Current Evidence on Endoscopic Biliary Drainage in the Era of Surgically Altered Anatomy: A Narrative Review
Abstract
1. Introduction
2. Anatomical Implications of Surgically Altered Anatomy
2.1. Type I SAA
- •
- Sleeve gastrectomy, performed for the treatment of obesity, consists of resection of the greater curvature of the stomach with preservation of continuity between the gastric remnant and the duodenum.
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- Billroth I gastrectomy (BI), typically performed for gastric cancer or peptic ulcer disease, consists of antrectomy followed by an end-to-end gastroduodenostomy.
2.2. Type II SAA
2.2.1. Altered Anatomy with Native Ampulla of Vater
- •
- Billroth II gastrectomy (B-II) and gastrojejunostomy were performed in the past for gastric cancer or peptic ulcer disease. The reconstruction is usually a side-to-end gastrojejunostomy, which creates an afferent limb in continuity with the duodenum and an efferent limb for alimentary transit. The afferent limb is typically 30–50 cm long. The papilla is approached through the afferent loop in an inverted orientation, with the biliary axis usually at the 5–6 o’clock position rather than the conventional 11–12 o’clock position. The Braun anastomosis is a modification of the B-II reconstruction that introduces an additional entero-enterostomy to connect the afferent and efferent intestinal loops. B-II anatomy is particularly challenging and may carry a higher risk of perforation, especially when a side-viewing duodenoscope is used [11]. Moreover, it may necessitate specialized devices, such as reverse sphincterotome [7,17,36]. Figure 1 shows a biliary cannulation during B-II.
- •
- Roux-en-Y gastric bypass (RYGB) is a bariatric procedure for obesity in which a small proximal gastric pouch is created and the excluded stomach remains in continuity with the duodenum. The duodenum and proximal jejunum form the biliopancreatic limb, while the alimentary stream passes through the Roux limb, which is connected to the pouch through a gastrojejunostomy. The Roux limb is usually 75–150 cm long, and the biliopancreatic limb is joined to it through a jejunojejunostomy with a lower length ranging approximately from 30 to 75 cm [26,27]. Papillary access is difficult because the native papilla remains in the excluded duodenum and must be reached luminally through a long, angulated, multi-anastomotic route [27]. Figure 2 shows a biliary cannulation with forward colonoscope during short-limb RYGB.
- •
- Mini gastric bypass/one-anastomosis gastric bypass (OAGB) is a single-loop variant that does not require the creation of a Roux limb or a jejunojejunostomy. A long gastric pouch is anastomosed directly to the small bowel through a single gastrojejunostomy, resulting in an afferent biliopancreatic limb and an efferent alimentary limb [4]. The papilla remains excluded from the alimentary stream, so access remains anatomically complex.
- •
- Subtotal or total gastrectomy with Roux-en-Y reconstruction is used for gastric malignancy or severe benign disease. In subtotal gastrectomy, continuity is restored by a gastrojejunostomy to a Roux limb; in total gastrectomy, by an esophagojejunostomy. The jejunojejunostomy is usually located 35–60 cm distal to the primary anastomosis. The main technical issue is long-limb traversal, together with sharp angulation and loss of direct orientation toward the papilla [4].
2.2.2. Altered Anatomy with Biliodigestive Anastomosis
- •
- Pancreaticoduodenectomy (Whipple’s procedure) is performed mainly for periampullary and pancreatic head malignancies. Reconstruction requires a pancreaticojejunostomy, a hepaticojejunostomy and a gastrojejunostomy or duodenojejunostomy in pylorus-preserving variants. The hepaticojejunostomy is usually located 5–10 cm downstream from the pancreaticojejunostomy. In addition, alongside the classic technique involving antral resection, a pylorus-preserving approach has been described as facilitating jejunal intubation. Technical difficulty arises from multiple anastomoses, postoperative adhesions, loop fixation, and the need to identify a biliary anastomosis that is often approached obliquely and may be difficult to stabilize [4,8,11]. Figure 3 shows a EUS-guided hepaticogastrostomy after failed papilla cannulation in Whipple’s reconstruction.
- •
- Roux-en-Y hepaticojejunostomy is performed for bile duct injury, choledochal cyst excision, liver transplantation, or other hepatopancreatobiliary reconstructions. The stomach and duodenum are usually intact, but the proximal bile duct is anastomosed to a jejunal limb through a hepaticojejunostomy. The jejunojejunostomy is usually 15–20 cm distal to the ligament of Treitz, and the biliary anastomosis is often near the end of a blind afferent limb or cul-de-sac, making identification and cannulation technically demanding.
3. Luminal Techniques for Biliary Drainage in SAA
3.1. Duodenoscope-Assisted ERCP
3.2. Forward-Viewing ERCP
3.3. Enteroscope-Assisted ERCP
| Working Length | Operative Channel | Accessory Compatibility | |
|---|---|---|---|
| Duodenoscope-assisted ERCP | ~124 cm | 4.2 mm | Full; elevator available |
| Forward-viewing (colonoscope) ERCP | 133–168 cm (pediatric/standard), up to 200 cm (“long”) | 3.2 mm (pediatric); 3.7 mm (standard/”long”) | Broad for long or standard; no elevator, cap-assisted cannulation compensates |
| Enteroscope-assisted ERCP | 152–155 cm (short-type); 200 cm (conventional) | 3.2 mm (short-type); 2.8 mm (conventional) | Limited: short-type improves compatibility; conventional 200 cm scopes require dedicated extra-length devices |
4. EUS-Guided or EUS-Assisted Biliary Drainage in SAA
4.1. EUS-Guided Hepaticogastrostomy
4.2. Antegrade Stenting
4.3. EUS-Guided Rendezvous ERCP
4.4. EUS-Directed Trans-Gastric or Trans-Enteric ERCP (EDGE, EDEE)
5. Laparascopic-Assisted ERCP
6. Techniques Comparisons and Discussion
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AEs | Adverse Events |
| B-II | Billroth II gastrectomy |
| BE-ERCP | Balloon-Enteroscopy-assisted ERCP |
| BI | Billroth I gastrectomy |
| DBE | Double-Balloon Enteroscopy |
| EA-ERCP | Enteroscope-Assisted ERCP |
| EDEE | Endoscopic ultrasound-directed transenteric ERCP |
| EDGE | Endoscopic ultrasound-directed transgastric ERCP |
| ERCP | Endoscopic Retrograde Cholangiopancreatography |
| ESGE | European Society of Gastrointestinal Endoscopy |
| EUS | Endoscopic Ultrasound |
| EUS-AS | EUS-guided Antegrade Stenting |
| EUS-BD | EUS-guided Biliary Drainage |
| EUS-HGS | EUS-guided Hepaticogastrostomy |
| EUS-RV | EUS-guided Rendezvous |
| LA-ERCP | Laparoscopic-Assisted ERCP |
| LAMS | Lumen-Apposing Metal Stent |
| OAGB | One-Anastomosis Gastric Bypass (mini gastric bypass) |
| PTBD | Percutaneous Transhepatic Biliary Drainage |
| RV | Rendezvous |
| RYGB | Roux-en-Y Gastric Bypass |
| SAA | Surgically Altered Anatomy |
| SBE | Single-Balloon Enteroscopy |
| SEMS | Self-Expandable Metal Stent |
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| Technique | Main Anatomical Indication | Technical/Clinical Success | Adverse Events | Reversibility and Practical Notes |
|---|---|---|---|---|
| Duodenoscope-assisted ERCP | Type I SAA (sleeve, Billroth I); Billroth II with short afferent limb (<50–60 cm) | Billroth II: pooled cannulation 93.8–95.3% | AEs 4.3–7.9%, perforation 1.8–14.4% in B-II | Fully reversible; elevator and full accessory range available; access phase is the main vulnerability |
| Forward-viewing (colonoscope) ERCP | Billroth II; short-limb Roux-en-Y; salvage after failed duodenoscope | Billroth II: afferent-limb intubation 97.4%, selective cannulation 95.2%; RYGB insertion 88.2%, cannulation 85.4% | AEs 7.5%, Perforation 1.7%, PEP 5.4% | Fully reversible; no elevator, mitigated by cap-assisted cannulation; limited by reach in long limbs |
| Enteroscope-assisted ERCP | Long-limb SAA: RYGB, hepaticojejunostomy, pancreaticoduodenectomy | RYGB: pooled technical success ~77%; highest in Billroth II and lower in Roux-en-Y reconstructions. | Pooled AEs 13% in RYGB; SBE longer time and more post-ERCP cholangitis/cholecystitis | Fully reversible; least invasive of the advanced options; time-consuming and highly anatomy-dependent |
| EUS-BD (overall in SAA) | Failed or unfeasible luminal access or malignant | Mixed SAA and techniques: pooled technical 97.8%, clinical 94.9% | Pooled AEs 12.8%: cholangitis, bleeding, bile leak and abdominal pain | Requires advanced skills; evidence mostly retrospective and in non-SAA |
| EDGE/EDEE | RYGB (EDGE); Roux-en-Y hepaticojejunostomy and long-limb reconstructions (EDEE); anticipated repeat access | RYGB: EDGE technical 96%; Roux-en-Y hepaticojejunostomy and other long-limb reconstructions: EDEE technical 87.3%, clinical 93.8% | EDGE AEs 17–20%, perforation 4%; EDEE AEs 20%, 9.1% LAMS-related | Reversible after fistula closure; allows duodenoscope use and repeat interventions; LAMS migration in single session. |
| LA-ERCP | RYGB, particularly with gallbladder in situ | RYGB: procedural success 93–98.1% | AEs 18–28%; PEP 3–7%, surgical site infection 3–9%, perforation 2–4%. | Allows same-session cholecystectomy; requires general anesthesia, operating room and surgeon–endoscopist coordination |
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© 2026 by the authors. Published by MDPI on behalf of the Lithuanian University of Health Sciences. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Scalvini, D.; Ciccioli, C.; Bruni, A.; Valvano, M.; La Rosa, G.; Dota, M.; Cappellini, A.; Massetti, G.; Aprile, G.; Torello Viera, F.; et al. Current Evidence on Endoscopic Biliary Drainage in the Era of Surgically Altered Anatomy: A Narrative Review. Medicina 2026, 62, 1766. https://doi.org/10.3390/medicina62091766
Scalvini D, Ciccioli C, Bruni A, Valvano M, La Rosa G, Dota M, Cappellini A, Massetti G, Aprile G, Torello Viera F, et al. Current Evidence on Endoscopic Biliary Drainage in the Era of Surgically Altered Anatomy: A Narrative Review. Medicina. 2026; 62(9):1766. https://doi.org/10.3390/medicina62091766
Chicago/Turabian StyleScalvini, Davide, Carlo Ciccioli, Angelo Bruni, Marco Valvano, Gianmaria La Rosa, Michele Dota, Alessandro Cappellini, Giulio Massetti, Guglielmo Aprile, Francesca Torello Viera, and et al. 2026. "Current Evidence on Endoscopic Biliary Drainage in the Era of Surgically Altered Anatomy: A Narrative Review" Medicina 62, no. 9: 1766. https://doi.org/10.3390/medicina62091766
APA StyleScalvini, D., Ciccioli, C., Bruni, A., Valvano, M., La Rosa, G., Dota, M., Cappellini, A., Massetti, G., Aprile, G., Torello Viera, F., Veronese, L., Franchellucci, G., Mazza, S., Mauro, A., Bardone, M., Fugazza, A., Spadaccini, M., Repici, A., & Anderloni, A. (2026). Current Evidence on Endoscopic Biliary Drainage in the Era of Surgically Altered Anatomy: A Narrative Review. Medicina, 62(9), 1766. https://doi.org/10.3390/medicina62091766

