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17 Reconstructive Techniques for Ureteral Injuries: Using Extra-Urinary Autologous…
suturing it to the upper ureter or renal pelvis proximally and to the bladder dis­tally or rarely to the distal ureteric segment if viable [8].
(a) Indications: Recurrent calculi, ureteral stricture, stula, congenital obstruc-
tion of the ureter, extensive ureteral injury, retroperitoneal brosis, tubercu­losis, ureteral carcinoma in a solitary kidney [3, 7, 911].
(b) Contraindications: inammatory bowel disease, post-radiation, inconti-
nence, bladder neck obstruction, neurogenic bladder, metastatic cancer, renal failure, and hepatic dysfunction [3, 7, 9, 10].
(c) Technical aspects of the ileal ureter reconstruction: The lumen of the
selected ileal segment must rst be reduced before reconstruction using sta­plers (GIA) or 4/0 resorbable sutures. Practically, it can be tailored over a 12-Fr Foley’s. The peristalsis direction must be maintained and the proximal end of the fashioned tube is anastomosed to the proximal ureter or the renal pelvis, using a 4/0 resorbable suture, in an end-to-end manner and the distal end will be anastomosed either to the bladder using one of the techniques described in the ureteroneocystoplasty (Lich-Gregoir extravesical nonre­uxing, for example) or to the spatulated cephalic end of the lower ureter segment if healthy, using the uretero-ureterostomy technique.
If there is bilateral ureteric damage, both sides can be reimplanted into a common isoperistaltic ileal segment end-to-endwise using the Wallace tech­nique uniting the two ureteric ends, or separately end-to-sidewise after clos­ing the proximal end of the ileal segment, and the distal end of the ileum segment will be anastomosed to the dome of the bladder in an anti-reux manner (e.g. Lich-Gregoir technique) (Figs. 17.1, 17.2, and 17.3). The reconstructions are stented for 3–6weeks, a drain is left in situ for a few days, and a urethral catheter is kept indwelling for 10–14days [7, 8, 10, 12].
The combination of an ileal ureter and a Boari ap allows the use of a shorter ileal segment [8] (Fig.17.4).
(d) Complications of an ileal ureter: Paralytic ileus, recurrent UTI with pyelone-
phritis, renal deterioration, ileovesical stricture, mucus obstruction, stula, stone formation, pancreatitis, metabolic acidosis, diarrhea, and transient hepatic encephalopathy [3, 7, 9, 10, 12]. The rate of anastomotic stricture and stula (ileal uretero-enteric or enterovaginal stula) is estimated to be 3.3% and 6.6%, respectively, after a mean follow-up of 36months [12]. Metabolic acidosis is an expected complication but a recent series of 23 patients showed that metabolic acidosis occurred only in the unique patient who underwent bilateral ileal ureter replacement and not in the 22 others [8].
(e) Results. The results of an ileal ureter in maintaining or improving the renal
function depends on the published series, varying from 75–76% for some [11,
12] to 83–95% of patients for others after various mean follow-ups of
36–65months [79]. Kocot etal. observed a signicant improvement in upper urinary tract dilatation in 86% of their 157 patients [7]. In a series of 14 patients, the most common site of ureteric injury was the lower and mid-ureteric segments
17 Reconstructive Techniques for Ureteral Injuries: Using Extra-Urinary Autologous…
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Fig. 17.1 Seven and reverse seven congurations of bilateral ureteral reimplantation into a com­mon ileal segment. (From Armatys SA etal. [12], with permission from Wolters Kluwer Health)
and the mean length of the mobilized ileum was 11.2cm [11]. The average nadir serum creatinine levels were 1.57mg/dL and 1.37mg/dL pre-operatively and at 12months postoperatively, respectively [10].
2. Buccal mucosa grafting. This technique is very popular for urethral stricture, but only scanty publica-
tions exist for ureteric replacement. The use of buccal mucosa for the ureter was rst described by Naude in Cape Town, South Africa, in 1999, and can be per­formed as an onlay or a tubularized graft wrapped with omentum [13]. There have been a few small series published since then [14, 15]. There is even a small reported series of 4 patients who underwent robotic-assisted ureteral buccal reconstructions with buccal mucosa with 100% success after a median follow-up of 15.5months [16].
3. Replacement by the gonadal vein: An initial cadaveric model with partial ure-
teric replacement using a gonadal vein was published in 2019 with promising results. The obvious advantage is the course of the gonadal vein parallel to the
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17 Reconstructive Techniques for Ureteral Injuries: Using Extra-Urinary Autologous…
Fig. 17.2 The anti-reux nipple valve for ileal ureter substitution. (From Zhong W etal. [8]. Creative Commons Attribution 4.0 International License)
ab c
Fig. 17.3 Different types of ureteral replacement. (a) Unilateral ileal ureter replacement, (b) bilateral ileal ureter replacement, (c) combined ileal–ureter substitution and Boari ap–psoas hitch. (From Zhong W etal. [8]. Creative Commons Attribution 4.0 International License)
References
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Fig. 17.4 The combination of ileal ureter replacement and Boari ap–psoas hitch technique. (From Zhong W etal. [8]. Creative Commons Attribution 4.0 International License)
149
ureter. An animal (porcine) model is expected to conrm the validity of this autologous graft [17].
References
1. Chaput. Bulletins et Mémoires de la Société de Chirurgie de Paris, Tome XIX, 1893;309.
2. Fenger CI. Surgery of the ureter. Ann Surg. 1894;20(3):257–96. https://doi.
org/10.1097/00000658- 189407000- 00042.
3. Mattos RM, Smith JJ 3rd. Ileal ureter. Urol Clin N Am. 1997;24(4):813–25. https://doi.
org/10.1016/s0094- 0143(05)70422- 5.
4. Shoemaker J. Discussie op voordracht van JM van Damn over interaabdominale plastiken. Ned Tijdschr Geneesk. 1911:836. PubMed | Google Scholar; Yang WH
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17 Reconstructive Techniques for Ureteral Injuries: Using Extra-Urinary Autologous…
5. Wells CA. The use of the intestine in urology, omitting ureterocolic anastomosis. Br J Urol. 1956;28(4):335–50.; discussion, 406–16. https://doi.org/10.1111/j.1464- 410x.1956.
tb04783.x.
6. Goodwin WE, Winter CC, Turner RD.Replacement of the ureter by small intestine: clinical application and results of the ileal ureter. J Urol. 1959;81:406–18.
7. Kocot A, Kalogirou C, Vergho D, Riedmiller H.Long-term results of ileal ureteric replacement: a 25-year single-centre experience. BJU Int. 2017;120(2):273–9. https://doi.org/10.1111/
bju.13825. Epub 2017 Mar 21
8. Zhong W, Hong P, Ding G, et al. Technical considerations and outcomes for ileal ureter replacement: a retrospective study in China. BMC Surg. 2019;19:9. https://doi.org/10.1186/
s12893- 019- 0472- 1.
9. Verduyckt FJ, Heesakkers JP, Debruyne FM.Long-term results of ileum interposition for ureteral obstruction. Eur Urol. 2002;42(2):181–7. https://doi.org/10.1016/s0302- 2838(02)00266- x.
10. Pamecha Y, Shelke U, Patil B, Patwardhan S, Kini S.Use of ileum for complex ureteric recon­struction: assessment of long-term outcome, complications, and impact on renal function. Urol Ann. 2018;10(4):369–74. https://doi.org/10.4103/UA.UA_5_18.
11. Boxer RJ, Fritzsche P, Skinner DG, Kaufman JJ, Belt E, Smith RB, Goodwin WE.Replacement of the ureter by small intestine: clinical application and results of the ileal ureter in 89 patients. J Urol. 1979;121(6):728–31. https://doi.org/10.1016/s0022- 5347(17)56972- 4.
12. Armatys S, Mellon M, Beck S, Koch M, Foster R, Bihrle R.Use of ileum as ureteral replace­ment in urological reconstruction. J Urol. 2009;181:177–81.
13. Naude JH.Buccal mucosal grafts in the treatment of ureteric lesions. BJU Int. 1999;83(7):751–4.
https://doi.org/10.1046/j.1464- 410x.1999.00019.x.
14. Kroep D, Loewen H, Klevecka V, Musch M. Treatment of long ureteric strictures with buccal mucosal grafts. BJU Int. 2010;105(10):1452–5. https://doi.org/10.1111/
j.1464- 410X.2009.08994.x. Epub 2009 Oct 28
15. Badawy AA, Abolyosr A, Saleem MD, Abuzeid AM.Buccal mucosa graft for ureteral stric­ture substitution: initial experience. Urology. 2010;76(4):971–5.; discussion 975. https://doi.
org/10.1016/j.urology.2010.03.095.
16. Zhao LC, Yamaguchi Y, Bryk DJ, Adelstein SA, Stifelman MD.Robot-assisted ureteral recon­struction using buccal mucosa. Urology. 2015;86(3):634–8. https://doi.org/10.1016/j.urol-
ogy.2015.06.006. Epub 2015 Jun 26
17. Dal Moro F, Macchi V, Porzionato A, Mandato FG, De Caro R.RUG technique: replacement of the ureter with gonadal vein. A cadaveric study. Minerva Urol Nefrol. 2019;71(1):85–91.
https://doi.org/10.23736/S0393- 2249.18.03261- 7. Epub 2018 Nov 7. PMID: 30421594
Renal Autotransplantation, Evolving
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Techniques, andTissue Engineering
18.1 Renal Autotransplantation
The rst renal autotransplantation was performed by Hardy in 1963 on a 64-year man whose right ureter was severed during aortic aneurysm surgery. The patient had rst a nephrostomy performed, and the ipsilateral kidney could not be sacriced since the left kidney was hydronephrotic [1].
(a) Indications: These are not limited to ureteric damages. A large series of 108
patients showed that most of the patients (62%) underwent this procedure to allow extracorporeal (back table) repair of complex renal artery lesions. Ureteric indications were present in 25% of patients only, while malignancy (extracor­poreal partial nephrectomy for bilateral renal cell carcinoma (RCC) or RCC in solitary kidneys) was the third group of indications with 13% of patients [2]. The ureteric indications can be summarized by damages or conditions not amenable to the previously described techniques in solitary anatomic or functioning kid­neys: trauma, iatrogenic injuries, atonic ureter, and urinary undiversion [2, 3].
(b) Technical aspects: Renal autotransplantation is performed according to the
same principles of donor nephrectomy and living donor allograft kidney trans­plantation. An open approach can be chosen through the traditional lombotomy, or through a transperitoneal route. A transperitoneal laparoscopic technique can also be utilized [4]. The kidney is harvested with a good length of vessels and is immediately perfused and cooled in a back table, where further vascular preparation is completed. The ureter is evaluated and the decision for the sub­sequent technique is made depending on the available ureteral length. A Gibson incision is then made to create the kidney bed and skeletonize the recipient’s vessels. The vascular anastomosis is made to the external iliac vessels using 6/0 Prolene and the continuity of the urinary tract is generally restored by uretero­neocystostomy, ureteroureterostomy, or pyeloureterostomy, if there is a persis­tent viable ureter proximally or distally [2, 3, 5]. However, when there is no
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© The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd. 2023 S. A. AL-Mamari, Urogenital Trauma: A Practical Guide,
https://doi.org/10.1007/978-981-99-6171-9_18
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18 Renal Autotransplantation, Evolving Techniques, andTissue Engineering
viable ureter at all (panureteral stricture of complete avulsion), the continuity can be re-established through a pyelovesicostomy preferably through a Boari ap [6, 7] (Figs.18.1, 18.2 and 18.3).
(c) Complications: With the exception of rejection, all classical complications of
renal transplantation can be excepted here: delayed graft function, vascular thrombosis, urinary tract infection and sepsis, fever of unknown origin, surgical site infection and abscess, urinoma, lymphocele, segmental infarction, pneumo­nia, artery stenosis, incisional hernia, pseudoaneurysm, anastomotic stricture, graft infection, and chronic wound pain [4].
(d) Results: Excellent long-term outcome is observed with 87–92% having good
renal function after 1.5–14years [2, 3].
Fig. 18.1 A 50-year-old woman with a history of ureteral avulsion during ureteroscopy for removal of proximal right ureteral stone. Consequently, she underwent a laparoscopic right ure­teral re-implantation and stone removal. An antegrade nephrostogram performed 3months later demonstrated hydronephrosis with retained contrast in the collecting system of the right kidney. There is no contrast visualized within the right ureter. Two clips can be identied along the ana­tomical path of the right ureter. (From Pham NH etal. [7], Research and Reports in Urology 2021, 13, 733–737. Originally published by and used with permission from Dove Medical Press Ltd.)
18.1 Renal Autotransplantation
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Fig. 18.2 Abdomen and pelvis CT scan with intravenous contrast demonstrates two main renal arteries. There is contralateral renal hypertrophy with preserved renal parenchyma on the ipsilat­eral side. (From Pham NH et al. [7], Research and Reports in Urology 2021, 13, 733–737. Originally published by and used with permission from Dove Medical Press Ltd.)
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Fig. 18.3 Abdomen and pelvis CT scan 6months after surgery (the kidney seems to be smaller because the slices are not via the main axis of the kidney). (From Pham NH etal. [7], Research and Reports in Urology 2021, 13, 733–737. Originally published by and used with permission from Dove Medical Press Ltd.)
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18 Renal Autotransplantation, Evolving Techniques, andTissue Engineering
18.2 Evolving Techniques andTissue Engineering
1. Articial ureters: The concept of subcutaneous nephron-vesical bypass (SNVB) was introduced more than two decades ago with promising results. The initial results using a silicone-PTFE prosthesis in this minimally invasive procedure showed encouraging results as a better alternative to permanent nephrostomy drainage, rendering the patient bagless [8]. Newer prostheses are made of an outer sheath of polyester over an inner silicone tube (Detour™, Mentor-Porgès) with equally satisfactory results [9, 10].
The procedure starts with percutaneous insertion of the prosthesis under gen­eral anesthesia through an Amplatz sheath. A large-bore plastic hollow tube is used to create a subcutaneous tunnel from the loin to the suprapubic region (Fig.18.4a–c). After the passage of the prosthesis, the large bore tube is removed. A Pfannenstiel incision is then performed to connect the prosthesis to the bladder through a small cystotomy: the inner silicone tube is inserted into the bladder, and the outer polytetrauoroethylene tube is xed onto the bladder wall with 4–0 Vicryl sutures.
2. Tissue engineering for ureteral substitutes: The progress of tissue engineering for ureteral substitutes has faced many challenges related to the nature of the ideal scaffold. Initially, acellular scaffolds such as small intestinal submucosa (SIS), collagen, or Gore-Tex, were tried in animal models to regenerate smooth muscle and urothelial cells, but the experience led to high rates of brosis. Further trials incorporated cell seeding of acellular scaffolds, including various candidates: primary smooth muscle or urothelial cells, mesenchymal or adipose­derived stem cells. There is still a long way to success, but ongoing research raises some hope [11].
References
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a
b
c
Fig. 18.4 (a) A large-bore plastic hollow tube is used to create a subcutaneous tunnel from the loin to the suprapubic region. (b) The bladder is accessed through a Pfannenstiel rectus splitting incision, and a small open cystotomy is performed following retrograde bladder distension. The inner silicone tube, with a few small perforations, is inserted into the bladder, and the outer polytet­rauoroethylene tube is secured onto the bladder wall with 4–0 Vicryl sutures. (c) Cystogram conrming the patency of the stent with free reux of contrast from the bladder into the collecting system with no leaks. (From Lloyd SN etal. [10], with permission from Elsevier)
References
1. Hardy JD. High ureteral injuries. Management by autotransplantation of the kidney. JAMA. 1963;184:97–101. https://doi.org/10.1001/jama.1963.03700150051008.
2. Novick AC, Jackson CL, Straffon RA. The role of renal autotransplantation in com­plex urological reconstruction. J Urol. 1990;143(3):452–7. https://doi.org/10.1016/
s0022- 5347(17)39988- 3.
3. Bodie B, Novick AC, Rose M, Straffon RA. Long-term results with renal autotransplan­tation for ureteral replacement. J Urol. 1986;136(6):1187–9. https://doi.org/10.1016/
s0022- 5347(17)45278- 5.