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Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_1033_Библиотеки_им_академика_М_И_Перельмана

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FNA vs. TCB, EUS-TCB reduced the number of needle passes compared with EUS-FNA, potentially reducing the cost and time of the procedure [18].
L. C. Shipley and A. M. Ahmed
Evaluation ofDuplication Cysts andChildhood Congenital Abnormalities oftheEsophagus
Duplication cysts arise from abnormal budding of the embryonic foregut at 5–8weeks of gestation. They most commonly occur in the ileum, esophagus, and colon with 50–70% enterogenic and 7–15% bronchogenic. These cysts can either be found within the wall or extrinsic to the wall and usually present as an asymptom­atic mediastinal mass with rare mass effect symptoms such as dysphagia. EUS is the diagnostic modality of choice as it can dif­ferentiate cystic versus solid lesions and location with regard to surrounding tissues [19]. EUS-FNA has been used to assist with diagnosis, however should be performed with caution given the increased risk of infection [20]. Denitive treatment is surgical removal; however, if asymptomatic, surveillance with EUS may be considered [21].
EUS has also proven to be effective in treating other types of esophageal congenital abnormalities such as esophageal ste­nosis [22]. Congenital esophageal stenosis is further classied into bromuscular thickening (54%), tracheobronchial rem­nants (TBR) (30%), and membranous web (16%). Current management includes surgery and dilation, except for the TBR subtype. EUS can identify TBR subtype, and thus, EUS-guided case selection has been shown to be predictive of success rate (90% vs. 29%) and decreases the rate of perforation (7% vs 24%) [22, 23].
Walled-O Pancreatic Necrosis
Walled-off pancreatic necrosis (WOPN) is associated with high morbidity and mortality. Interventions for both diagnosis and treatment have shifted toward a less-invasive strategy,
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EUS- guided methods. EUS allows for better visualization of the contents, structure, and surrounding structures of the pseu­docyst [24].
Evaluation andDiagnosis oftheLiver
EUS can sample liver lesions suspected of metastatic disease for diagnosis and staging. An example is shown in the gure below (Fig.10.2).
New developments in endoscopic ultrasound have expanded evaluation from sampling liver lesions and liver parenchyma for diagnosis to the measurement of portal pressure utilizing a novel catheter. The rst EUS-guided liver biopsy was performed in 2007 utilizing the linear array echoendoscope. Since then, several
Fig. 10.2 Fine-needle biopsy of metastatic liver lesion
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studies have demonstrated the efcacy of the technique with
93.9% diagnostic yield [25] and a comparative study between EUS-guided liver biopsy with percutaneous and transjugular tech­niques demonstrated lower complicates by EUS (p= 0.03) and increased specimen length by EUS (p<0.01) but fewer complete portal tracts (p < 0.01). NASH can present sporadically in the liver, and sampling both the left and right hepatic lobes may better assess the disease. This is more easily accomplished by EUS with directed passes to the specic lobes. Additionally, patient recov­ery is faster than the traditional methods of liver biopsy [26].
A recently approved device has a manometer that attaches to a needle that can be placed through the EUS and directly into hepatic vessels. This permits EUS-guided portal pressure mea­surement. The brosis in cirrhosis manifests itself by portal hypertension, which is best measured by portal venous pressure. The eld of EUS hepatology is novel with many advances expected in the coming years and includes EUS-guided portal vein embolization/thrombolysis, EUS-guided portal vein stent placement, EUS-guided therapy for liver lesions, and EUS­directed drainage of liver abscesses/cysts and bilomas [26].
L. C. Shipley and A. M. Ahmed
Role ofEUS inForegut Treatment
Treatment ofEsophageal, Gastric, andPancreatic Cancer
Endoscopic ultrasound ne-needle injection (EUS-FNI) is cur­rently used for palliative biliary drainage [27], palliative celiac plexus blockade, and precise submucosal injection prior to endo­scopic mucosal resection of neoplasia or other lesions [28]. Research efforts are currently focused on EUS-FNI as treatment for cancer; however, they have not been successful thus far [29]. Ethanol, brachytherapy seeds, chemotherapeutic agents, immuno­modulating cell cultures, and viral vectors have all been used in research efforts for anti-tumor therapy; however, this is largely limited to animal studies and a few small case series. Prospective
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studies are needed to determine the utility of EUS in cancer man­agement [28].
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Treatment ofDuplications Cysts andChildhood Congenital Abnormalities oftheEsophagus
Treatment of duplication cysts is typically via surgical enucle­ation in symptomatic cases, while asymptomatic cases are com­monly observed. EUS-guided needle aspiration has been proposed for treatment but has only been used in a small number of case reports, primarily in colonic duplication cysts [19].
Treatment ofWalled-O Pancreatic Necrosis
In addition to the ability to better visualize the contents, struc­ture, and surrounding structures of the pseudocyst, current EUS-guided strategies to treat WOPN include lumen-appos­ing metal stents (LAMS) and direct endoscopic necrosectomy (DEN) [24]. Further, EUS-guided drainage is safe, can be per­formed at a lower cost and decreases hospital stay, [30] and has a high success rate (Fig.10.3). In a randomized control study of 60 patients with pseudocysts, EUS-guided drainage showed a higher rate of technical success when compared to conventional transmural drainage (CTD) (94% vs. 72%, p=0.039); however, long-term outcomes showed no signifi­cant difference in EUD versus CTD (89% vs. 86%, p=0.696) [31]. A recent multicenter randomized study compared endo­scopic luminal drainage followed by endoscopic necrosec­tomy versus percutaneous drainage followed by minimally invasive surgical necrosectomy, if needed. The primary end point of mortality was equal in both groups, but the endo­scopic group had fewer complications such as pancreatic fis­tulas (5% vs 32%, p=0.0011) and a shorter mean length of hospitalization (53days vs 69days, p = 0.014) [32]. Larger prospective studies are needed to study long-term outcome,
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Fig. 10.3 Pseudocyst, walled-off necrosis drainage
L. C. Shipley and A. M. Ahmed
but a paradigm shift toward endoscopic drainage is being seen in the treatment of these patients.
Conclusion
EUS is currently utilized to evaluate and occasionally treat many abnormalities of the foregut. It offers a safe, cost-effective, and accurate diagnosis of malignancies, cysts, and tissue previously not well-dened. There are exciting new frontiers for the advanced endoscopist with regard to the treatment of foregut pathology; however, further prospective studies are needed to evaluate more recent advancements.
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5. San Roman AK, Shivdasani RA.Boundaries, junctions and transitions in the gastrointestinal tract. Exp Cell Res. 2011;317(19):2711–8.
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8. McCracken KW, Wells JM.Mechanisms of embryonic stomach develop­ment. Semin Cell Dev Biol. 2017;66:36–42.
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10. Berry MF.Esophageal cancer: staging system and guidelines for staging and treatment. J Thorac Dis. 2014;6(Suppl 3):S289–97.
11. Vazquez-Sequeiros E, Wiersema MJ, Clain JE, Norton ID, Levy MJ, Romero Y, etal. Impact of lymph node staging on therapy of esophageal carcinoma. Gastroenterology. 2003;125(6):1626–35.
12. Thakkar S, Kaul V.Endoscopic ultrasound staging of esophageal cancer. Gastroenterol Hepatol. 2020;16(1):14–20.
13. Mocellin S, Pasquali S.Diagnostic accuracy of endoscopic ultrasonogra­phy (EUS) for the preoperative locoregional staging of primary gastric cancer. Cochrane Database Syst Rev. 2015;(2):CD009944.
14. Rösch T, Lorenz R, Braig C, Feuerbach S, Siewert JR, Schusdziarra V, etal. Endoscopic ultrasound in pancreatic tumor diagnosis. Gastrointest Endosc. 1991;37(3):347–52.
15. Williams DB, Sahai AV, Aabakken L, Penman ID, van Velse A, Webb J, etal. Endoscopic ultrasound guided ne needle aspiration biopsy: a large single Centre experience. Gut. 1999;44(5):720–6.
16. Moutinho-Ribeiro P, Iglesias-Garcia J, Gaspar R, Macedo G.Early pan­creatic cancer- the role of endoscopic ultrasound with or without tissue acquisition in diagnosis and staging. Dig Liver Dis. 2019;51(1):4–9.
17. Guo J, Liu Z, Sun S, Wang S, Ge N, Liu X, et al. Endosonography­assisted diagnosis and therapy of gastrointestinal submucosal tumors. Endosc Ultrasound. 2013;2(3):125–33.
18. Levy MJ, Jondal ML, Clain J, Wiersema MJ.Preliminary experience with an EUS-guided trucut biopsy needle compared with EUS-guided FNA.Gastrointest Endosc. 2003;57(1):101–6.
19. Liu R, Adler DG.Duplication cysts: diagnosis, management, and the role of endoscopic ultrasound. Endosc Ultrasound. 2014;3(3):152–60.
20. Wildi SM, Hoda RS, Fickling W, Schmulewitz N, Varadarajulu S, Roberts SS, etal. Diagnosis of benign cysts of the mediastinum: the role and risks of EUS and FNA.Gastrointest Endosc. 2003;58(3):362–8.
21. Versleijen MW, Drenth JP, Nagengast FM.A case of esophageal duplica­tion cyst with a 13-year follow-up period. Endoscopy. 2005;37(9):870–2.
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22. Terui K, Saito T, Mitsunaga T, Nakata M, Yoshida H.Endoscopic man­agement for congenital esophageal stenosis: a systematic review. World J Gastrointest Endosc. 2015;7(3):183–91.
23. Usui N, Kamata S, Kawahara H, Sawai T, Nakajima K, Soh H, et al. Usefulness of endoscopic ultrasonography in the diagnosis of congenital esophageal stenosis. J Pediatr Surg. 2002;37(12):1744–6.
24. Alali A, Mosko J, May G, Teshima C. Endoscopic ultrasound-guided management of pancreatic uid collections: update and review of the lit­erature. Clin Endosc. 2017;50(2):117–25.
25. Mohan BP, etal. Efcacy and safety of EUS-guided liver biopsy: a sys­temic review and meta analysis. Gastrointest Endosc. 2019;89:238–46.
26. Hashimoto R, Chang KJ.Endoscopic ultrasound guided hepatic interven­tions. Dig Endoscopy. 2021;33:54–65.
27. Giovannini M, Dotti M, Bories E, Moutardier V, Pesenti C, Danisi C, etal. Hepaticogastrostomy by echo-endoscopy as a palliative treatment in a patient with metastatic biliary obstruction. Endoscopy. 2003;35(12):1076–8.
28. Verna EC, Dhar V. Endoscopic ultrasound-guided ne needle injection for cancer therapy: the evolving role of therapeutic endoscopic ultra­sound. Ther Adv Gastroenterol. 2008;1(2):103–9.
29. Faigel DO. The role of endoscopic ultrasound in esophageal cancer. Gastroenterol Hepatol (N Y). 2019;15(10):519–21.
30. Antillon MR, Shah RJ, Stiegmann G, Chen YK.Single-step EUS-guided transmural drainage of simple and complicated pancreatic pseudocysts. Gastrointest Endosc. 2006;63(6):797–803.
31. Park DH, Lee SS, Moon SH, Choi SY, Jung SW, Seo DW, et al. Endoscopic ultrasound-guided versus conventional transmural drainage for pancreatic pseudocysts: a prospective randomized trial. Endoscopy. 2009;41(10):842–8.
32. van Brunschot S, et al. Endoscopic or surgical step-up approach for infected necrotising pancreatitis: a multicentre randomised trial. Lancet. 2018;391:51–8.
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Part III
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Diagnostic Testing
High-Resolution Esophageal
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Manometry
11
withandwithout Impedance: Understanding the“Chicago Classication”
MohanadR.Youssef, MeredithFreeman, NatachaWathieu, DanuelLaan, andCarlosGalvani
Introduction toHigh-Resolution Manometry (HRM) without Impedance
High-resolution manometry is an updated version of conventional manometry that provides a panoramic view of the proximal phys­iology of the gastrointestinal tract from the pharynx to the stom­ach. The modications introduced in the 90’s included decreasing pressure sensors spacing from 3 to 5cm to 1-cm intervals, increas­ing the number of sensors and therefore lengthening the pressure sensing of the catheter from the pharynx to the stomach [1]. This allowed for simultaneous and continuous recording of motor
M. R. Youssef · D. Laan · C. Galvani (*) Division of Minimally Invasive Surgery and Bariatric, Department of Surgery, Tulane University, School of Medicine, New Orleans, LA, USA e-mail: cgalvani@tulane.edu
M. Freeman · N. Wathieu Tulane University, School of Medicine, New Orleans, LA, USA
© Society of American Gastrointestinal and Endoscopic Surgeons (SAGES) 2023 A. D. Patel et al. (eds.), The SAGES Manual of Physiologic Evaluation of Foregut Diseases,
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M. R. Youssef et al.
activity along the entire esophageal length (UES to LES) with each swallow. In addition, as compared to conventional manom­etry, pull-through is not required, it is more comfortable and faster, shifts of position do not affect the reliability and reproduc­ibility of pressure recordings, and it reduces inter-observer vari­ability [2]. The uniqueness of this revolutionary method lies in its ability to convert pressure data onto a topographical plot [3]. The esophageal pressure topography plots (EPT) or “Clouse Plots” have the capacity to convert manometric pressure into a topo­graphic (color contour) plot that illustrates the better spatial reso­lution of esophageal motor function [4].
Even though in its inception this work was only used for research, over time these remarkable advances have led to the development of new measurements and resulted in a new classi­cation. The Chicago Classication (CC) of esophageal motility disorders was developed to enable an objective analysis of HRM metrics and topography, utilizing an algorithmic scheme to ana­lyze clinical high-resolution manometry (HRM) studies [5]. The CC divides esophageal motility disorders according to the relax­ation of the lower esophageal sphincter (LES) as characterized by the integrated relaxation pressure (IRP) and motility of the esoph­ageal body. Once LES relaxation has been characterized, motility disorders may be further categorized by abnormalities of esopha­geal body peristalsis. The initial CC was modied [6], and the most recent revision of the Chicago Classication (v3.0) was pub­lished in 2015 [4].
As a result of these advances, today HRM is a diagnostic method that is considered the gold standard for the evaluation of esophageal motor function. HRM supplements endoscopy and radiologic studies not only to help elucidate numerous foregut symptoms, but also to guide different therapeutic options such as medical, endoscopic, surgical, and even behavioral therapy. The purpose of this chapter was to explore high-resolution manometry and the Chicago Classication v3.0 and its utilization in the char­acterization of esophageal motility disorders.