PDF(4410 KB)
Key points of precise dissection and management of the inferior pancreaticoduodenal artery in laparoscopic pancreaticoduodenectomy
CHEN Yan-chen, HUANG You-xing, TAN Zhi-jian
Chinese Journal of Practical Surgery ›› 2026, Vol. 46 ›› Issue (8) : 1065-1070.
PDF(4410 KB)
PDF(4410 KB)
Key points of precise dissection and management of the inferior pancreaticoduodenal artery in laparoscopic pancreaticoduodenectomy
The inferior pancreaticoduodenal artery (IPDA) is a major supplying artery for the pancreatic uncinate process. Its precise dissection is crucial for minimizing intraoperative bleeding, preventing iatrogenic injury, and achieving complete resection of the uncinate process during laparoscopic pancreaticoduodenectomy (LPD). However, precise dissection remains technically challenging due to the complexity of the IPDA and its adjacent structures. Preoperatively, thin-slice contrast-enhanced CT imaging is utilized to evaluate the local anatomical features of the IPDA and its anatomical relationship with the tumor, facilitating the planning of an individualized surgical approach. For complex cases, a combined anterior intermediate and left posterior approach is employed. Protective dissection and layer-by-layer advancement are carried out along the axial plane of the superior mesenteric artery (SMA) to eventually expose the IPDA root. Preemptive placement of an SMA vascular control tape allows for effective management of sudden bleeding. This strategy addresses the complexities of uncinate process resection, reduces surgical risks, and provides a valuable reference for enhancing the safety and radicality of LPD.
inferior pancreaticoduodenal artery / laparoscopic pancreaticoduodenectomy / precision dissection / surgical safety / uncinate process
| [1] |
|
| [2] |
|
| [3] |
In 2023, the Japan Pancreas Society (JPS) published the new eighth edition of the Japanese classification of pancreatic carcinoma. We present here an excerpted version in English, based on the latest edition. The major changes in this revision are as follows: In the eighth edition of the Union for International Cancer Control (UICC), the T category was changed to be based on tumor size; however, the eighth edition of the Japanese classification retains the previous T category based on local invasion factors. Lymph nodes have been renamed, and regional lymph nodes have been defined by location. Peritoneal cytology, which was not previously included in distant metastasis (M), has now been included in the M category. Moreover, significant additions have been made regarding the pathological diagnosis of endoscopic ultrasound‐guided fine‐needle aspiration biopsy (EUS‐FNAB) and criteria for histological assessment of the effects after chemotherapy and radiation therapy. Although this classification is aimed at carcinoma originating in the pancreas, not in the bile duct or duodenum, if the differentiation of the primary organ is difficult, this classification should be applied. It is also desirable to describe tumors other than carcinoma and metastatic tumors to the pancreas in accordance with this classification.
|
| [4] |
|
| [5] |
Mesopancreas dissection with central vascular ligation and the superior mesenteric artery (SMA)-first approach represent the cornerstone of current principles for radical resection for pancreatic head cancer. The surgeon dissecting around the SMV and SMA should be aware regarding the anatomical variants in this area. The aims of this systematic review and meta-analysis are to detail the surgical anatomy of the superior mesenteric vessels and to propose a standardized terminology with impact in pancreatic cancer surgery.We conducted a systematic search to identify all published studies in PubMed/MEDLINE and Google Scholar databases from their inception up to March 2017.Seventy-eight studies, involving a total of 18,369 specimens, were included. The prevalence of the mesenteric-celiac trunk, replaced/accessory right hepatic artery (RRHA), common hepatic artery, and SMV inversion was 2.8, 13.2, 2.6, and 4.1%, respectively. The inferior pancreaticoduodenal artery has its origin into the first jejunal artery, SMA, and RRHA, in 58.7, 35.8, and 1.2% of cases, respectively. The SMV lacks a common trunk in 7.5% of cases. The first jejunal vein has a trajectory posterior to the SMA in 71.8% of cases. The left gastric vein drains into the portal vein in 58%, in splenic vein (SV) in 35.6%, and into the SV-PV confluence in 5.8% of cases.Complex pancreaticoduodenal resections require detailed knowledge of the superior mesenteric artery and vein, which is significantly different from the one presented in the classical textbooks of surgery. We are proposing the concept of the first jejunopancreatic vein which impacts the current oncological principles of pancreatic head cancer resection.
|
| [6] |
To describe the details of the surgical technique of pancreatoduodenectomy (PD) with systematic mesopancreas dissection (SMD-PD), using a supracolic anterior artery-first approach.An artery-first approach in PD has been advocated in pancreatic cancer to judge resectability, clear the superior mesenteric artery margin from invasion, or reduce blood loss. However, the efficacy of an artery-first approach in mesopancreas dissection remains unclear.This study involved 162 consecutive patients who underwent PD with curative intent. The patients were divided into 82 SMD-PDs and 80 conventional PDs (CoPD) and then stratified further according to the dissection level, that is, level 1 was applied to 24 simple mesopancreas divisions for early inflow occlusion including 11 SMD-PDs, level 2 for 63 en bloc mesopancreas resections (26 SMD-PDs), and level 3 for 75 patients who underwent a hemicircumferential superior mesenteric artery plexus resection to keep the margin free from cancer invasion (45 SMD-PDs). The clinical and imaging results were collected to assess the feasibility and validity of SMD-PD with an artery-first approach.Blood loss and operation duration were significantly less in the SMD-PD group than in the CoPD group among the total 162 patients. The imaging analysis showed that four fifths of pancreatic arterial branches came from the right dorsal aspect of the superior mesenteric artery and cancer abutment occurred exclusively from the same direction indicating the validity of an artery-first approach.SMD-PD using an SAA is feasible across PD cases, with acceptable short-term outcomes, and we propose this procedure as a promising option for PD.
|
| [7] |
|
| [8] |
The purpose of this work was to evaluate the arteries supplying the pancreaticoduodenal (PD) complex.The study was conducted on 15 fresh enbloc pancreatic specimens by latex injection method which enabled the visualization of the peripancreatic arteries and their minute branches.The gastroduodenal (GDA), anterior superior pancreaticoduodenal (ASPD), and anterior inferior pancreaticoduodenal (AIPD) artery was found in all the cases, whereas the posterior superior pancreaticoduodenal (PSPD) and posterior inferior pancreaticoduodenal (PIPD) artery was present in 93.34% cases. The ASPD artery originated from GDA in all the cases. Two types of variations were observed in the origin of PSPD artery and four types each in the origin of AIPD and PIPD artery. Anatomical and numerical variations were observed in both anterior and posterior arches, posterior arch being absent in 20% cases.In the present study, an attempt was made to systematically describe the individual arterial configurations of the PD complex. The information provided here has important implications for preoperative planning of technically challenging surgeries and interventions around the pancreatic head.
|
| [9] |
Understanding the anatomy of the inferior pancreaticoduodenal artery (IPDA) is important in patients undergoing pancreaticoduodenectomy, especially in an artery-first approach, resulting in some studies focusing on IPDA anatomy. However, the studies have covered only cases without variation in hepatic arterial anatomy, a common arterial variant, suggesting the necessity of the investigation of IPDA anatomy in cases with the variant. Using images of multidetector row computed tomography, cases with replaced right hepatic artery (rRHA) were picked out among 714 patients undergoing multidetector row computed tomography for determining arteries of the pancreatic head at our institution. IPDA branching pattern was investigated in the rRHA cases. Three-dimensional reconstruction was performed to visually understand the branching pattern in representative cases. rRHA was identified in 139 cases (19.5%); rRHA originating from the superior mesenteric artery (SMA) (type 1; 74.1%), celiac axis (type 2; 18.0%), and others (type 3; 7.9%). IPDA branching pattern was categorized; IPDA originated from SMA (type A), posterior and anterior IPDA originated from rRHA and SMA, respectively (type B), or IPDA originated from rRHA (type C). Of type 1 cases, 69, 23, and 11 cases showed type A, B, and C pattern, respectively. Of type 2 cases, 16 and 9 cases showed type A and B, respectively. All 11 type 3 cases showed type C. IPDA branching pattern was determined in the rRHA cases. This would help identification of rRHA cases where the artery-first approach is technically less feasible at pancreaticoduodenectomy (type 1-B, 1-C, and 2-B).
|
| [10] |
The pancreas receives multiple arterial sources that should be considered in patients undergoing pancreatic surgery. The aim of this study is to describe pancreatic vascularization and to explore the anatomical basis of postoperative complications. Ten specimens from unembalmed cadavers, including the retroperitoneal vessels and organs and spleen, were injected with acrylic resins to obtain vascular casts. Thirty computed tomography angiographies (CTA) of subjects with no pancreatic pathology (mean age 70.9 years) were also analyzed. A paucivascular area at the neck of the pancreas was apparent in all vascular casts. At CTA: (1) the transverse pancreatic artery, the only artery running from the cervicocephalic to the somatocaudal segment, was visible in 76.9% of cases; (2) the splenic artery was suprapancreatic in 66.7% and intrapancreatic with a tortuous course in 33.3%; (3) the posterior superior pancreaticoduodenal artery was visible in 100% of cases, the anterior superior pancreatico-duodenal artery in 92.6%, the anterior inferior pancreaticoduodenal artery in 73.1%, the posterior inferior pancreaticoduodenal artery in 86.4%, the dorsal pancreatic artery in 65.4%, the great pancreatic artery in 73.1%, and the pancreatic arteries to the body and caudal pancreatic arteries in 96.2%. Our study demonstrated great individual variability of the pancreatic vasculature, which can be explored by CTA and could be relevant to surgical procedures. Clin. Anat. 30:614-624, 2017. © 2017 Wiley Periodicals, Inc.© 2017 Wiley Periodicals, Inc.
|
| [11] |
The pancreas has complex arterial supplies. Therefore, special attention should be paid in pancreatic arterial intervention for patients with acute pancreatitis and pancreatic carcinomas. Knowledge of pancreatic arterial anatomy and arterial territory is important not only to perform pancreatic arterial intervention, but to read the pancreatic angiography and cross-sectional image. We reviewed 226 selective abdominal angiography and CT scans during selective arteriography (CTA) of common hepatic artery, superior mesenteric artery, splenic artery, or peripancreatic arteries including posterior superior pancreaticoduodenal artery, anterior superior pancreaticoduodenal artery, inferior pancreaticoduodenal artery, and dorsal pancreatic artery. CTA images were evaluated to clarify the cross-sectional anatomy of the pancreatic arterial territory. Variations of the peripancreatic arteries were also investigated. In this exhibit, schemes and illustrative cases demonstrate pancreatic arterial territory and variations.
|
| [12] |
During a pancreatoduodenectomy (PD) it is important that the anatomy of the arcade of blood vessels in the head of the pancreas is fully understood before the surgery in order to reduce intraoperative bleeding. In most of the patients our group has treated, the inferior pancreaticoduodenal artery (IPDA), one of the efferent arteries of the head of the pancreas, has formed a short common trunk with the first jejunal artery (FJA). Thus, by first locating the origin of the FJA, it was easier to locate the IPDA. There are two ways to locate the IPDA: (1) by measuring the distance between the origin of the superior mesenteric artery (SMA) and that of the FJA; (2) by measuring the distance between the origin of the middle colic artery (MCA) and that of the FJA. Here, we report our measurements of both distances using three-dimensional (3D) models of arteries constructed with multidetector-row computed tomography (MD-CT) images and discuss which is the better measurement to determine the location of the IPDA during PD.A total of 140 patients underwent 64-MD-CT imaging to acquire early and late arterial phase scans. The distance between the origin of the SMA and that of the FJA and the distance between the origin of the MCA and that of the FJA origin were measured.In patients whose IPDA formed either a common trunk with the FJA or arose directly from the SMA, the IPDA or the common truck was located in parallel with the SMA at a very short distance of approximately 18 mm from the MCA origin towards the center. The distance between the SMA origin and the IPDA was significantly longer (approximately 36 mm). Therefore, locating the MCA origin during PD helped determine the location of the IPDA. However, in patients whose anterior inferior pancreaticoduodenal artery (AIPDA) and posterior inferior pancreaticoduodenal artery (PIPDA) arose separately, the distance between the AIPDA origin and the MCA origin was approximately 18 mm, the distance between the AIPDA origin and the PIPDA origin was approximately 19 mm, and the distance between the PIPDA origin and the SMA origin was 19 mm. Thus, locating the SMA helped determine the location of the IPDA during PD in these patients.Based on our findings that the distance between the IPDA origin and the MCA origin was short, we have shown that it is effective to locate the MCA origin in order to determine the location of the IPDA.
|
| [13] |
|
| [14] |
Little is known about the anatomy of the jejunal veins (JVs) flowing into the superior mesenteric vein (SMV), and whether they can be safely divided during pancreaticoduodenectomy.Computed tomography was used to review the jejunal branches off the superior mesenteric artery (SMA) and into the SMV in 123 consecutive patients. The common trunk of the JVs (jejunal venous trunk, JVT) was classified as ventral or dorsal to the SMA.The first JVT involved multiple JVs in 108 (87.8%) cases. The first JVT diameter (≥7 or <7 mm) was significantly associated with the number of JVs (≥4 or <4; P < 0.05). Surgical outcomes were not significantly different between cases in which the first JVT was sacrificed (n = 32) or preserved (n = 91), except for operation time and portal venous resection frequency. One of the 32 cases (3.1%) with first JVT sacrifice showed severe congestion of the jejunal limb requiring emergency jejunal resection.The size and topology of the first JVT are associated with the number of JVs involved. This is important for understanding the resectional area of the mesojejunum and the pathogenesis of jejunal congestion.© 2017 Wiley Periodicals, Inc.
|
| [15] |
|
| [16] |
Although the artery-first approach is widely used in open pancreaticoduodenectomy, it is difficult to laparoscopically expose the origin of the inferior pancreaticoduodenal artery (IPDA) from the left side of the superior mesenteric artery (SMA). By contrast, damaging the inferior pancreaticoduodenal veins (IPDVs) is possible when approaching the IPDA from the right side of the SMA. To facilitate the artery-first approach in laparoscopic pancreaticoduodenectomy (LPD), we focused on the proximal-dorsal jejunal vein (PDJV) that branched from the superior mesenteric vein (SMV) dorsal side and drained the IPDVs. This study aimed to clarify the usefulness of the right SMA approach using the PDJV preisolation method.The PDJV was first isolated, and the IPDVs were divided along the PDJV on the right side of the SMA. Then, the IPDA was divided at the root without first separating the pancreatic head from the portal vein and the SMV. Overall, 21 patients underwent this approach, and the results were retrospectively compared with those of 21 patients who underwent the artery-first approach, which was performed on the left side of the SMA. Anatomical characteristics of the PDJV were evaluated using multidetector computed tomography for the two groups.Operative times and resection times were significantly lower for the PDJV preisolation group than for the conventional LPD group (489.3 vs. 541.7 min, respectively; p = 0.002). During anatomical evaluation, 41 patients (97.6%) had a PDJV that drained from the SMV dorsally and was in contact with the anterior aspect of the uncinate process. The PDJV was confirmed as the first jejunal vein in 31 patients (73.8%) and as the second jejunal vein in 10 patients (23.8%).This approach facilitates dissection of the IPDA on the right side of the SMA, thereby reducing operative times.
|
| [17] |
吴文广, 管雯斌, 刘永琛, 等. 胰腺系膜外科解剖及组织学观察研究[J]. 中国实用外科杂志, 2017, 37(7): 774-777. DOI: 10.19538/j.cjps.issn1005-2208.2017.07.19.
|
| [18] |
杨尹默, 许静涌. 胰腺全系膜切除的进展与评价[J]. 中华消化外科杂志, 2016, 15(6):537-539. DOI:10.3760/cma.j.issn.1673-9752.2016.06.003.
|
| [19] |
Retro pancreatic invasion is a major concern in pancreatic head carcinoma. Posterior clearance has been recognized as an independent risk factor for disease recurrence and hence patient survival. The aim of this study was to report a standardized method that ensures posterior clearance with Total Mesopancreas Excision (TMpE).Our procedure consisted in a posterior approach with cranio-caudal dissection at the origin of the superior mesenteric artery and the celiac trunk all along their right semi-circumference. This allowed a complete clearance of retro pancreatic tissues with safe control of pancreaticoduodenal arteries at their origin.Fifty-two consecutive pancreatic resections with TMpE were performed. Sixteen cases were associated to vascular resection. Pathology revealed an adenocarcinoma of the pancreatic duct, distal bile duct, periampullary and neuroendocrine carcinoma. Mesopancreas was invaded by cancer in 12 cases, of these, 3 had invaded margins and 7 had a margin less than 1 mm. Mesopancreas was the only site of tumour infiltration. Applying the International Union Against Cancer criteria, an R0 resection was thus achieved in 42 patients.Our procedure is feasible and safe in experienced hand. It is a description of a standardized method for TMpE that clearly shows an advantage in improving posterior clearance and R0 resection.© 2011 Elsevier Ltd. All rights reserved.
|
| [20] |
辛培源, 杨振宇, 黄俊翔, 等. 胰腺膜解剖的再认识及其在外科手术中的应用价值[J]. 中华外科杂志, 2021, 59(7): 597-600. DOI: 10.3760/cma.j.cn112139-20210312-00121.
|
| [21] |
|
| [22] |
|
| [23] |
The anatomical structure around the pancreatic head is very complex and it is important to understand its precise anatomy and corresponding anatomical approach to safely perform minimally invasive pancreatoduodenectomy (MIPD). This consensus statement aimed to develop recommendations for elucidating the anatomy and surgical approaches to MIPD.
|
| [24] |
|
| [25] |
National Comprehensive Cancer Network. NCCN clinical practice guidelines in oncology, pancreatic adenocarcinoma 2022[EB/OL]. [2026-05-22]. https://www.nccn.org/professionals/physician_gls/pdf/pancreatic.pdf.
|
| [26] |
|
| [27] |
|
| [28] |
|
| [29] |
A complete dissection around the superior mesenteric artery (SMA) with artery-first concept is crucial during pancreaticoduodenectomy for periampullary cancers. The left-posterior (LP) approach to the SMA may be effective during robot-assisted pancreaticoduodenectomy (RPD), but data on its technical feasibility and clinical outcomes are limited.We retrospectively reviewed 83 RPD patients utilizing the LP approach, dividing them into early (n = 42) and late (n = 41) groups to assess procedural maturity. The LP approach was initiated at the first phase of resection to achieve circumferential SMA dissection from the left and posterior aspect and early vascular control through ligation of the inferior pancreaticoduodenal artery (IPDA). Postoperative short-term outcomes were compared between the two groups.The late group demonstrated significantly shorter operative times (518 vs. 626 min; p < .01) and higher rates of IPDA ligation (90% vs. 71%; p = .03). The median blood loss in the late group was 50 mL (65 mL in the early group; p = .39). Lymph node retrieval number was 17 in both (p = .81), and R0 resection was achieved in all late group cases (96% in the early group; p = .35).With experience from approximately 80 cases, the LP approach for RPD has enabled precise SMA dissection and early vascular control. A stable and super-magnified caudal view provided by robotic surgery is particularly advantageous for this approach.© 2025 Japanese Society of Hepato‐Biliary‐Pancreatic Surgery.
|
| [30] |
|
| [31] |
In pancreaticoduodenectomy (PD), the approach to superior mesenteric artery (SMA) is a critical process that supports adequate surgical margins and radicality for pancreatic tumors. In most of the reports on laparoscopic PD, the right-sided approach in which the jejunum is pulled out to the right side for peri-SMA dissection is used, since the left side of the SMA is difficult to dissect, and the only way to do this is to dissect the vein first.We devised a method to simplify and safely perform peri-SMA dissection by reversing the process, starting from the left side of the SMA. The first step involves the mobilization of the pancreatic head, which allows for rotation around the SMA. The second step involves the dissection of the left side of the SMA and transection of the jejunum. The key point is to change the incision line between the anterior and posterior mesojejunum. The third process includes the inferior pancreatoduodenal artery (IPDA) and first jejunal artery (J1A) dissection, which can be easily performed from the left side because the SMA rotates by simply continuing the dissection along the previously exposed SMA, and the IPDA/J1A are safely dissected at the root because they are drawn to the left side. The remaining processes are performed on the right side.This method was performed in 16 cases, and in most cases IPDA/J1A were divided from the left side.The technique for SMA dissection from the left posterior side was described with illustrations and video. Our method allows safe oncologic dissection around SMA avoiding anatomical misorientation during laparoscopic PD.© 2023. The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.
|
| [32] |
谭志健, 沈展涛, 陈桂豪, 等. 腹腔镜胰十二指肠切除术中钩突处理技巧[J]. 中国实用外科杂志, 2022, 42(5): 535-538. DOI:10.19538/j.cjps.issn1005-2208.2022.05.14.
|
| [33] |
苗毅, 黄东亚, 李强. 从“考古”到“盗墓”:重症急性胰腺炎外科治疗的历史启示与现实思考[J]. 中华消化外科杂志, 2018, 17(1):9-13. DOI:10.3760/cma.j.issn.1673-9752.2018.01.003.
|
| [34] |
谭志健, 钟小生, 仇成江, 等. 腹腔镜胰十二指肠切除术中“血流控制技术”策略的思考与应用[J]. 中华外科杂志, 2025, 63(11): 1005-1008. DOI:10.3760/cma.j.cn112139-20250804-00392.
|
利益冲突 所有作者均声明不存在利益冲突
感谢广东省中医院仇成江编辑手术视频;感谢广东省中医院刘张苑珠绘制本文插图
/
| 〈 |
|
〉 |