腹腔镜胰十二指肠切除术中胰十二指肠下动脉精准解剖与处理要点

陈彦辰, 黄有星, 谭志健

中国实用外科杂志 ›› 2026, Vol. 46 ›› Issue (8) : 1065-1070.

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中国实用外科杂志 ›› 2026, Vol. 46 ›› Issue (8) : 1065-1070. DOI: 10.19538/j.cjps.issn1005-2208.2026.08.11
专题笔谈·胰腺外科手术及其精细解剖

腹腔镜胰十二指肠切除术中胰十二指肠下动脉精准解剖与处理要点

作者信息 +

Key points of precise dissection and management of the inferior pancreaticoduodenal artery in laparoscopic pancreaticoduodenectomy

Author information +
文章历史 +

摘要

胰十二指肠下动脉(IPDA)是胰头钩突重要供血动脉,其精准解剖处理对于减少腹腔镜胰十二指肠切除术中出血、避免损伤、实现钩突完整性切除具有重要价值。因IPDA及其毗邻结构的复杂性,实施精准解剖具有技术难度。术前应基于薄层CT增强影像评估IPDA局部解剖特点及其与肿瘤的关系,规划个体化入路;对于复杂病例采用中间结合左后入路,沿肠系膜上动脉轴线薄层化分离至IPDA根部,预置肠系膜上动脉阻断带应对突发出血。该策略可应对复杂病例钩突切除、降低手术风险,对提升腹腔镜胰十二指肠切除术的安全性和根治性具有参考价值。

Abstract

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.

关键词

胰十二指肠下动脉 / 腹腔镜胰十二指肠切除术 / 精准解剖 / 手术安全 / 钩突

Key words

inferior pancreaticoduodenal artery / laparoscopic pancreaticoduodenectomy / precision dissection / surgical safety / uncinate process

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导出引用
陈彦辰, 黄有星, 谭志健. 腹腔镜胰十二指肠切除术中胰十二指肠下动脉精准解剖与处理要点[J]. 中国实用外科杂志. 2026, 46(8): 1065-1070 https://doi.org/10.19538/j.cjps.issn1005-2208.2026.08.11
CHEN Yan-chen, HUANG You-xing, TAN Zhi-jian. Key points of precise dissection and management of the inferior pancreaticoduodenal artery in laparoscopic pancreaticoduodenectomy[J]. Chinese Journal of Practical Surgery. 2026, 46(8): 1065-1070 https://doi.org/10.19538/j.cjps.issn1005-2208.2026.08.11
中图分类号: R6   

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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.
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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.
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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.
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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.

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志谢

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

基金

广东省中医药管理局项目(20242031)
广东省中医院“临床技术卓越人才”项目
广东省中医院“临床技术菁英人才”项目

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