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S. P. Carmichael II and J. S. Roth
Lastly, previously placed mesh is often encountered in the re-operative abdomen.
Its removal should be based upon surgical judgment in the absence of data support­ing universal excision. Placement of new prosthesis in a well-vascularized plane is our guiding principle, which often necessitates excision of prior graft though trans­abdominal approach [27].
References
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up of a randomized controlled trial of suture versus mesh repair of incisional hernia. Ann Surg. 2004;240:578–83; discussion 83–5.
2. Pauli EM, Rosen MJ.Open ventral hernia repair with component separation. Surg Clin North
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I.Related risk factors. Dig Surg. 2003;20:3–9.
4. Cobb WS, Warren JA, Ewing JA, Burnikel A, Merchant M, Carbonell AM.Open retromuscu-
lar mesh repair of complex incisional hernia: predictors of wound events and recurrence. J Am Coll Surg. 2015;220:606–13.
5. Fischer J.Mastery of surgery. 6th ed. Philadelphia, PA: LWW; 2012.
6. Luijendijk RW, Hop WC, van den Tol MP, et al. A comparison of suture repair with mesh
repair for incisional hernia. N Engl J Med. 2000;343:392–8.
7. Usher F, Ochsner J, Tuttle L.Use of marlex mesh in the repair of incisional hernias. Am Surg.
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8. Alexandre JH.The story of EHS-GREPA 1979-2014. Hernia. 2015;19:349–54.
9. Rives J, Lardennois B, Pire JC, Hibon J.Large incisional hernias. The importance of ail abdo-
men and of subsequent respiratory disorders. Chirurgie. 1973;99:547–63.
10. Rives J, Pire JC, Flament JB, Convers G.Treatment of large eventrations (apropos of 133
cases). Minerva Chir. 1977;32:749–56.
11. Stoppa R, Ralaimiaramanana F, Henry X, Verhaeghe P.Evolution of large ventral incisional
hernia repair. The French contribution to a difcult problem. Hernia. 1999;3(1):1–3.
12. Stoppa RE. The treatment of complicated groin and incisional hernias. World J Surg.
1989;13:545–54.
13. Nguyen V, Shestak KC.Separation of anatomic components method of abdominal wall recon-
struction—clinical outcome analysis and an update of surgical modications using the tech­nique. Clin Plast Surg. 2006;33:247–57.
14. Culbertson EJ, Xing L, Wen Y, Franz MG.Reversibility of abdominal wall atrophy and brosis
after primary or mesh herniorrhaphy. Ann Surg. 2013;257:142–9.
15. Binnebosel M, Klink CD, Otto J, et al. Impact of mesh positioning on foreign body reac-
tion and collagenous ingrowth in a rabbit model of open incisional hernia repair. Hernia. 2010;14:71–7.
16. Halm JA, de Wall LL, Steyerberg EW, Jeekel J, Lange JF.Intraperitoneal polypropylene mesh
hernia repair complicates subsequent abdominal surgery. World J Surg. 2007;31:423–9; dis­cussion 30.
17. Wantz GE.Incisional hernioplasty with mersilene. Surg Gynecol Obstet. 1991;172:129–37.
18. Stearns E, Plymale MA, Davenport DL, Totten C, Carmichael SP, Tancula CS, Roth JS.Early outcomes of an enhanced recovery protocol for open repair of ventral hernia. Surg Endosc. 2018;32(6):2914–22. https://doi.org/10.1007/s00464-017-6004-0. Epub 2017 Dec 21. PubMed PMID: 29270803.
19. Fischer JP, Wink JD, Nelson JA, Kovach SJ III.Among 1,706 cases of abdominal wall recon-
struction, what factors inuence the occurrence of major operative complications? Surgery. 2014;155:311–9.
16 Technique: Posterior Rectus Sheath Release
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20. Plymale MA, Ragulojan R, Davenport DL, Roth JS.Ventral and incisional hernia: the cost of
comorbidities and complications. Surg Endosc. 2017;31:341–51.
21. Bauer JJ, Harris MT, Gorne SR, Kreel I.Rives-Stoppa procedure for repair of large incisional
hernias: experience with 57 patients. Hernia. 2002;6:120–3.
22. Schumpelick V, Kingsnorth AN.Incisional hernia. Berlin: Springer; 1999.
23. Mehrabi M, Jangjoo A, Tavoosi H, Kahrom M, Kahrom H.Long-term outcome of rives-stoppa
technique in complex ventral incisional hernia repair. World J Surg. 2010;34:1696–701.
24. Holihan JL, Alawadi ZM, Harris JW, et al. Ventral hernia: patient selection, treatment, and
management. Curr Probl Surg. 2016;53:307–54.
25. Timmermans L, de Goede B, van Dijk SM, Kleinrensink GJ, Jeekel J, Lange JF.Meta-analysis
of sublay versus onlay mesh repair in incisional hernia surgery. Am J Surg. 2014;207:980–8.
26. Venclauskas L, Maleckas A, Kiudelis M.One-year follow-up after incisional hernia treatment:
results of a prospective randomized study. Hernia. 2010;14:575–82.
27. Johnson KC, Miller MT, Plymale MA, Levy S, Davenport DL, Roth JS. Abdominal wall
reconstruction: a comparison of totally extraperitoneal and transabdominal preperitoneal approaches. J Am Coll Surg. 2016;222:159–65.
28. El-Gazzaz GH, Farag SH, El-Sayd MA, Mohamed HH.The use of synthetic mesh in patients
undergoing ventral hernia repair during colorectal resection: risk of infection and recurrence. Asian J Surg. 2012;35:149–53.
29. Gray SH, Vick CC, Graham LA, Finan KR, Neumayer LA, Hawn MT.Risk of complica-
tions from enterotomy or unplanned bowel resection during elective hernia repair. Arch Surg. 2008;143(6):582.
30. Holihan JL, Alawadi Z, Martindale RG, etal. Adverse events after ventral hernia repair: the
vicious cycle of complications. J Am Coll Surg. 2015;221:478–85.
31. Rosen MJ, Krpata DM, Ermlich B, Blatnik JA.A 5-year clinical experience with single-staged
repairs of infected and contaminated abdominal wall defects utilizing biologic mesh. Ann Surg. 2013;257(6):991.
Ventral Abdominal Hernia Repair: Technique—External Oblique Release
MarkW.Clemens andCharlesE.Butler
Introduction
Traditionally, laparotomy closures, large tumor ablations, congenital anomalies, and trauma led to unacceptable rates of ventral hernia and abdominal wall morbid­ity. Primary fascial coaptation and mesh reinforcement of hernia defects have been demonstrated to signicantly reduce both short- and long-term hernia recurrence rates in prospective series. However, wide abdominal defects can present a chal­lenge where fascial approximation is not possible under physiologic tension. In 1990, Ramirez and colleagues introduced the technique of components separation and brought about one of the greater paradigm shifts forward in abdominal wall reconstruction [1]. Components separation exploits the anatomic planes of the abdomen to create musculofascial advancement aps which assists in fascial clo­sure. Long-term outcomes support components separation for maintaining the strength and integrity of the abdominal wall while preserving innervated muscle function without tension [24]. This chapter focuses on planning, techniques, and outcomes of components separation.
17
Indications/Contraindications
Indications for abdominal wall reconstruction are multifactorial and include her­nia tumor ablation, congenital anomalies, and trauma. Proposed risk factors for the development of hernias included tobacco use and a strong family history of hernia, which suggests a genetic predisposition [5]. Studies have suggested that
M. W. Clemens (*) · C. E. Butler Department of Plastic Surgery, MD Anderson Cancer Center, University of Texas, Houston, TX, USA e-mail: mwclemens@mdanderson.org; cbutler@mdanderson.org
© Society of American Gastrointestinal and Endoscopic Surgeons (SAGES) 2019 S. S. Davis Jr. et al. (eds.), The SAGES Manual of Hernia Surgery,
https://doi.org/10.1007/978-3-319-78411-3_17
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M. W. Clemens and C. E. Butler
mechanical strain on load-bearing tissues can induce secondary changes in tissue broblast function that in turn can result in failure of abdominal wall repairs. The general indications for performing a components separation of the abdominal wall include a deciency of the abdominal wall fascia, which would require a bridged repair without fascial release [6]. Components separation is a fascial release of the external oblique fascial with creation of musculofascial advance­ment aps [7]. This creates an autologous ap option for fascial coaptation which is benecial particularly in the presence of mesh reinforcement. Relative contra­indications include lateral abdominal wall hernias patients with ostomies directly in line with a planned components separation. In these situations, a unilateral components separation performed on the contralateral hemi-abdomen may be sufcient to achieve fascial coaptation. It is not possible to perform components separation in patients that have lost the anatomy required for such a fascial release such as complete loss of abdominal tissue which can be seen in pancre­atic stulas or necrotizing soft tissue infections and the anterior abdominal fas­cia. Radiated tissue is not an absolute contraindication but does have higher rates of wound dehiscence, infection, necrosis, and delayed wound healing [8]. Patients with multiple previous abdominal wall surgeries or unclear reconstruc­tive surgical history and anatomy should be approached cautiously [9]. Violation of the rectus complex such as with an ostomy through the rectus abdominis mus­cle, elevation of a transverse rectus abdominis muscle (TRAM) ap or vertical rectus abdominis muscle ap (VRAM) ap does not preclude the use of compo­nents separation [10].
Preoperative Planning
Physical examination should be performed to assess the patient’s general condition, the abdominal wall integrity, the extent and location of any abdominal wall abnor­malities, and the presence of scars that could become an obstacle to raising reliable tissue aps. Routine laboratory tests and a nutritional workup are advised. Correct diagnosis of abdominal wall defects is critical to proper management. Preoperative computed tomography (CT) to examine the defect characteristics, abdominal wall anatomy, and vascularity is helpful for surgical planning [11]. CT scans allow for visualization of intra-abdominal organs, and the abdominal wall, three-dimensional data sets, and multiplanar reformation capabilities. CT scans may assist in detecting uid collections, bowel obstruction, incarceration, strangulation, and traumatic wall hernias. Magnetic resonance (MR) imaging also permits the detection of soft tissue defects and abdominal wall hernias though this modality does not usually offer further sensitivity and therefore may be cost prohibitive. Thromboprophylaxis should be administered based upon a patient’s particular risk for a thrombotic as evaluated by the Caprini risk assessment tool. Prospective randomized controlled data is unavailable regarding routine antibiotic prophylaxis. Most centers including ours regularly prescribe prophylactic antibiotics intraoperatively for all patients. Bowel preps may be benecial in patients with anticipated violation of the gastroin­testinal tract.
17 Ventral Abdominal Hernia Repair: Technique—External Oblique Release
219
Surgery
Preoperative/Markings
Patients should be marked in the preoperative holding area, and it is benecial to evaluate patients in a recombinant and supine position for complete evaluation of abdominal wall defects. The anatomy of the abdominal wall is covered in depth in previous chapters; however the pertinent landmarks are recounted here. Markings may delineate anatomical boundaries such as the pelvis, midline, and costal margin as well as the fascial extent of any intra-abdominal defects. Once the patient is transported to the operative room, they are placed supine on the operative table, sedated, and intubated. Intraoperative intravenous antibiotics are initiated. The abdomen is widely draped and prepped to expose the patient’s anks and from the pelvis to the mid-sternal area. Patients should receive sequential compression devices and or compression hoses for deep vein thrombosis prophylaxis. Patients requiring greater exposure should have room temperatures maintained above 75°F to minimize postoperative infections.
Surgical Technique
Critically important to a hernia repair is the reestablishment of the abdominal domain integrity with complete fascial coaptation. All attempts should be made to avoid a bridged mesh repair because there is a clear association with higher recur­rence rates compared with when the fascia can be reapproximated over a mesh repair. Understanding all of the approaches for abdominal wall reconstruction and particularly myofascial advancement aps is critically important to determine the least invasive procedure to provide a long-lasting repair with an excellent functional outcome for the patient. Ramirez and colleagues’ description of the surgical tech­nique of components separation facilitates medicalization of the rectus musculo­fascia and thus midline abdominal closure by releasing the external oblique aponeuroses and posterior rectus sheath bilaterally [1] (Fig.17.1). Although compo­nents separation will often allow for midline fascial reapproximation, which is the optimal situation, occasionally this will not be possible, particularly for larger her­nias; and the myofascial edges will need to be bridged with mesh. Data have shown that defect size reduction, especially if less than 150cm recurrence rates. There are several other theoretic advantages to reapproximating the linea alba. If one considers the linea alba as the tendinous insertion of the rectus and oblique muscles and borrows from the concepts of tendon repair, then it seems logical that the physiological tension of the abdominal wall should be restored dur­ing ventral incisional hernia repair. Although every attempt to reestablish the mid­line is advisable, accomplishing that goal is not always feasible, and not all patients can tolerate the intraperitoneal compression required (which can result in intraperi­toneal hypertension, pulmonary compromise, or abdominal compartment syn­drome). Once the mesh is inserted peripherally, the midline fascia will be reapproximated, and the mesh and its inset will bear the majority of the tension.
2
, will lead to the lowest
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Inguinal ligament
Skin graft/scar
Healthy edges of
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M. W. Clemens and C. E. Butler
Open Components Separation
Myofascial advancement techniques, or components separation, take advantage of the laminar nature of the abdominal wall and the ability to release one muscular or fascial layer to enable medial advancement of another [12, 13]. If the lateral abdominal com­partment must be released, release can be done by open or minimally invasive compo­nents separation. A minimally invasive components separation can be performed in various ways, but all of the techniques (to a certain degree) maintain the blood supply to the skin from the underlying rectus abdominis muscles [14]. In contrast, an open components separation is performed by raising large subcutaneous aps to expose the external oblique fascia (Fig.17.1). The cutaneous perforators emerging from the ante­rior rectus sheath are ligated and divided to facilitate exposure of the linea semilunaris
remnants
Internal oblique fibers
Costal margin
anterior rectus fascia
Bilateral division of
external oblique fascia
Fig. 17.1 Open component separation. Subcutaneous aps are elevated off the anterior rectus sheath to expose the external oblique aponeurosis. The external oblique aponeurosis is released from the inguinal ligament inferiorly to above the costal margin superiorly. This allows exposure of the internal oblique muscle bers once the external aponeurosis is incised (Adapted with per­mission from Rosen MJ.Atlas of Abdominal Wall Reconstruction, Elsevier 2011)
17 Ventral Abdominal Hernia Repair: Technique—External Oblique Release
221
in its entirety [15]. These aps are carried laterally past the linea semilunaris. This subcutaneous dissection itself can provide some medial advancement of the abdomi­nal wall skin. An anatomically precise external oblique aponeurotomy is made 1–2cm lateral to the linea semilunaris on the lateral aspect of the external oblique aponeurosis from several centimeters above the costal margin to the pubis. It is important to con­rm that the incision is not carried through the linea semilunaris, as this would result in a full-thickness defect of the lateral abdominal wall, which is very challenging to repair. The external oblique aponeurosis is then bluntly separated in the avascular plane away from the internal oblique aponeurosis to the midaxillary line, allowing the internal oblique and transversus abdominis muscles with the rectus abdominis muscle or fascia to advance medially as a unit. These techniques, when performed bilaterally, can yield up to 20cm of mobilization in the mid-abdomen.
Once the mesh inset and fascial closure are performed, the subcutaneous skin aps
are advanced and closed at the midline. To reduce subcutaneous dead space, inter­rupted quilting sutures should be placed between the Scarpa fascia and musculofascial repair. This technique also decreases shear stress, which is thought to contribute to postoperative seroma formation, and decrease the total drain output, allowing the sur­geon to place fewer drains and leave them in for a shorter period. After paramedian skin perfusion is critically assessed, a vertical panniculectomy may be performed so that the skin is reapproximated in the midline without redundancy.
A major limitation of open components separation is the wound morbidity asso-
ciated with the large skin aps necessary to access the lateral abdominal wall. To avoid this morbidity, several reports have described innovative minimally invasive approaches to components separation. These approaches are designed to gain direct access to the lateral abdominal wall without creating large skin aps, creating dead space, or interrupting the primary blood supply to the central abdominal skin by ligation of the rectus abdominis perforator vessels.
Laparoscopic Components Separation
Laparoscopically, components separation is performed through a 1cm incision below the tip of the 11th rib overlying the external oblique muscle (Fig.17.2) [16, 17]. The external oblique muscle is split in the direction of its bers, and a standard bilateral inguinal hernia balloon dissector is placed between the external and internal oblique muscles and directed toward the pubis. Three laparoscopic trocars are placed in the space created, and the dissection is carried from the pubis to several centimeters above the costal margin. The linea semilunaris is carefully identied, and the external oblique aponeurosis is incised from beneath the external oblique muscle at least 2cm lateral to the linea semilunaris [18]. The muscle is released from the pubis to several centimeters above the costal margin. This procedure is performed bilaterally.
Periumbilical Perforator-Sparing Technique
A periumbilical perforator-sparing technique of components separation may be per­formed to preserve the blood supply to the anterior abdominal wall skin near the
222
Hand pump
to public tubercl
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External oblique
Camera tube inside
balloon dissector shaft
(x-sec cut)
Linea semiluanris
M. W. Clemens and C. E. Butler
Linea semilunaris
Internal oblique
Transversus abdominis
Caudal direction
e
Standard bilateral inguinal
hernia balloon dissector,
creating space between
external and internal oblique
Fig. 17.2 Endoscopic component separation. Access to the external oblique aponeurosis is achieved through a small incision at the costal margin through which a balloon dissector is placed. The external oblique aponeurosis is then divided from the pubis to above the costal margin. This minimally invasive approach preserves the attachments of the subcutaneous tissue (including myo­cutaneous perforators) to the anterior rectus sheath throughout its course. Credit: (Adapted with permission from Rosen MJ.Atlas of Abdominal Wall Reconstruction, Elsevier 2011)
midline and is based primarily on perforator vessels from the deep inferior epigastric vessels. Cadaver dissections and radiographic studies have conrmed that the major­ity of these vessels are located within 3cm of the umbilicus. With preservation of these vessels, ischemic complications involving the subcutaneous aps are signi­cantly reduced. To avoid injury to the periumbilical perforator vessels, a line is marked no less than 3cm cephalad and 3cm caudal to the umbilicus. The periumbili­cal perforator tunnels are begun at the epigastric and suprapubic regions. Subcutaneous tunnels are created using lighted retractors to identify the external oblique fascia. The superior and inferior tunnels are connected using cautery and retractors while main­taining the subcutaneous attachments of the periumbilical region. The linea
17 Ventral Abdominal Hernia Repair: Technique—External Oblique Release
223
semilunaris is identied by palpation, and the external oblique is incised 2cm lateral to this junction. The aponeurotomy is extended several centimeters above the costal margin and to the pubis. The external oblique muscle is separated from the internal oblique muscle in an avascular plane toward the posterior axillary line. The perium­bilical perforator-sparing approach has several limitations. One of the benets of minimally invasive components separation is to reduce subcutaneous dead space. The periumbilical perforator-sparing technique creates considerable dead space and sacrices more perforator vessels to the skin than other minimally invasive tech­niques [19]. When skin mobilization is necessary, adequate advancement occasion­ally can be difcult to achieve because the midline skin is still invested in the periumbilical region. Additionally, the placement of a wide piece of mesh as an underlay can be difcult given the large subcutaneous paddle that is still attached.
Minimally Invasive Components Separation (MICS)
Butler and colleagues modied the standard open Ramirez-style procedure that fur­ther reduces the subcutaneous dead space and maximize the blood supply to the abdominal skin with rectus perforator preservation [20, 21]. The minimally invasive components separation (MICS) technique is designed to avoid division of the mus­culocutaneous perforators overlying the rectus sheath and thus maintain perfusion to the paramedian skin. After lysis of adhesions and identication of the fascial edges, bilateral, 3cm wide, subcutaneous access tunnels are created over the anterior rectus sheath from the midline to the linea semilunaris at the level of the costal margin (Fig.17.3). Through these access tunnels, the external oblique aponeurosis is verti­cally incised 1.5cm lateral to the linea semilunaris. The tip of a metal Yankauer suc­tion handle (Cardinal Health, Dublin, OH), without suction, is inserted through the opening in the avascular plane between the internal and external oblique aponeuro­ses, separating them at their junction with the rectus sheath. The suction tip is advanced inferiorly to the pubis and superiorly to above the costal margin. Dissection is performed between internal and external oblique muscles with a sweeping motion of the Yankauer suction handle. A narrow Deaver retractor is used to create a narrow (2.5cm) subcutaneous tunnel overlying the planned line of external oblique aponeu­roses release inferiorly and superiorly. The external oblique aponeuroses are then released superiorly with electrocautery and inferiorly with scissors (Fig.17.4). Next, lateral dissection between the internal and external oblique muscles is performed to the midaxillary line. Minimal subcutaneous skin aps are then elevated over the ante­rior rectus sheath circumferentially to the medial row of rectus abdominis perforator vessels, and a retrorectus or preperitoneal mesh inlay is generally used. If a preperi­toneal inset is used, the preperitoneal fat is dissected from the posterior sheath cir­cumferentially to allow the mesh to be inlaid directly against the posterior sheath or rectus abdominis muscle (below the arcuate line). Mesh is inserted to the semilunar line with #1 polypropylene sutures via the horizontal access tunnels and the cranial and caudal aspect of the defect. Next, the myofascial edges are advanced and reap­proximated over the mesh with sutures placed through the myofascia. Interrupted resorbable 3-0 sutures can be placed to afx the posterior sheath to the mesh, thereby obliterating dead space and reducing the potential for uid collection. Closed-suction
224
ab
lique
musculocutaneous perforators
c
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M. W. Clemens and C. E. Butler
Access tunels
Incision of external oblique
aponeurosis
Lateral tunnels
Xiphoid
Costal margin
External oblique muscle
External oblique aponeurosis release:
• superior direction
• Inferior direction
Umbilicus
Linea semilunaris
Dissected space between external and internal oblique muscles
Proposed line of incision
Subcutaneous tunnel creation
Internal ob muscle fibers
Intact medial and lateral row
Fig. 17.3 Minimally invasive component separation (MICS) technique. (a) Access to the external oblique aponeurosis is achieved through a small tunnel from the midline to the supraumbilical external oblique aponeurosis. Vertical tunnels are created dorsal and ventral to the planned release site of the external oblique aponeurosis. Periumbilical perforators and the subcutaneous tissue overlying the anterior rectus sheath are left undisturbed. (b) The external oblique aponeurosis is then divided from the pubis to above the costal margin. The external oblique aponeurosis in the upper abdomen is released with electrocautery as muscle is transected at, and superior to, the costal margin. (c) Scissors are generally used to release the external oblique aponeurosis inferiorly. This MICS approach preserves the attachments of the subcutaneous tissue (including myocutaneous perforators) to the anterior rectus sheath throughout its course (Adapted with permission from Rosen MJ.Atlas of Abdominal Wall Reconstruction, Elsevier 2011)
drainage catheters are placed in each components separation donor site area, in the space between the rectus complex closure and mesh, and in the subcutaneous space. The remaining undermined skin aps are sutured to the myofascia with vertical rows of interrupted resorbable 3-0 quilting sutures to reduce dead space and potential shear between the subcutaneous tissue and myofascia (Figs.17.5, 17.6, 17.7, 17.8,
17.9, 17.10, 17.11, 17.12, 17.13, 17.14, and 17.15).
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