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Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_754_Библиотеки_им_академика_М_И_Перельмана

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D. Earle
Technique
The decision about whether or not to perform an ECS is made preoperatively, based on patient goals, history, abdominal wall contour, midline location, and the distance between rectus muscles.
Patient Position
The patient is positioned supine, with the arms tucked at the sides. Occasionally, we will simply swing the arm boards to the patient’s side, then swing it back out for the open portion of the pro­cedure. This is more helpful with obese patients. All appropriate precautions should be taken to avoid inadvertent injury to the upper extremity.
Access and Muscle Separation
We usually perform the ECS as the fi rst part of the procedure to reduce the time the laparotomy inci­sion is open. If there is a transverse/oblique inci­sion, or ostomy on one side, we will do the side without incisions fi rst. The initial 2–4 cm incision is made transversely, near the costal margin, near the tip of the 11th rib. This is more lateral than you would anticipate, and we often tilt the table away from us to improve exposure and ergonom­ics. The monopolar pencil with a protected elec­trode is used to divide the subcutaneous fascia, and three “S” shaped retractors are used. The external oblique muscle fi bers (not aponeurosis) are then positively identifi ed, and bluntly sepa­rated until the most posterior fi bers are sliding free from the underlying internal oblique. The internal oblique fascia will appear white, although it is quite thin (Fig 15.1a, b ). While it is possible to start on the external oblique aponeurosis, this area carries a higher risk to divide all the way through common junction of the oblique muscles, and is more diffi cult to use as an effective port site because it is near the insertion of the external oblique, which is divided as part of the release. We also start on the muscle belly when perform­ing open external oblique release.
Once the space between the oblique muscles
has been accessed, one of the “S” shaped retrac-
tors is placed under the external oblique to lift it off the internal oblique. A round balloon dissector (Covidien; North Haven, CT; USA) is introduced and pushed blindly toward the ipsilateral groin along a trajectory that takes it 2–3 cm medial of the anterior superior iliac spine. It is important to note that while the balloon is being pushed toward the inguinal ligament, the tip should be angled anteriorly to avoid going through the internal oblique. Once the tip of the balloon is near the inguinal ligament, it is infl ated and defl ated 3–4 times, beginning distally and moving proximally. While there is no specifi c amount of air intro­duced, or number of pumps of the infl ator, there is both visual inspection and palpation of the size of the balloon as it is being distended. If there is any doubt, under distention is better than over disten­tion, which can tear the muscle fi bers of the inter­nal oblique (Fig. 15.2a, b ). The balloon is then removed, the introducer reinserted, and after ele­vating the external oblique with an “S” retractor, is redirected above the costal margin. I initially use the uninfl ated balloon in a back-and-forth motion above the costal margin before infl ation, and infl ate the balloon less than inferiorly. Usually, only one to two infl ation sequences are required here (Fig. 15.3a, b ).
Port Placement
After separating the oblique muscles with balloon dissector, I place a 12 mm blunt-tipped AirSeal™ port (Surgiquest; Orange, CT; USA) through the incision, and insuffl ate to 12 mmHg with CO 2 . I used to use a round balloon-tipped port (Covidien; North Haven, CT; USA), but the bal­loon often impeded the view of the external oblique insertion, and is easily damaged by energy sources. With the AirSeal™ port and insuffl ation system , impedance of the external oblique inser­tion, smoke evacuation, or loss of insuffl ation with a gas leak are rare. Once the space is insuf­fl ated, visual inspection confi rms whether the correct plane was dissected, and whether or not there has been any injury to the muscle belly of the internal oblique. We then place two 5 mm ports under direct visualization—one medial, and inferior to the anterior superior iliac spine, and
15 Endoscopic Anterior Component Separation
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a
151
Xiphoid
Wide scar
Costal margin
Umbilicus
Bulge
b
Initial incision (2-4cm)
Pubic symphysis
Fig. 15.1 The location of the initial incision is near the tip of the 11th rib, and its size will be dependent on the amount of subcutaneous fat (2–4 cm). The blunt tipped clamp will spread the external oblique fi bers and allow visualization of the whitish fascia over the internal
oblique. The “S” retractor can be used to start the dissec­tion between the obliques and lift the external oblique to allow introduction of the dissection balloon. ( a ) Access is illustrated in the left upper quadrant . ( b ) Photo depicts access in the right upper quadrant
152
Fig. 15.2 Lift the external oblique anteriorly and insert the balloon dissector toward the inguinal ligament, passing just medial to the anterior superior iliac spine (ASIS). It is important to keep the tip pressure anteriorly and lateral to avoid inadvertent penetration through the internal oblique or common junction. The tip should be inserted all the way to, but not through the inguinal ligament. The balloon is then serially infl ated and defl ated beginning distally and moving proximally to the area under the initial insertion site. Then remove the dissector and reassemble. There is no specifi c amount that the balloon should be distended; however, under-infl ation is generally less risky than over-infl ation. ( a ) Placing the balloon dissector on the left side . ( b ) Placing the balloon dissector on right side
D. Earle
a
Insertion of balloon dissector
ASIS
Balloon dissector
with balloon up
Pubic symphysis
b
one in between, at the same lateral margin as the 12 mm port. The superior and inferior ports are for the scope, and the middle port is used for the instruments used to divide the external oblique insertion (Fig. 15.4a, b ).
Fig. 15.3 After beginning the superior dissection over the costal margin with the index fi nger, the balloon dissec­tor is then reinserted superiorly, also over the costal mar­gin, again keeping the pressure on the tip anterior and slightly lateral. It generally only takes one to two infl ation-
Troubleshooting
If the initial inspection reveals an injury to the internal oblique muscle, an assessment must be made about the severity. If just the fascia is torn,
defl ation sequences with less distention than inferiorly. Generally, under-infl ation is less risky than over-infl ation. ( a ) Placing balloon dissector on left side . ( b ) Placing the balloon dissector on right side . ( c ) Infl ating the balloon dissector on the right side
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a
Pubic symphysis
153
Insertion of balloon dissector
ASIS
Balloon dissector
with balloon up
154
D. Earle
a
10mm port (scope)
5mm port (scissors /energy source)
5mm port (scope)
ASIS
Area of space between internal and external oblique muscles
Pubic symphysis
b
Fig. 15.4 The ports are all placed laterally, with the superior and inferior ports being used for the scope and the middle port used for the dissection and cutting instruments. With no specimen extraction, all 5 mm ports could be used. We use a 10–12 mm port superiorly to take advantage of a unique AirSeal™ insuffl ation system or blunt, balloon tipped port.
but the muscle belly is largely intact, nothing needs to be done. If there is signifi cant disrup­tion of the muscle belly, it should be repaired with long acting absorbable suture, and consid­eration for covering the defect with a prosthetic in this space, or as part of the hernia repair
As smaller ports with these features become available, the size could be scaled down. ( a ) Left sided port set-up. ( b ) Right sided port set-up. Note the slight medial placement of the inferior port. This allows for less interference of the fi eld of view by the instrument in the working port. An angled rigid or fl exible tip scope can also help avoid this
should be undertaken. If there is an injury to the external oblique, nothing needs to be done as this muscle is being divided anyway. If there is an injury to the common junction medially, either during the balloon dissection or during the division of the external oblique, this must be
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155
repaired. We repair these with long acting absorbable, barbed suture material. Placement of a prosthetic of any type should be done if there is doubt that the suture repair was adequate. The prosthetic can be placed in this space, or as part of the hernia repair if an intra-peritoneal mesh is being used. It is also possible to place the bal­loon dissector too superfi cially and dissect the subcutaneous space rather than the space between the oblique muscles. This requires noth­ing be done other than acknowledging the cor­rect plane, and reinserting the balloon between the oblique muscles while holding the space open with an “S” shaped retractor, thus insuring the balloon enters the correct plane.
External Oblique and Subcutaneous Fascial Division
Once the muscles have been separated, the space insuffl ated with CO 2 , and the ports have been placed, you will see the initial view of the space between the oblique muscles (Fig. 15.5 ). Now it’s time to divide the external oblique insertion. With the scope in the upper (12 mm) port and the scissors in the middle (5 mm) port, any remaining fi bro-areolar connective tissue not separated by the balloon is divided to complete the separation. A small opening is then made directly perpen­dicular to the port and lateral to the common
junction. You should see yellow, subcutaneous fat (Fig.
15.6a ). If you see muscle fi bers, you are
in the wrong plane, and need to reassess the anat­omy. This may require restarting more laterally. This can be done by extending the initial incision, and rotating the table away from the surgeon. Once the initial incision is made, and subcutane­ous fat is seen, the jaws of the scissors can be opened, and one blade inserted above the fascia. The shaft can then be slightly rotated downward, and this will help avoid cutting into the subcuta­neous tissue too deeply, which has a risk of excess bleeding. This incision is then carried down to just above the inguinal ligament. When dividing the external oblique insertion, it is important to stay parallel and lateral to the com­mon junction of the oblique muscle complex and the lateral border of the rectus muscle. This can be diffi cult with the small working space, oblique instrument angles that change as you move along, and a visual horizon that may rotate (Fig.
15.6b ).
Once the insertion has been divided along the majority of its length, the subcutaneous fascia is divided, which gives the majority of the medial mobilization that can easily be seen as the fascia is released. An energy device is very helpful here to control bleeding. When dividing the subcuta­neous fascia, it is important to stay in a line per­pendicular to the external oblique division, and avoid straying too medial (Fig. 15.6c ). If this part of the dissection deviates too medial, there can be
Fig. 15.5 Initial view of the right side (looking distally) after creating the space between the oblique muscles. Note the fascia of the internal oblique has been stripped from the muscle belly by the initial insertion of the balloon dissector or slight over distension of the balloon. Because there is no defect in the muscle, no repair is required. The common junction is marked by the white dashed line, and the anterior superior iliac spine (ASIS) is seen laterally
156
D. Earle
Fig. 15.6 ( a ) Initial division of external oblique ( Vi ew : right side, looking distally). The scope is currently in the most superior port. The initial incision ( arrow ) in the external oblique is made medial to the common junction ( dashed line ) and perpendicular to the middle port through which the scissors have been placed. Note the subcutane­ous fat, confi rming complete division of the external oblique aponeurosis. ( b ) Distal external oblique division. ( Vi ew : right side, looking distally) The incision ( arrow ) is made medial and parallel to the common junction ( dashed line ) all the way to, but not including the inguinal liga-
an injury to the hernia sac or bowel. Additionally, if there is an ostomy present, subcutaneous redundancy of the bowel is common, and the vis­cera are at increased risk of injury during this portion of the procedure.
After the inferior portion of the external oblique insertion and subcutaneous fascia has been divided, the scope position is changed to the inferior (5 mm) port. The superior portion is then accomplished in the same way. Near the costal margin, however, the external oblique insertion will become more muscular, and is usually divided with an energy source only. It will remain this way the entire distance above the costal mar­gin (Fig.
15.7 ).
ment. Note the narrowing where an old ostomy site was. ( c ) Subcutaneous tissue division. ( Vie w : right side, look- ing distally) Staying parallel to the common junction, the subcutaneous fascia is divided with an energy source. We utilize an ultrasonic device, but many utilize a monopolar device. The cut edges of the external oblique ( dashed line ) can be seen, and are much further apart after division of the subcutaneous tissue. Note the aponeurotic portion of Scarpa’s fascia ( arrow ) superfi cially. This is inconsis- tently seen. The grasper can be used to estimate the amount of separation
Limits of Dissection
The limits of the muscle separation are the ingui­nal ligament, the common junction of the oblique muscle complex and rectus muscle, the superior attachment of the external oblique about 5–7 cm above the costal margin, and the lateral neurovas­cular bundles between the internal and external oblique muscles. For more inferior defects, the superior portion is less important and vice versa. For smaller defects, the lateral separation is less important. The limits of the external oblique divi­sion are typically just above the inguinal liga­ment to about 5–7 cm above the costal margin. As with the muscle separation, these limits can
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157
Fig. 15.7 Proximal division of external oblique. ( Vi ew : right side, looking proximally). Although there is no common junction of the oblique muscles above the costal margin ( dashed line ), the line of division of the external oblique and subcutaneous tissue remains parallel to the common junction ( arrow ). Note the aponeurosis does not extend above the cos- tal margin at this position, and the muscle belly of the exter-
be adjusted depending on the size and location of the defect. This is the same for the limits of the subcutaneous dissection.
Troubleshooting
If the initial incision through the perceived exter­nal oblique aponeurosis reveals muscle fi bers, the wrong plane has been entered. You will need to reassess the anatomy by critically analyzing the direction of the muscle fi bers and fascia to con­fi rm that you are in the space between the internal and external oblique muscles. If you are not in the right plane, or can’t tell, then start over by identifying the external oblique muscles fi bers, not aponeurosis. This may require extending the initial incision laterally. If you are in the right plane, it’s possible that you are too far laterally on the external oblique. If this is the case, it is acceptable to continue by dividing these muscle fi bers parallel to the common junction. You may however be working too close to the ports, and can thus carry the incision line slightly more medial. If the muscle fi bers are oriented in the craniocaudal plane, it is probably the rectus mus-
nal oblique can be seen near the costal margin. We utilize an ultrasonic device, but an alternative energy source can be used. It is also important to note the lateral placement of the 12 mm port in the right upper quadrant. If this is placed too medially, it may impede instrument manipulation. Also, if a balloon-tipped port is used here, care must be taken to avoid contact with the balloon with the energy source
cle, and you will need to start over by positively identifying the external oblique fi bers, which will require lateral extension of the initial incision.
When dividing the subcutaneous tissue, it is possible to enter the hernia sac. If this happens, make sure to open the sac enough to assess for evidence of a bowel injury, as any part of the GI tract can be densely adherent to the sac from adhesions. If this is not possible, the area must be assessed during the hernia repair phase of the operation. If planning on this, Consider marking the area with a suture to positively identify the area later. If there is an ostomy present, it is com­mon for redundant bowel to be present in the subcutaneous space, or for there it be a parasto­mal hernia containing adjacent loops of bowel. A slower and more meticulous subcutaneous dissection is warranted in this situation. If a bowel injury occurs, appropriate action for repair is in order.
Exiting the Space
Like any laparoscopic procedure, the ports are all removed under direct vision, and the CO
2
is allowed to escape. We do not place drains in this space, except when management of the overlying
158
D. Earle
soft tissue envelope requires excision of excess tissue and opens this space . The drains are then placed in an open fashion. If drains are placed, we prefer drains with metal spikes that are placed from the inside, as we believe it creates a better seal at the skin. The fascia of the external oblique at the port sites obviously does not need to be closed, and the skin is closed according to sur­geon’s preference.
Completing the Hernia Repair
We then typically perform an open scar excision and retro-rectus sublay with a variety of prosthet­ics and fi xation methods depending on the clini­cal situation and goals of the operation. I utilize long-acting absorbable, barbed suture material with a short stitch technique for both the poste­rior and anterior sheath closure. During the ante­rior sheath closure, the fascial edges are freed of excess scar tissue, hernia sac, and fat. Care is taken to avoid cutting too far back where the anterior sheath is thin. We also take signifi cant precautions to avoid suturing any muscle fi bers.
Limitations
Complications and Outcomes
Complications of ECS are few and infrequent, but can be serious. This is particularly true of if the common junction of the oblique muscle com­plex and rectus muscles are inadvertently divided. The sublay mesh placed over the rectus sheath will not cover the iatrogenic defect laterally, and a postoperative fl ank hernia will develop. We have had one case early on in our series where this occurred, and a laparoscopic hernia repair was successfully performed utilizing a barrier coated, intra-peritoneal prosthetic. Additionally, long-term seromas requiring operative drainage procedures occur about 5% of the time in our patients. Reoperation is performed if the seroma has been persistent for more than 6 months, and is accomplished with local/sedation or general anesthesia. The old port sites are used, and the seroma is drained and the majority of the lining excised endoscopically. A drain is placed and removed when the output is less than 30 cm 3 per 24 hours for at least two consecutive days. Short­term seromas in the ECS site occur in about 30% of our patients and are evenly distributed between unilateral and bilateral.
Use of an endoscopic approach to external oblique release is primarily for midline hernia defects only. Its use is limited for hernias that extend beyond the semilunar line, such as fl ank and subcostal her­nias. If there is an associated parastomal or inci­sional hernia at an old stoma site, these can usually be repaired transversely with long acting absorb­able suture and covered with the sublay mesh. One example where an open perforator sparing tech­nique may be more appropriate is during a con­comitant panniculectomy for a lower midline hernia. A long, low transverse incision will expose the lateral abdominal wall, and tunneling cephalad to avoid the perforators will give ample operative exposure to the external oblique for a release.
References
1. Young D. Repair of epigastric incisional hernia. Br
J Surg. 1961;48(211):514–6.
2. Ramirez OM, Ruas E, Dellon AL. “Components sep-
aration” method for closure of abdominal-wall defects: an anatomic and clinical study. Plast Reconstr Surg. 1990;86(3):519–26.
3. Lowe JB, Garza JR, Bowman JL, Rohrich RJ, Strodel
WE. Endoscopically assisted “components separa­tion” for closure of abdominal wall defects. Plast Reconstr Surg. 2000;105(2):720–30.
4. Rohrich RJ, Lowe JB, Hackney FL, Bowman JL,
Hobar PC. An algorithm for abdominal wall recon­struction. Plast Reconstr Surg. 2000;105(1):202–16.
Open Anterior Component
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Separation with Perforator Preservation
Gregory A. Dumanian
Introduction
As surgeons, we can all agree that blood fl ow to tissues is associated with healing, while ischemia is associated with tissue loss and complications. In regard to hernia repair, a technique called “per­forator preservation” serves to maintain pulsatile skin blood fl ow while still performing a compo­nents separation hernia repair by avoiding the undermining of skin fl aps. This style of ventral hernia repair is more than simply avoiding the division of blood vessels to the skin; it also requires an understanding of abdominal skin blood fl ow, an appreciation of the forces at the suture/tissue interface (STI), a means to achieve primary fascial closure with mesh using concepts of force distribution, and excision of redundant midline skin. In the following chapter, a brief introduction of laminar versus pulsatile blood fl ow and the angiosome theory of perfusion will be presented. The history of perforator preserva­tion as an adjunct to the components separation technique will be recounted. The value of compo-
Electronic supplementary material: The online version of this chapter (doi: contains supplementary material, which is available to authorized users.
G. A. Dumanian , M.D. (*) Northwestern Feinberg School of Medicine , Northwestern Memorial Hospital , Chicago , IL , USA
gdumania@nm.org
e-mail:
10.1007/978-3-319-27470-6_16 )
1 6
nents separation as a means to reduce suture pull­through will then be introduced. The technique of perforator preservation at the time of components separation and use of a narrow mesh will be presented in a video demonstrating this repair in a 76 year old gentleman with heart disease, a one pack per day current smoker, four previous attempts at repair including prior mesh, and with a 16 cm in transverse dimension hernia by CT.
Laminar Versus Pulsatile Blood Flow/Blood Flow of the Abdominal Wall
Vascular surgeons have extensive studies correlat­ing the quality of tissue perfusion with the healing of surgical incisions. In the early 1970s, lower extremity blood fl ow was analyzed using a com­bination of pulse-volume recordings and blood pressures [ on a toe or across the instep of the foot would have a small incremental change in pressure due to the stroke volume of blood introduced into the aorta by the heart during systole. Normal blood fl ow is pulsatile, correlating to each heartbeat. Laminar fl ow, in contradistinction, does not expe­rience the repeated episodic increases in pressure. Laminar fl ow is associated with numerous condi­tions familiar to surgeons including prior scar, radiation, proximal vascular obstruction, and division of native vascularity. It has been shown experimentally and clinically that primary healing
1 ]. A tiny blood pressure cuff placed
Y.W. Novitsky (ed.), Hernia Surgery, DOI 10.1007/978-3-319-27470-6_16
159© Springer International Publishing Switzerland 2016