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DYSPHAGIA ASSESSMENT AND TREATMENT PLANNING: A TEAM APPROACH
dose of ≥60 Gy are known to signifi­cantly increase the risk of esophageal injury (Qiao et al., 2005). In the acute setting, the radiation induces mucosal necrosis and submucosal edema. Clini­cally, the discovery of ulcers, strictures, or fistulas is common in the setting of chronically induced radiation injury with the microscopic finding of submu­cosal fibrosis. Current treatment strate­gies focus on mitigating the impact of esophagitis through analgesics, anti­emetics, nutritional supplements, and, when necessary, the placement of a gastrostomy tube. Significant effort has been directed at developing biological modifiers with the potential to act as radioprotectors, but much additional work remains before any such agent becomes an integral part of radiothera­peutic management (Bradley & Mov­sas, 2004).
Figure 15 –9. Schatzki’s-B- ring (white
arrows) in an individual with solid food
dysphagia. Also present are high-grade esophagitis (white arrowheads) with ulcera- tion (black asterisk hernia. Treatment with proton-pump inhib­itors resolved the dysphagia and healed the esophagitis. Dilation and surgical reduction of the hernia were unnecessary.
) and a small hiatal
ESOPHAGEAL WEBS AND RINGS
Esophageal webs and rings are another frequent cause of esophageal phase dysphagia. An esophageal B-ring, or Schatzki’s ring, is one of the most com­mon causes of solid food dysphagia in adults (Figure 15–9). Schatzki’s rings can be found in up to 14% of patients on fluoroscopic swallow evaluations (DeVault, 1996). They occur at the esophagogastric junction (EGJ) and have squamous esophageal mucosa on the proximal margin and columnar gastric mucosa on the distal margin of the ring. They usually occur in the pres­ence of an HH and frequently become symptomatic when the diameter of the lumen is <13 mm. Esophageal dilation is the treatment of choice.
Compared to the B-ring, or Schatzki’s ring, which is membranous and occurs at the EGJ, the esophageal A-ring is a thick muscular ring that is present 2 cm above the EGJ (Figure 15–10). It marks the upper border of the LES. Esopha­geal A-rings are an infrequent cause of dysphagia. Treatment with dilation is usually unsuccessful, and the treatment of choice is injection of botulinum toxin into the muscular ring.
Esophageal webs are mucosal con­strictions that occur above the EGJ. Unlike B-rings, or Schatzki’s rings, they have squamous mucosa on both sides. An esophageal web usually occurs in the proximal esophagus. A web in the postcricoid region may be associated with Plummer-Vinson syndrome. Dila­tion is curative. Other, less frequent,
Figure 15–10. Barium esophagram dis-
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playing an esophageal A-
arrow
). Also present is a hiatal hernia
(white arrowheads) and a Schatzki’s
ring (black arrow ).
B-
ring (white
causes of esophageal dysphagia include vascular rings, diverticula, and large esophageal varices.
ESOPHAGEAL MOTILITY DISORDERS
Esophageal motility disorders are de­fined as an abnormality of EGJ outflow and/or derangement of peristalsis (Yadlapati et al., 2021). Despite typi­cally occurring as the consequence of a benign etiology, with minimal asso­ciated mortality, these disorders can induce considerable detrimental impact on the patient’s quality of health (Mittal & Vaezi, 2020).
Esophageal motility disorders repre­sent a heterogeneous spectrum of path­ological entities despite having some shared symptomatic overlap, includ­ing dysphagia, chest pain, heartburn,
15. ESOPHAGEAL PHASE DYSPHAGIA
and regurgitation. The pathogenesis of esophageal motility disorders is broadly classified as the consequence of a local disease process (primary) or a systemic disease process (secondary). When evaluating any patient with symptoms of dysphagia/obstructive symptoms, it is important to rule out structural abnormality, such as neoplastic disease, with esophagoscopy, before pursuing a functional esophageal investigation (Gyawali et al., 2020). In the absence of apparent mucosal or structural abnor­malities, high-resolution manometry (HRM) is frequently the next step, as endoscopic examination provides lim­ited sensitivity for esophageal motility disorders (Rohof & Bredenoord, 2017).
The introduction and advancement within HRM technology has signifi­cantly improved the understanding and visualization of esophageal physi­ologic function. Further, HRM has facil­itated the development of classification schemes for esophageal motility disor­ders, most notably being the Chicago Classification (Yadlapati et al., 2021). While HRM remains the gold standard for the diagnosis of esophageal motil­ity disorders, the Chicago Classification version 4.0 (CCv4.0) advocates for sup­portive diagnostic testing, particularly where HRM findings prove inconclu­sive (Yadlapati et al., 2021). Recom­mended supportive testing includes conventional timed barium esopha­gram (TBE) with concurrent 13-mm barium tablet and/or the functional lumen imaging probe (FLIP) system.
The FLIP system was recently ap­proved by the U.S. Food and Drug Administration (FDA) and consists of a distensible balloon encasing a cath­eter with multiple pairs of impedance
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DYSPHAGIA ASSESSMENT AND TREATMENT PLANNING: A TEAM APPROACH
electrodes (Savarino et al., 2020). The FLIP catheter is placed transorally immediately after sedated upper endos­copy (Bianca et al., 2020). Transnasal placement is possible in the sedated patient, but most available normative data are based on transoral placement (Savarino et al., 2020). The catheter is advanced such that the EGJ is identi­fied, with a few sensors in the stomach and the remainder in the esophageal lumen. The catheter is then connected to a mechanical pump, which regulates the inflation (distension) of the balloon using a solution of known conductivity and volume. The FLIP system quantifies the LES and esophageal distensibility (opening and compliance) function and can determine the directionality of peri­stalsis (antegrade or retrograde) (McMa­hon etal., 2007; Mittal & Vaezi, 2020).
Within the CCv4.0 classification scheme, primary esophageal motility disorders are distinguished by objective HRM measurements and classified as resulting from EGJ outflow obstruction (EGJOO), achalasia, or esophageal peri­stalsis (Yadlapati et al., 2021). Esopha­geal peristalsis disorders are further classified as resulting from either increased (distal esophagus spasm [DES] and hypercontractile esophagus) or decreased (ineffective esophageal motility [IEM] and absent contractility) esophageal contractility.
characterized by degeneration of the myenteric plexus, resulting in impaired relaxation of the EGJ and the loss of organized peristalsis (Yadlapati et al.,
2021). The incidence of achalasia is esti­mated to range between 0.03 and 2.92 per 100,000 people (Duffield et al., 2017; Samo et al., 2017). Clinical presentation notable for dysphagia for solids and liquids without oropharyngeal trans­fer difficulties occurs in roughly 90% of patients, regurgitation in 75%, weight loss in 60%, chest pain in 50%, and heartburn in 40% (Khashab et al., 2020; Vela et al., 2004). Diagnosis is made by HRM and TBE. The classical finding on esophagram is a dilated tortuous esophagus with a “bird’s beak” appear­ance at the LES (Figure 15–11). Endos­copy examination should be performed to exclude a neoplastic disease process that can present with a similar appear­ance on fluoroscopy (pseudoachalasia). According to specific HRM criteria, the
DISORDERS OF ESOPHAGOGASTRIC JUNCTION OUTFLOW
Achalasia
Achalasia is a primary esophageal motor disorder of unknown etiology
Figure 15 –11. Barium esophagram dis-
playing a dilated, tortuous esophagus with a “bird’s beak” appearance at the lower esophageal sphincter (white arrow ) in an individual with achalasia.
15. ESOPHAGEAL PHASE DYSPHAGIA
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CCv4.0 defines three subtypes of acha­lasia: Type I, akin to classic achalasia; Type II, seen with panesophageal pres­surization; and Type III, or spastic, acha­lasia (Yadlapati et al., 2021). Current treatment options include botulinum toxin injection, pneumatic dilation, lap­aroscopic Heller myotomy, and peroral endoscopic myotomy (POEM) (Kha­shab et al., 2020). Up to 5% of patients with end-stage disease might require esophagectomy (Vela et al., 2004). The achalasia subtype has been demon­strated to impact outcomes, with acha­lasia Type II proving most amenable to treatment and Type III proving most resistant (Khashab et al., 2020). Recently, it has been observed that Type III acha­lasia (and EGJOO) is significantly more likely to be associated with the use of opioids compared with achalasia Types I and II and should be considered a possible underlying etiology and guide management (Babaei et al., 2019; Ratu­apli et al., 2015; Richter, 2021).
Esophagogastric Junction Outflow Obstruction
The CCv4.0 defines EGJOO as an ele­vated median integrated relaxation pressure (IRP) in the primary and sec­ondary position and ≥ 20% swallows with elevated intrabolus pressure in the supine position, with evidence of peristalsis (Yadlapati et al., 2021). The incidence of EGJOO ranges from 3.2% to 11%, with a female predilection, and typically occurs later in life (59–69 years of age) (Richter & Clayton, 2019). The etiology of primary/idiopathic EGJOO remains unknown, although there is speculation that it may be a precur­sor to or a variant of achalasia (Scherer
et al., 2009). The clinical presentation of EGJOO is varied but includes dys­phagia, chest pain, heartburn, and/or regurgitation (Samo et al., 2017). An isolated finding of EGJOO on HRM should be considered clinically incon­clusive (Yadlapati et al., 2021). A per­centage of asymptomatic individuals undergoing HRM will be discovered to meet diagnostic criteria for EGJOO. To avoid unnecessary investigation and treatment, the CCv4.0 recommends that a distinction be made between a clini­cally irrelevant manometric observation and symptomatic EGJOO (Yadlapati etal., 2021). In symptomatic patients, the priority is ruling out any secondary cause of EGJOO, which reportedly can be discovered in 13% to 66% of cases (Richter & Clayton, 2019). Commonly encountered causes for secondary EGJOO include a large HH, esophageal stricture/ring, opioid use, or esopha­geal/gastric neoplasm. In the absence of secondary etiology, a diagnosis of primary/idiopathic EGJOO requires confirmation with an abnormal TBE with barium pill and/or FLIP test (Yad­lapati et al., 2021). Treatment options are similar to that of achalasia and include botulinum toxin injection, pneumatic dilation, or surgical myotomy (Rich­ter & Clayton, 2019). In symptomatic patients found to have a normal TBE and/or FLIP, treatment ranges from reassurance, calcium channel blockers, and PPIs to simple esophageal dilation.
DISORDERS OF PERISTALSIS
Distal Esophageal Spasm
The diagnosis of distal esophageal spasm (DES) is made on HRM and is
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DYSPHAGIA ASSESSMENT AND TREATMENT PLANNING: A TEAM APPROACH
defined by the CCv4.0 as ≥20% prema­ture contractions and distal contractile integral (DCI) of >450 mmHg/s/cm
3
(Yadlapati et al., 2021). Using TBE can provide diagnostic support, as it can identify tertiary contraction or a rosary bead or corkscrew esophagus associ­ated with DES (Figure 15–12).
It is believed that distal esopha­geal spasm results from an imbalance between the nitrogenic inhibitory pathway and the cholinergic excitatory pathway in the myenteric plexus (Gorti et al., 2020). It is rare, with a prevalence of between 3% and 9% of symptom­atic patients, with a slight female pre­dominance and a mean age of onset of 60 years (Khalaf et al., 2018). The most common symptoms of DES include dysphagia, heartburn, and noncardiac chest pain (Almansa et al., 2012). Treat­ment of DES is challenging, given that the etiology remains unknown. Phar­macological treatment is directed at symptom control and includes nitrates, phosphodiesterase-5 inhibitors, cal-
Figure 15–12. Barium esophagram dis-
playing a corkscrew esophagus in an individual with distal esophageal spasm.
cium channel blockers, and tricyclic antidepressants (Khalaf et al., 2018). Where acid reflux is suspected to be driving spasticity, treatment should focus on antireflux management, espe­cially as antispasmodic therapy has the potential to augment gastroesophageal reflux and worsen symptoms (Patel et al., 2022). Endoscopic options include POEM, botulinum toxin injection, and esophageal dilation (Khalaf et al., 2018).
Hypercontractile Esophagus
Hypercontractile esophagus is the HRM version of the old nutcracker esophagus and is defined as ≥20% hypercontractile swallows in the supine position (DCI >8,000 mmHg/s/cm (Chicago Classification Version 4.0 and Its Impact on Current Clinical Practice — Gastroenterology & Hepatology, n.d.; Yadlapati et al., 2021). Esophageal hypercontractility is either limited to the esophageal body or can also incor­porate the LES but is rarely limited to the LES (Kahrilas et al., 2015). A vari­ant of form characterized on HRM as having prominent, high-amplitude, repetitive contractions is aptly known as jackhammer esophagus (Yadlapati et al., 2021). The etiology of hypercon­tractile esophagus remains unknown, although it likely involves an excess of cholinergic drive with asynchrony of circular and longitudinal muscle con­tractions (Khalaf et al., 2018). An asso­ciation with GERD has been reported, although causality remains uncertain. Hypercontractile esophagus remains a rare diagnosis, with an occurrence ranging from 1.5% to 3% on HRM in motility centers (de Bortoli et al., 2021). Medical treatment is considered first,
3
)
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359
with the goal of decreasing symptoms. Antireflux medication is used to treat comorbid GERD, although it has not been shown to have a significant effect on pain relief (Borjesson et al., 2003). Sildenafil has been shown to decrease the amplitude of peristaltic contrac­tions in patients with hypertensive peristalsis and may be considered a treatment option (Lee et al., 2003). Tra­zodone, selective serotonin reuptake inhibitors, tricyclic antidepressants, or botulinum toxin injections may also be considered. There is also some evidence that POEM has the potential to nullify the hypercontractile segment of smooth muscle esophagus and potentially help symptoms (de Bortoli et al., 2021).
Ineffective Esophageal Motility and Absent Contractility
With the introduction of the CCv4.0, the diagnostic criteria of IEM have been made more restrictive (Richter, 2021) and are now defined as ≥70% ineffec­tive swallows (DCI >100 mmHg/s/cm and <450 mmHg/s/cm
3
) or ≥50% failed
swallows (DCI <100 mmHg/s/cm
3
3
). An observation of 50% to 70% inef­fective swallows is considered incon­clusive for a definitive diagnosis and requires further confirmatory testing, such as poor bolus transit on imped­ance or barium esophagram. About 45% of patients with manometric IEM will have normal transit of barium through the esophagus (Shakespear et al., 2004). Absent contractility is defined as 100% failed peristalsis (DCI <100 mmHg/s/
3
cm
), with a normal median IRP in the
upright position (Yadlapati et al., 2021).
The clinical relevance of IEM remains
under debate as studies have failed to
demonstrate a significant correlation between the diagnosis and esophageal symptoms, but the finding has been associated with a higher esophageal reflux burden (Gyawali et al., 2019; Richter, 2021; Shetler et al., 2017; Xiao et al., 2014). Treatment of both condi­tions remains challenging and, in the absence of a pharmacological agent for esophageal contractility augmentation, remains directed at addressing under­lying GERD and symptomatic relief.
SYSTEMIC (SECONDARY) CAUSES OF ESOPHAGEAL PHASE DYSPHAGIA
Connective Tissue Disease
Various connective tissue diseases can affect the esophagus. Systemic sclerosis (scleroderma), polymyositis, dermato­myositis, and systemic lupus erythema­tosus can all affect esophageal motility to varying degrees. Scleroderma affects the smooth muscle portion of the esoph­agus, while sparing the proximal skel­etal portion. The LES is often affected and may become hypotensive and incompetent. Severe GERD is frequent. In contrast to scleroderma, the inflam­matory myopathies affect the proximal skeletal muscle portion of the esopha­gus. The cricopharyngeus and pharyn­geal musculature may be involved. The distal esophagus and LES are spared, so associated GERD is less common than with scleroderma.
Patients with Sjögren’s syndrome (an autoimmune disease that affects mois­ture-producing glands) often complain of dysphagia. Although esophageal peri­stalsis may be affected, patients often develop severe swallowing problems
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DYSPHAGIA ASSESSMENT AND TREATMENT PLANNING: A TEAM APPROACH
because of xerostomia. Pills, breads, and other dry foods can be extremely dif­ficult to consume. Salivary bicarbon­ate is important in neutralizing even physiologic amounts of reflux. All pa­tients with Sjögren’s syndrome can lack this important buffering capacity and are prone to develop severe GERD.
Other systemic diseases affecting the esophagus include diabetes melli­tus, Parkinson’s disease, and hypothy­roidism. The autonomic dysfunction associated with diabetes can result in esophageal dysmotility with delayed esophageal emptying and in gastro­paresis with delayed gastric empty­ing. Parkinson’s disease can result in oropharyngeal and esophageal phase swallowing problems. Hypothyroid­ism can produce esophageal dysmotil­ity and LES dysfunction that should normalize with thyroid replacement therapy (Eastwood et al., 1982).
Esophageal Neoplasms
The majority of esophageal tumors are malignant. Squamous cell carcinoma used to be the most common esopha­geal cancer. Adenocarcinoma, however, has now overtaken squamous cell can­cer as the most frequent esophageal malignancy. Adenocarcinoma of the esophagus is the most rapidly expand­ing cancer in the United States. Early diagnosis by endoscopy and biopsy is critical. Benign esophageal tumors include leiomyomas, papillomas, cysts, fibrovascular polyps, lipomas, heman­giomas, and granular cell tumors. The most common presenting symptom for all esophageal tumors is dyspha­gia. Patient localization for the site of dysphagia is often inaccurate. Esopha-
goscopy is advised for all patients with solid food dysphagia to rule out esoph­ageal neoplasia and its premalignant precursors.
CONCLUSION
The causes of esophageal phase dys­phagia are diverse, and a detailed understanding of esophageal pathol­ogy is necessary to properly evaluate and manage patients presenting with dysphagia. Even patients complaining of suprasternal dysphagia symptoms localized in the neck may have esopha­geal pathology. Esophageal manometry and fluoroscopic studies can be use­ful in detecting anatomic and motil­ity abnormalities. A low threshold for esophageal endoscopy should be maintained so neoplasms or poten­tially treatable infectious causes are not missed. Endoscopy is mandatory for any patient with solid food dysphagia to rule out esophageal dysplasia and carcinoma.
STUDY QUESTIONS
1. What is the most common cause of esophagitis?
2. Match each of the following esoph­ageal motility disorders with the description that best fits:
a. Achalasia b. IEM c. DES d. Hypercontractile esophagus
(1) High-amplitude nonperistaltic
esophageal contractions
(2) Absence of esophageal
peristalsis
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(3) High-amplitude esophageal
contractions, peristaltic
Low-amplitude esophageal
(4)
contractions, peristaltic
3. Does scleroderma affect the proxi­mal esophagus?
4. What is one medication that is a common cause of pill-induced esophagitis?
REFERENCES
Almansa, C., Heckman, M. G., DeVault, K.
R., Bouras, E., & Achem, S. R. (2012). Esophageal spasm: Demographic, clinical, radiographic, and manometric features in 108 patients. Diseases of the Esophagus, 25(3), 214–221. https://doi.org/ .1442-2050.2011.01258.x
Babaei, A., Szabo, A., Shad, S., & Massey, B.
T. (2019). Chronic daily opioid exposure is associated with dysphagia, esophageal outflow obstruction, and disordered peri­stalsis. Neurogastroenterology and Motility, 31(7), e13601. https://doi.org/10.1111/ nmo.13601
Belafsky, P. C., & Kuhn, M. A. (2014). The
clinician’s guide to swallowing fluoroscopy. Springer. https://doi.org/10.1007/978-1­4939-1109-7
Bianca, A., Schindler, V., Schnurre, L., Mur-
ray, F., Runggaldier, D., Gyawali, C. P., & Pohl, D. (2020). Endoscope presence during endoluminal functional lumen imaging probe (FLIP) influences FLIP metrics in the evaluation of esophageal dysmotility. Neurogastroenterology and Motility, 32(6), e13823. https://doi.org/
10.1111/nmo.13823
Borjesson, M., Rolny, P., Mannheimer, C., &
Pilhall, M. (2003). Nutcracker oesopha­gus: A double-blind, placebo-controlled, cross-over study of the effects of lanso­prazole. Alimentary Pharmacology & Ther- apeutics, 18(11–12), 1129–1135. https://doi .org/10.1046/j.1365-2306.2003.01788.x
10.1111/j
Bradley, J., & Movsas, B. (2004). Radiation
esophagitis: Predictive factors and pre­ventive strategies. Seminars in Radiation Oncology, 14(4), 280–286. https://doi.org/
10.1016/j.semradonc.2004.06.003
Chicago Classification Version 4.0 and Its
Impact on Current Clinical Practice Gastroenterology & Hepatology. (n.d.). https://www.gastroenterologyandhepa tology.net/archives/october-2021/chi cago-classification-version-4-0-and-its­impact-on-current-clinical-practice/
Cook, I. (2008). Diagnostic evaluation of dys-
phagia. Nature Clinical Practice Gastroen- terology & Hepatology, 5, 393–403. https:// doi.org/10.1038/ncpgasthep1153
David, J., Shaffer, E., Andrews, C. N., &
Gupta, M. (2017). Eosinophilic esopha­gitis is the leading cause of food bolus impaction requiring endoscopy in Cal­gary, Canada: 416. American Journal of Gastroenterology, 112, S224.
de Bortoli, N., Gyawali, P. C., Roman, S.,
Tolone, S., Sifrim, D., Tutuian, R., . Savarino, E. V. (2021). Hypercontractile esophagus from pathophysiology to management: Proceedings of the Pisa Symposium. American Journal of Gastro- enterology, 116(2), 263–273. https://doi .org/10.14309/ajg.0000000000001061
Dent, J., El-Serag, H. B., Wallander, M. A.,
& Johansson, S. (2005). Epidemiology of gastro-oesophageal reflux disease: Asystematic review. Gut, 54(5), 710–717. https://doi.org/10.1136/gut.2004.051821
DeVault, K. R. (1996). Lower esophageal
(Schatzki’s) ring: Pathogenesis, diagno­sis, and therapy. Digestive Diseases (Basel, Switzerland), 14(5), 323–329. https://doi .org/ 10.1159/000171563
Duffield, J. A., Hamer, P. W., Heddle, R.,
Holloway, R. H., Myers, J. C., & Thomp­son, S. K. (2017). Incidence of achalasia in South Australia based on esophageal manometry findings. Clinical Gastro- enterology and Hepatology, 15(3), 360–365. https://doi.org/10.1016/j.cgh.2016.05 .036
Eastwood, G. L., Braverman, L. E., White, E.
M., & Vander Salm, T. J. (1982). Reversal
. .
362
https://t.me/medicina_free
DYSPHAGIA ASSESSMENT AND TREATMENT PLANNING: A TEAM APPROACH
of lower esophageal sphincter hypoten­sion and esophageal aperistalsis after treatment for hypothyroidism. Journal of Clinical Gastroenterology, 4(4), 307–310. https://doi.org/10.1097/00004836­198208000-00003
Evans, K. T., & Roberts, G. M. (1976).
Where do all the tablets go? Lancet, 2(2), 1237–1239.
Furuta, G. T., & Katzka, D. A. (2015). Eosin-
ophilic esophagitis. The New England Journal of Medicine, 373(17), 1640–1648. https://doi.org/10.1056/NEJMra150 2863
Gorti, H., Samo, S., Shahnavaz, N., & Qayed,
E. (2020). Distal esophageal spasm: Up­date on diagnosis and management in the era of high-resolution manometry. World Journal of Clinical Cases, 8(6), 1026–
1032. https://doi.org/10.12998/wjcc.v8 .i6.1026
Gyawali, C. P., Carlson, D. A., Chen, J. W.,
Patel, A., Wong, R. J., & Yadlapati, R. H. (2020). ACG clinical guidelines: Clini­cal use of esophageal physiologic test­ing. American Journal of Gastroenterology, 115(9), 1412. https://doi.org/10.14309/ ajg.0000000000000734
Gyawali, C. P., Sifrim, D., Carlson, D. A.,
Hawn, M., Katzka, D. A., Pandolfino, J. E., . . . Triadafilopoulos, G. (2019). Inef­fective esophageal motility: Concepts, future directions, and conclusions from the Stanford 2018 symposium. Neuro- gastroenterology & Motility, 31(9), e13584. https://doi.org/10.1111/nmo.13584
Kahrilas, P. J., Bredenoord, A. J., Fox, M.,
Gyawali, C. P., Roman, S., Smout, A. J. P. M., Pandolfino, J. E., & International High Resolution Manometry Working Group. (2015). The Chicago Classifica­tion of esophageal motility disorders, v3.0. Neurogastroenterology and Motility, 27(2), 160–174. https://doi.org/10.1111/ nmo.12477
Kaul, B. K., DeMeester, T. R., Oka, M., Ball,
C. S., Stein, H. J., Kim, C. B., & Cheng, S. C. (1990). The cause of dysphagia in uncomplicated sliding hiatal hernia and
its relief by hiatal herniorrhaphy. A roent genographic, manometric, and clinical study. Annals of Surgery, 211(4), 406–410. https://doi.org/10.1097/00000658-19900 4000-00005
Khalaf, M., Chowdhary, S., Elias, P. S., &
Castell, D. (2018). Distal esophageal spasm: A review. American Journal of Medicine, 131(9), 1034–1040. https://doi .org/10.1016/j.amjmed.2018.02.031
Khashab, M. A., Vela, M. F., Thosani, N.,
Agrawal, D., Buxbaum, J. L., Abbas Fehmi, S. M., . . . Wani, S. (2020). ASGE guideline on the management of acha­lasia. Gastrointestinal Endoscopy, 91(2), 213–227.e6. https://doi.org/10.1016/j .gie.2019.04.231
Lee, J. I., Park, H., Kim, J. H., Lee, S. I., & Conk-
lin, J. L. (2003). The effect of sildenafil on oesophageal motor function in healthy subjects and patients with nutcracker oesophagus. Neurogastroenterology and Motility, 15(6), 617–623. https://doi.org/
10.1046/j.1350-1925.2003.00450.x
Liu, L. W. C., Andrews, C. N., Armstrong,
D., Diamant, N., Jaffer, N., Lazarescu, A., . . . Tse, F. (2018). Clinical practice guide­lines for the assessment of uninvesti­gated esophageal dysphagia. Journal of
the Canadian Association of Gastroenterol­ogy, 1(1), 5–19. https://doi.org/10.1093/
jcag/gwx008
Lottrup, C., Olesen, S. S., & Drewes, A. M.
(2011). The pain system in oesophageal disorders: Mechanisms, clinical charac­teristics, and treatment. Gastroenterol- ogy Research and Practice, 2011, 910420. https://doi.org/10.1155/2011/910420
McMahon, B. P., Frøkjaer, J. B., Kunwald,
P., Liao, D., Funch-Jensen, P., Drewes, A. M., & Gregersen, H. (2007). The func­tional lumen imaging probe (FLIP) for evaluation of the esophagogastric junc­tion. American Journal of Physiology. Gas- trointestinal and Liver Physiology, 292(1), G377–G384. https://doi.org/10.1152/ajp gi .00311.2006
Mittal, R., & Vaezi, M. F. (2020). Esophageal
motility disorders and gastroesophageal
-
15. ESOPHAGEAL PHASE DYSPHAGIA
https://t.me/medicina_free
363
reflux disease. New England Journal of Medicine, 383(20), 1961–1972. https://doi
.org/10.1056/NEJMra2000328
Patel, D. A., Yadlapati, R., & Vaezi, M. F.
(2022). Esophageal motility disorders: Current approach to diagnostics and ther­apeutics. Gastroenterology, 162(6), 1617–
1634. https://doi.org/10.1053/j.gastro .2021.12.289
Qiao, W. B., Zhao, Y. H., Zhao, Y. B., &
Wang, R. Z. (2005). Clinical and dosimet­ric factors of radiation-induced esopha­geal injury: Radiation-induced esophageal toxicity. World Journal of Gastroenterology, 11(17), 2626–2629. https://doi.org/10 .37 48/wjg.v11.i17.2626
Ratuapli, S. K., Crowell, M. D., DiBaise, J.
K., Vela, M. F., Ramirez, F. C., Burdick, G. E., . . . Murray, J. A. (2015). Opioid­induced esophageal dysfunction (OIED) in patients on chronic opioids. American Journal of Gastroenterology, 110(7), 979–
984. https://doi.org/10.1038/ajg.2015 .154
Richter, J. E. (2021). Chicago Classification
version 4.0 and its impact on current clinical practice. Gastroenterology & Hepa- tology, 17(10), 468–475.
Richter, J. E., & Clayton, S. B. (2019). Diag-
nosis and management of esophagogas­tric junction outflow obstruction. Ameri- can Journal of Gastroenterology, 114(4), 544. https://doi.org/10.14309/ajg.00000000 00000100
Roeder, B. E., Murray, J. A., & Dierkhising,
R. A. (2004). Patient localization of esophageal dysphagia. Digestive Diseases and Sciences, 49(4), 697–701. https://doi .org/10.1023/b:ddas.0000026321.02927.39
Rohof, W. O. A., & Bredenoord, A. J. (2017).
Chicago Classification of esophageal motility disorders: Lessons learned. Cur- rent Gastroenterology Reports, 19(8), 37. https://doi.org/10.1007/s11894-017­0576-7
Samo, S., Carlson, D. A., Gregory, D. L.,
Gawel, S. H., Pandolfino, J. E., & Kah­rilas, P. J. (2017). Incidence and preva­lence of achalasia in central Chicago,
2004–2014, since the widespread use of high-resolution manometry. Clinical Gas- troenterology and Hepatology, 15(3), 366–
373. https://doi.org/10.1016/j.cgh.2016 . 08.030
Savarino, E., di Pietro, M., Bredenoord, A.
J., Carlson, D. A., Clarke, J. O., Khan, A., . . . Gyawali, C. P. (2020). Use of the func­tional lumen imaging probe in clinical esophagology. American Journal of Gas- troenterology, 115(11), 1786. https://doi .org/10.14309/ajg.0000000000000773
Scherer, J. R., Kwiatek, M. A., Soper, N. J.,
Pandolfino, J. E., & Kahrilas, P. J. (2009). Functional esophagogastric junction obstruction with intact peristalsis: Ahet­erogeneous syndrome sometimes akin to achalasia. Journal of Gastrointestinal Sur- gery, 13(12), 2219–2225. https://doi.org/
10.1007/s11605-009-0975-7
Shakespear, J. S., Blom, D., Huprich, J. E.,
& Peters, J. H. (2004). Correlation of radiographic and manometric findings in patients with ineffective esophageal motility. Surgical Endoscopy, 18(3), 459–
462. https://doi.org/10.1007/s00464-003­8920-4
Shetler, K. P., Bikhtii, S., & Triadafilopou-
los, G. (2017). Ineffective esophageal motility: Clinical, manometric, and out­come characteristics in patients with and without abnormal esophageal acid expo­sure. Diseases of the Esophagus, 30(6), 1–8. https://doi.org/10.1093/dote/dox012
Smith, D. F., Ott, D. J., Gelfand, D. W., &
Chen, M. Y. (1998). Lower esophageal mucosal ring: Correlation of referred symptoms with radiographic findings using a marshmallow bolus. American Journal of Roentgenology, 171(5), 1361–
1365. https://doi.org/10.2214/ajr.171.5 .9798879
Vakil, N. B., Traxler, B., & Levine, D. (2004).
Dysphagia in patients with erosive esophagitis: Prevalence, severity, and response to proton pump inhibitor treat­ment. Clinical Gastroenterology and Hepa- tology, 2(8), 665–668. https://doi.org/
10.1016/s1542-3565(04)00289-7