Добавил:
kiopkiopkiop18@yandex.ru t.me/Prokururor I Вовсе не секретарь, но почту проверяю Опубликованный материал нарушает ваши авторские права? Сообщите нам.
Вуз: Предмет: Файл:

Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_888_Библиотеки_им_академика_М_И_Перельмана

.pdf
Скачиваний:
0
Добавлен:
31.08.2026
Размер:
34 Мб
Скачать
19 Robotic Transversus Abdominis Release: Tips andTricks
265
a
b
c
Fig. 19.12 Posterior sheath closure tips and tricks. (a) The cut edges are easily identied and lie below the robotic instruments over the viscera. Closure proceeds using a self-xating absorbable suture. (b) Any defects made during TAR, including initial trocar sites, are closed with absorbable suture. (c) Posterior sheath closure begins (and ends) at the level where the peritoneum was left intact (dashed triangle) above and below the hernia defect; dashed line linea alba, solid line closed portion of posterior sheath, dotted lines cut edge of posterior sheath to be closed, ra rectus abdomi­nis, ta transversus abdominis, ps posterior sheath
Fig. 19.13 Mesh deployment tips and tricks. (a) Mesh is located below the robotic instruments and camera. First, identify the stay suture keeping the mesh scrolled. (b) Unroll the mesh across the closed posterior sheath. (c) Mesh should reach just beyond the contralateral trocars to the abdominal wall
a
266
Данная книга находится в списке для перевода на русский язык сайта https://meduniver.com/
J. A. Warren and A. M. Carbonell
Fig. 19.13 (continued)
Fig. 19.14 Defect closure
tips and tricks. (a) Self-xating, absorbable suture used for closure. In order to control the loop of the suture, make the initial needle throw before pulling the suture through. To more rapidly advance the suture, rst pull downward with one hand (b), and then sweep laterally with the other (c)
b
c
a
b
19 Robotic Transversus Abdominis Release: Tips andTricks
267
Fig. 19.14 (continued)
c
• Make sure to clearly identify the fascia when closing.
• Begin the next throw before pulling the suture through to control the loop and
prevent tangling.
• Pull suture downward with one hand and sweep laterally with the second to prog-
ress suture more quickly.
• Include bites of the hernia sac to imbricate the tissue and decrease the dead
space.
• Decrease pneumoperitoneum.
Outcomes ofrTAR
To date, three studies have been published on this technique. The rst reported out­comes of robotic RM repair with or without TAR compared to standard laparoscopy [3]. The operative time was signicantly longer for rVHR, and there was a signi­cantly higher rate of surgical site occurrences (SSO), primarily seroma, following robotic repair. Despite the signicant difference in complexity and the extent of musculofascial dissection with rVHR, the median length of stay was still reduced compared to standard LVHR.In the largest report of robotic RM VHR to date, open RM repair was compared to robot VHR using a propensity score matched cohort from the AHSQC [2]. Robotic VHR resulted in a shorter median length of stay. Fewer surgical site infections (SSI) were also noted, though this did not reach sta­tistical signicance. Finally, the most recent published study compares open to robotic TAR, again demonstrating a signicantly shorter length of stay. This study similarly reported a decreased rate of SSI, but was not statistically signicant. Table19.1 summarizes the current literature on rTAR.
268
J. A. Warren and A. M. Carbonell
Данная книга находится в списке для перевода на русский язык сайта https://meduniver.com/
Table 19.1 Summary of rTAR outcomes in the published literature
Author (year)
Warren (2016)
Carbonell (2017)
Martin-del­Campo (2017)
rTAR robotic transversus abdominis release, SSI surgical site infection, LOS length of stay, LVHR laparoscopic ventral hernia repair, ORVHR open retromuscular ventral hernia repair, OTAR open transversus abdominis release
Comparison
n
group
53 LVHR
(n=103)
111 ORVHR
(n=222)
38 OTAR
(n=76)
rTAR SSI (%)
2(3.7%) 1(1%) 1* 2*
9 (4%) 2 (2%) 2* 3*
0 (0%) 5 (6.6%) 1.3* 6*
Comparison group SSI (%)
rTAR LOS (days)
Comparison group LOS (days)
Future ofrVHR
Robotic retromuscular VHR with or without TAR affords the ability to reestablish the functional anatomy of the abdominal wall, reinforcing the closure with mesh in an extraperitoneal sublay position. The optimal patient selection for this technique or its variants has yet to be fully determined. The extensive dissection of a TAR is clearly unnecessary for small hernias, and the promising early results may or may not hold true for signicantly larger defects in high-risk patients. Ongoing clinical trials hope to address this issue (clinicaltrials.gov, NCT03007758). Several varia- tions on the above technique have also been used, including a single-dock method that begins at the lateral aspect of the ipsilateral rectus sheath and then extends across the midline [3], placing trocars in the upper or lower abdomen in a single­dock approach [6, 8], or an extended totally extraperitoneal (eTEP) approach [9]. While early published results of rVHR are quite promising, continuous and critical evaluation of this technology in hernia repair is needed to gain better understanding of optimal patient selection, approach, and patient outcomes.
References
1. Rives J, Pire JC, Flament JB, Convers G. Treatment of large eventrations (apropos of 133
cases). Minerva Chir. 1977;32(11):749–56.
2. Carbonell AM, Warren JA, Prabhu AS, Ballecer CD, Janczyk RJ, Herrera J, Huang L-C,
Phillips S, Rosen MJ, Poulose BK.Reducing length of stay using a robotic-assisted approach
for retromuscular ventral hernia repair: a comparative analysis from the americas hernia soci-
ety quality collaborative. Ann Surg. 2018;267(2):210–7.
3. Warren JA, Cobb WS, Ewing JA, Carbonell AM.Standard laparoscopic versus robotic retro-
muscular ventral hernia repair. Surg Endosc. 2017;31(1):324–32.
4. Martin-del-Campo LA, Weltz AS, Belyansky I, Novitsky YW.Comparative analysis of peri-
operative outcomes of robotic versus open transversus abdominis release. Surg Endosc.
2018;32(2):840–5.
19 Robotic Transversus Abdominis Release: Tips andTricks
5. Sugiyama G, Chivukula S, Chung PJ, Alfonso A.Robot-assisted transabdominal preperitoneal
ventral hernia repair. JSLS. 2015;19(4):1–3.
6. Abdalla RZ, Garcia RB, Costa R, Luca C. Procedimento de Rives/Stoppa modicado
robô-assistido para correção de hérnias ventrais da linha média. ABCD Arq Bras Cir Dir.
2012;25(2):129–32.
7. Novitsky YW.Hernia surgery. Berlin: Springer; 2016.
8. Hope WW, Cobb WS, Adrales GL.Textbook of hernia. Berlin: Springer; 2017.
9. Belyansky I, Zahiri HR, Park A.Laparoscopic transversus abdominis release, a novel minimally
invasive approach to complex abdominal wall reconstruction. Surg Innov. 2016;23(2):134–41.
269
Ventral Abdominal Hernia Repair: MIS
Данная книга находится в списке для перевода на русский язык сайта https://meduniver.com/
Extraperitoneal Repair Techniques: eTEP
20
Rives, MILOS/EMILOS, andOnlay MIS Repair
FlavioMalcherMartinsde Oliveira, LeandroTottiCavazzola, AdamS.Weltz, andIgorBelyansky
Introduction
Minimally invasive surgery (MIS) ventral hernia repairs were rst described by Le Blanc in 1993 with the laparoscopic approach and an intraperitoneal onlay mesh (IPOM) implant. The use of IPOM was never the gold standard in open ventral hernia repairs because of the fear of placing uncoated mesh materials in direct con­tact with abdominal viscera [1]. The development of laparoscopic techniques included several modications such as the use of new coated meshes, new xation devices, and, perhaps most importantly, changes in surgical technique. These tech­nical changes included the abandonment of the traditional onlay and retromuscular/ preperitoneal options. The intraperitoneal era had begun. Laparoscopic techniques have proven themselves in the last 20years as safe and effective treatments for ven­tral hernias, despite increased rates of intra-abdominal complications [2].
The adoption of laparoscopic repairs plateaued at approximately 20% of all ven­tral hernia repairs, despite their noted benets. Several reasons have been postu­lated, such as increased cost (xation devices) and difcult learning curve.
Advances in MIS ventral hernia repair, such as the robotic platform, have enhanced the ability to operate on the abdominal wall through fully articulated
F. M. M. de Oliveira (*) Monteore Medical Center, Bronx, NY, USA
L. T. Cavazzola Hospital de Clínicas de Porto Alegre, Porto Alegre, RS, Brazil
A. S. Weltz · I. Belyansky Department of Surgery, Anne Arundel Medical Center, Annapolis, MD, USA e-mail: ibelyansky@aahs.org; aweltz@aahs.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_20
271
272
F. M. M. de Oliveira et al.
instruments and improved optics and visualization. Surgeons quickly began per­forming MIS repairs without IPOM, returning to traditional techniques such as onlay and sublay. After robotic surgery ushered this trend, several MIS surgeons without robotic access began performing these techniques using traditional laparo­scopic/endoscopic instruments. In this chapter, we will explore several of these extraperitoneal techniques.
eTEP
Preoperative Planning andConsiderations
All potential minimally invasive abdominal wall reconstruction candidates must undergo a comprehensive workup to ensure they are appropriately selected for sur­gery. This includes a comprehensive past medical and surgical history, physical exam, and laboratory testing with emphasis placed on screening for absolute and relative contraindications to the eTEP approach (Table20.1). An up-to-date com­puted tomography study of the abdomen and pelvis is recommended for effective preoperative planning [3]. All major comorbidities must be addressed by means of a multidisciplinary approach before proceeding to the operating room. Preoperative antibiotics should be properly selected and dosed according to hospital protocol [3,
4]. We recommend routine administration of subcutaneous heparin for DVT pro-
phylaxis in our patient population, beginning prior to the induction of anesthesia and administered throughout the typical duration of the procedure [5, 6].
Operating Room Setup andPatient Positioning
After induction of general anesthesia, all patients are positioned supine with arms tucked to the side. A Foley catheter is placed to decompress the bladder. The operat­ing table is exed with the legs extending downward at a minimum of 30° to afford the surgeon greater instrument range of motion (Fig.20.1). Failure to sufciently ex the operating table will result in hand collisions with the patient’s body during dissection.
The enhanced-view totally extraperitoneal (eTEP) access approach was previ­ously described for laparoscopic inguinal hernia repair by Daes in 2012 [7]. This approach introduced the notion that the extraperitoneal domain is a limitless space
Table 20.1 Absolute and relative contraindications to eTEP approach
Relative Absolute Previous incision extending from xiphoid process to the
pubic bone Loss of domain Presence of stula Dystrophic or ulcerated skin Extensive intra-abdominal adhesions
Active mesh infection
20 Ventral Abdominal Hernia Repair: MIS Extraperitoneal Repair Techniques
Данная книга находится в списке для перевода на русский язык сайта https://meduniver.com/
Fig. 20.1 Positioning of the patient for laparoscopic eTEP.Patient is in Trendelenburg position with hips extended. Bed exion is best avoided
273
once the conuence of arcuate line and semilunar line is taken down. This technique relies on proper anatomic identication and dissection in the naturally occurring retromuscular spaces. Typically, dissection is initiated in one of the retrorectus spaces and then crossed over to the contralateral side, thus joining the two spaces into one large operative eld. Since Daes’ initial description, we have adopted this technique for ventral and incisional hernia repair [7, 8].
Positioning of the surgeon, monitor, and trocars are dependent on the location of the hernia defect and decision where to cross the midline. Monitors are placed at the head of the bed with trocar sites on the lower abdomen when addressing an upper midline hernia defect and inverted in instances of lower midline hernia defects.
Upper Midline Defect
Figure 20.2 demonstrates the port position for upper midline defects. The rst inci­sion is made 2cm bellow a horizontal line drawn through umbilicus just medial to the right linea semilunaris. The anterior rectus sheath is identied and incised sharply. Single site balloon dissector is used to develop the right retrorectus space in cephalad and caudal directions. It is critical to avoid over-ination which may rup­ture the linea semilunaris and consequently injure the rectus abdominis muscle. In addition, special care should be given to appreciating the inferior epigastric vessels that travel parallel and medial to the linea semilunaris in the vicinity of the #1 port. Once the space of Retzius is developed, ports #2 and #3 are placed under direct vision in the lower abdomen. The site of port #3 can also be used to pass the balloon space-maker in a cephalad direction to develop the left retrorectus space. Thus, even before any initiation of sharp dissection, the retromuscular space surrounding the hernia defect is completely dissected bluntly with the balloon space-maker.
We prefer to perform the crossover below the level of the umbilicus, develop­ing preperitoneal and retromuscular spaces that have not been previously violated. A 30° scope is placed through port #3 after which we proceed with division of the
274
F. M. M. de Oliveira et al.
Fig. 20.2 Port positioning for upper midline defects. The balloon dissector is placed in port #1. Ports #2 and #3 are positioned under direct vision. The arrows show the working instruments with the camera vision demonstrated by the white triangle
medial contributions of the posterior rectus sheath to the linea alba bilaterally from caudal to cephalad direction. In the middle we try to preserve the preperito­neal contributions to the posterior layer which are made up of the falciform and umbilical ligaments. In such a fashion, the division of posterior rectus sheath and preservation of falciform ligament and umbilical ligaments allow us to join the right and the left retrorectus spaces together with the midline preperitoneal space (Fig.20.3).
Following the dissection in these planes, we then anticipate to encounter the neck of the hernia sac. In an incisional hernia, these layers surrounding the neck of the sack can be thoroughly fused together and difcult to differentiate. An attempt may be made in some cases to reduce the entirety of the sac by separating it from its distal attachments; however this is not often attempted. We frequently give consid­eration to sharply opening the peritoneal layer just proximal to the neck of the sac to reduce visceral contents under direct visualization and perform limited adhe­siolysis (Fig.20.4). Any defects in the posterior layer can be xed with running suture. Once the hernia contents are reduced, retromuscular dissection commences with release of the medial aspect of the posterior rectus sheath and concludes just below the level of the xiphoid process.
20 Ventral Abdominal Hernia Repair: MIS Extraperitoneal Repair Techniques
Данная книга находится в списке для перевода на русский язык сайта https://meduniver.com/
Fig. 20.3 View of the retrorectus space. After crossing over and dissection, the retrorectus spaces on both sides are combined into one large retrorectus space. This falciform ligament can be seen below
Fig. 20.4 Sharp opening of the peritoneal layer proximal to the neck of the hernia sac, allowing for reducing visceral contents under direct visualization and limited adhesiolysis
275
Lower Midline Defects
For a right-handed surgeon, we found that lower midline defects are easier to address by initiating the dissection in the upper portion of left retrorectus space. Figure20.5 demonstrates the typical port position that we chose to use for this approach. Balloon dissector is used at port position #1 to develop the left retro­rectus space, followed by direct visualization for placement of port #2 into the developed space with an optional port #3. Blunt dissection in the left retrorectus space is performed in a caudal direction and the pubis is identied. As the upper midline has not previously been violated above the level of umbilicus, the medial aspect of the left posterior rectus sheath is incised and the preperitoneal space entered just supercial to falciform ligament (Fig.20.6). The right posterior rec­tus sheath is identied and its medial aspect incised and released in a cephalad to caudal direction followed by blunt dissection in the right retrorectus space (Fig.20.7). Port #4 is then placed under direct vision through the upper aspect of right rectus abdominis muscle which is then used as the camera port. The retro­rectus dissection is carried out in the caudal direction completing bilateral release of the posterior rectus sheathes. When encountering the hernia sac, we try to