaveric or porcine dermis, porcine intestinal submucosa, or bovine pericardium. Most of the bioprostheses
are designed biochemically to encourage vascu­lar ingrowth and deposition of native host con­nective tissue. While proprietary claims allege the reproduction of a “functional neo-abdominal wall,” the extent to which this really happens is questionable. These bioprostheses, however, do provide stable, albeit temporary, abdominal wall support (coverage of the intra-abdominal viscera) for 6–12 months before being broken down by host tissues or “stretching.” This time frame allows healing of the fi stula, closure of any skin wounds, nutritional repletion, and reversal of physical deconditioning.
Another option involves the absorbable syn­thetic prostheses, which also provide temporary abdominal wall stability, but generally for a shorter duration than the bioprostheses. The polyglactin meshes are initially permeable (they are meshed) and allow drainage of peritoneal fl uid/transudate for the fi rst 4–7 days, which may be an advantage in selected patients; the bioprostheses are gener­ally considered watertight. The disadvantage of these prostheses is that they are degraded more rapidly and become less stable as an abdominal wall support after 6–8 weeks; thus, these more rapidly absorbed prostheses are used in selected patients who may not need a prolonged abdominal wall support. When these more rapidly absorbable prosthetics are used, the eventual goal is often to skin graft the subsequent wound in 1–2 months. This concept of split- thickness skin grafting [ 8 ] should be evaluated carefully, because although the skin graft will “cover” the wound, the skin graft will also stop further medial wound contrac­ture and will usually delay eventual abdominal wall reconstruction for about 6 months. This 6-month time interval allows the skin graft to mature such that safe excision of the graft is pos­sible (i.e., when the skin graft is “pinchable” meaning that the infl ammatory vascularization response has largely abated).
Several newer synthetic, absorbable prosthe­ses have been developed to last longer and for up to 6–18 months. Again, the manufacturing details of how they are constructed are proprietary, but these prostheses do have their place in selected patients, although long-term clinical experience is still lacking.
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