Добавил:
kiopkiopkiop18@yandex.ru t.me/Prokururor I Вовсе не секретарь, но почту проверяю Опубликованный материал нарушает ваши авторские права? Сообщите нам.
Вуз: Предмет: Файл:

Ординатура / Хирургия / @xirurgi_2025 / @xirurgi_2025 - 566 - файл

.pdf
Скачиваний:
0
Добавлен:
29.08.2026
Размер:
24 Мб
Скачать
2 Anatomy andPhysiology oftheStomach
https://t.me/medicina_free
15
of the distance from the pylorus to the cardia along the greater curvature [3]. The antrum can also be described as the portion from the angularis incisura (seen as a notch on the lesser curve where the stomach makes a sharp angle to the right) to pylorus. Histologically, the antrum can be conrmed by the lack of chief and parietal cells.
The superior aspect of the stomach is lined by the lesser omentum, a double layer of peritoneum. This omentum extends from the porta hepatis along the lesser curve of the stomach and upward to contribute to the ventral mesentery of the abdominal esophagus. The superior aspect of the lesser omentum makes up the gastrohepatic ligament, containing the left gastric artery and vein, hepatic division of the anterior vagal trunk, anterior and posterior gastric divisions of the vagal trunks (nerves of Laterjet), and lymph nodes [3]. An aberrant left hepatic artery can also be found in the gastrohepatic ligament as it arises from the left gas­tric artery. The lateral, or dextral, portion of the lesser omentum becomes the hepatoduodenal ligament, which contains the hepatic artery, portal vein, and common bile duct—otherwise known as the portal triad. The medial (left) portion of the lesser omentum gives rise to the gastrophrenic ligament. The pars ac­cida is an avascular portion of the gastrohepatic ligament over­lying the caudate lobe of the liver that can be entered to expose the right crus of the diaphragm. This allows for posterior dissec­tion and passage of a penrose drain around the distal esophagus to aid in retraction.
The greater omentum is a larger fold of visceral peritoneum that hangs from the greater curvature of the stomach, overlying the anterior surface of the small intestines, and then returns to ascend to the transverse colon. Since it is folded on itself, it con­tains four layers of visceral peritoneum. The greater omentum contains the left and right epiploic arteries along the greater cur­vature of the stomach. Division of the avascular plane between the greater omentum and transverse mesocolon permits entrance into the lesser sac and visualization of the posterior surface of the stomach and anterior surface of the pancreatic body and tail.
16
https://t.me/medicina_free
J. Borys and J. Kurtz
Complete visualization of the posterior surface of the stomach often requires the division of short gastric arteries to aid in mobi­lization.
The outermost portion of the stomach is covered by the perito­neum, which forms the serosa of the stomach. Moving internally, the next layer of the stomach is the muscularis propria or muscu­laris externa, which is composed of three layers of smooth mus­cle, an outer longitudinal, middle circular, and inner oblique layer. The middle circular layer is noted to be the only complete muscle layer of the stomach wall. The Auerbach myenteric nerve plexus lies within the layers of the muscularis externa. The submucosa overlies the muscularis externa and is a collagen-rich layer of con­nective tissue. Within the submucosa is a rich blood supply with extensive anastomosis and collateral circulation in addition to the Meissner plexus of autonomic nerves. The submucosa is the strength layer of the gastric wall. The mucosa of the stomach is comprised of surface epithelium, lamina propria, and muscularis mucosa. It is this histologic layer that marks the microscopic boundary between invasive and noninvasive gastric carcinoma.
The microscopic anatomy of the stomach helps delineate the functionality of the stomach. The mucosa of the stomach is lined by simple columnar glandular epithelium composed of surface mucous cells. The luminal surface contains gastric pits, which further contain the gastric glands that are responsible for the phys­iologic functions of the stomach. Within gastric pits, there are three types of glands: cardiac, parietal, and antral glands.
Cardiac glands are found adjacent to the esophagus and con­tain mucous, endocrine, and undifferentiated cells, but do not con­tain parietal or chief cells. Parietal glands are found within the fundus and the body of the stomach and contain parietal cells, which are the sites of hydrochloric acid production. Parietal glands also contain chief cells, which represent the site of pep­sinogen synthesis and secretion. Antral glands occupy the mucosa of the distal stomach and pylorus. The presence of gastrin cells is the distinguishing feature of antral glands.
2 Anatomy andPhysiology oftheStomach
https://t.me/medicina_free
17
Blood Supply, Lymphatics, andInnervation
Blood Supply
The stomach is richly vascularized with extensive collateral­ization from the four main arteries: left and right gastric arter­ies and left and right gastroepiploic arteries, depicted in Fig.2.2. The left gastric artery is the rst major branch, origi-
Fig. 2.2 Vascular supply of the foregut. The stomach is shown reected cephalad and the pancreatic duct is exposed. (From Yeo C: Shackelford’s sur­gery of the alimentary tract, ed. 8, Philadelphia, 2019, Elsevier)
18
https://t.me/medicina_free
J. Borys and J. Kurtz
nating from the celiac trunk in approximately 90% of individu­als. The left gastric artery travels along the lesser curve of the stomach, providing 1–3 esophageal branches as it travels to the gastric cardia [4]. The right gastric artery most commonly branches off the proper hepatic artery, but, alternatively, may branch off the left hepatic artery or common hepatic artery. The right gastric artery also travels along the lesser curvature of the stomach and eventually anastomosis with the left gastric artery. Traveling along the greater curvature, the left gastro­epiploic artery typically branches from the splenic artery and the right gastroepiploic artery most commonly branches from the gastroduodenal artery. The right gastroepiploic artery anas­tomoses along the greater curvature and each epiploic artery supplies short gastric arteries that perfuse the greater curvature of the stomach. The gastroepiploic arteries also supply the greater omentum. The right gastroepiploic artery deserves a special mention for its fundamental importance in foregut sur­gery. In settings of total or near-total gastrectomy, the right gastroepiploic artery will often serve as the sole blood supply for a gastric conduit serving as a neoesophagus. It is recom­mended that all surgeons aim to preserve this vessel during foregut surgery of any kind. The extensive vascular supply ensures a rich collateral network that allows adequate stomach perfusion, even with ligation of three out of four vessels [5]. This fact has led to the study of ischemic conditioning prior to esophagectomy to improve the neovascularization of the new conduit. This also, unfortunately, means that gastric hemor­rhage cannot be controlled by simple ligation of the gastric artery.
Venous drainage of the stomach parallels the arterial ow in most cases, with the left and right gastric arteries draining into the portal vein, the right gastroepiploic artery draining into the supe­rior mesenteric vein, and the left gastroepiploic draining into the splenic vein.
2 Anatomy andPhysiology oftheStomach
https://t.me/medicina_free
19
Lymphatics
Lymphatics of the stomach are divided into four zones, as noted below [2]. Zone III, the superior gastric zone, is the largest area of drainage. Despite the described zones, it should be noted that gas­tric cancers may metastasize to any of the four nodal groups, regardless of the location of the cancer. Nodal metastasis is the most important prognostic factor regarding curable gastric cancer and is the best predictor of recurrence and overall survival [6]. The extent of lymphadenectomy varies between Eastern and Western countries, but given the important prognostic implica­tions, this topic is subject to ongoing research.
Zone I: Inferior gastric drains into subpyloric and omental
nodes.
Zone II: Splenic drains into pancreaticosplenic nodes. Zone III: Superior gastric drains into superior gastric nodes. Zone IV: Hepatic drains into suprapyloric nodes.
Innervation
The stomach receives both parasympathetic and sympathetic innervations. The sympathetic innervation originates from the T5–T10 thoracic splanchnic nerves that reach the celiac plexus. This innervation conducts afferent impulses that mediate sensa­tion and pain.
Parasympathetic innervation is provided by the vagus nerve. As the vagus nerve descends inferiorly through the thorax, the left and right vagal nerves travel parallel with the esophagus. Both trunks divide into several branches around the esophagus, several centimeters distal to the tracheal bifurcation. These branches then coalesce above the esophagus hiatus, forming a periesophageal plexus. From this plexus, the left and right vagal trunks divide as they pass through the esophageal hiatus. The left vagus nerve is found along the anterior surface of the esophagus, and the right
20
https://t.me/medicina_free
vagus nerve travels posteriorly, lying between the esophagus and the aorta. This anatomic arrangement is often remembered with the acronym “LARP” (left anterior, right posterior). A truncal vagotomy is when both the right and left vagus nerves are divided above the level of the GE junction.
Most often at the level of the abdominal esophagus, the left vagus nerve gives off a hepatic branch to the liver, which travels within the lesser omentum and innervates the liver and biliary tract. The remaining left vagal bers travel along the lesser curve of the stomach as the anterior nerve of Latarjet, typically identi­ed 0.5–1.0cm from the lesser curvature. Anywhere from 2 to 12 branches supply the anterior stomach wall.
The right, or posterior, vagal nerve branches into the celiac divi­sion and innervates the posterior surface of the stomach. The crimi­nal nerve of Grassi is the rst branch from the right/posterior nerve and is known for being a potential cause of recurrent ulcers when left undivided in vagotomies. Division of right and left vagus nerves distal to the celiac and hepatic branches is described as a selective vagotomy. Highly selective vagotomy is accomplished by selective division of the vagus nerves, known as the crow’s feet, which sup­ply the corpus and fundus while maintaining more proximal inner­vation.
J. Borys and J. Kurtz
Physiology
The functionality of the stomach is dependent on the various pep­tides that are released from specialized cells. Gastrin is produced by G cells, located in the gastric antrum. Gastrin is the major hor­monal regulator of the gastric phase of acid secretion. Secretion of gastrin has trophic effects on the parietal cells and gastric entero­chromafn cells. Parietal cells, which produce hydrochloric acid, are stimulated by gastrin, acetylcholine from the vagus nerve, and histamine from enterochromafn-like cells. Therefore, via differ­ent mechanisms, acid secretion can be decreased by surgical removal of G cells with antrectomy, vagotomy, and/or medica­tions.
2 Anatomy andPhysiology oftheStomach
https://t.me/medicina_free
21
As food enters the stomach, the resultant gastric distention activates cholinergic neurons and stimulates gastrin release. As the food bolus empties through the pylorus, gastric distention decreases. This leads to the cessation of cholinergic stimulation, and the gastrin stimulates the production of somatostatin, which, when released, provides negative feedback for gastrin release.
Gastrin is inhibited in environments of pH less than 3. A gas­tric pH greater than 3 will lead to hypergastrinemia. This is seen in patients with pernicious anemia in the setting of chronic achlor­hydria, which leads to increased gastrin release. While the mecha­nism has not been denitively elucidated, chronic gastric infection with Helico pylori infection has been shown to cause increased gastrin release. It is thought that the presence of proinammatory cytokines has been shown to stimulate gastrin release. Hypergastrinemia can also be seen in patients being treated with acid- reducing agents such as proton pump inhibitors due to the lack of negative feedback on gastrin release by luminal acid. The lack of acid leads to a lack of somatostatin, which leads to a lack of inhibition of G cells and increased, uninhibited gastrin release. Hypergastrinemia can also be seen in patients with retained gas­tric antrum or Zollinger–Ellison syndrome.
Somatostatin is considered an inhibitor of gastric peptides. Somatostatin is produced by D cells located in the fundus and antrum. Somatostatin release is stimulated by antral acidication. Somatostatin has an inhibitory effect on the secretion of acid from parietal cells. Somatostatin release is inhibited by acetylcholine from vagal bers.
Histamine is stored in the acidic granules of enterochromafn cells and stimulates parietal cells to release hydrochloric acid.
Pepsinogen is a precursor to pepsin, a proteolytic enzyme secreted by chief cells and functions to initiate protein digestion.
Intrinsic factor is produced by the parietal cells within the gas­tric mucosa. The release of intrinsic factor is necessary for the absorption of cobalamin (vitamin B12) from the ileal mucosa. This is of clinical relevance, as total gastrectomy can lead to cobalamin malabsorption due to loss of intrinsic factor. Atrophic
22
https://t.me/medicina_free
J. Borys and J. Kurtz
gastritis can lead to similar effects due to a lack of intrinsic factor production by the gastric mucosa.
Gastric bicarbonate is produced by the surface mucus cells that
line the gastric lumen.
Gastric acid secretion is ultimately regulated by acetylcholine, gastrin, and histamine. Receptors for each of these are located along the basolateral membrane of the parietal cell. Ultimately, stimulation of any of these receptors activates that parietal cell proton pump, an H+/K+-ATPase that exchanges cytosolic hydro­gen ions (H+) for luminal potassium cations (K+). Parietal cells also have receptors for somatostatin, which serves to inhibit acid secretion. Gastric acid production can be prevented by receptor antagonist for each of the three primary stimulants listed above.
There are three phases of gastric acid secretion: the cephalic, gastric, and intestinal phases.
The gastric phase begins with the sight, smell, thought, or taste of food, which triggers the release of acetylcholine. This phase accounts for approximately 20% of gastric acid secretion. The release of acetylcholine also stimulates histamine release from enterochromafn cells, HCl release from parietal cells, and gas­trin release from the G cells. The gastric phase starts when food enters the gastric lumen, and the antral distension triggers gastrin release. This phase accounts for 30–40% of the acid production. The intestinal phase is activated when a food bolus enters the small intestine. This phase accounts for 10% of the secretory response to a meal. Eventually, luminal acidication will incite D cells to produce somatostatin and begin the inhibitory effect on acid secretion.
References
1. Teitelbaum EN, Hungness ES, Mahvi DM.Stomach. In: Townsend CM,
editor. Sabiston textbook of surgery. 20th ed. Pennsylvania: Elsevier;
2016. p.1188–201.
2. Skandalakis LJ, et al. Surgical anatomy and technique. New York:
Springer; 2009. p.285–94.
3. Brenkman HJF, van der Wielen N, Ruurda JP, etal. Surgical anatomy of
the omental bursa and the stomach based on a minimally invasive
2 Anatomy andPhysiology oftheStomach
https://t.me/medicina_free
approach: different approaches and technical steps to resection and lymphadenectomy. J Thorac Dis. 2017;9(Suppl 8):S809–16.
4. Mirilas P, Loukas M, Skandalakis LJ.Anatomic considerations in gastro­duodenal surgery. In: Fisher JE, editor. Fisher’s mastery of surgery. 7th ed. Pennsylvania: Wolters Kluwer; 2017. p.44136–5042.
5. Mulholland MW. Gastric anatomy. In: Mulholland MW, editor. Greeneld’s surgery scientic principles and practice. 6th ed. Pennsylvania: Wolters Kluwer; 2017. p.36715–7164.
6. Lirosi M, Biondi A, Ricci R.Surgical anatomy of gastric lymphatic drain­age. Transl Gastroenterol Hepatol. 2017;2:14. https://doi.org/10.21037/
tgh.2016.12.06.
23
Eect ofObesity onForegut
https://t.me/medicina_free
Physiology
RyanLamm andFrancescoPalazzo
Introduction
Obesity has reached epidemic proportions and affects the health of children and adults throughout the world. It is dened as a body mass index (BMI)>30kg/m2 for adults or greater than the 95th percentile of BMI according to the 2000 Centers for Disease Control and Prevention growth charts [1]. The prevalence of obe­sity has been on the rise during the last two decades, with 40% of the adult population in the United States and 13% of the adult population worldwide currently considered obese [1, 2]. Obesity is a predisposing risk factor for several morbid conditions, and research is accumulating on the pathways that link chronic weight gain to the onset of several pathological states. The cost of said comorbidities has been estimated to have an impact on the US annual healthcare cost of $147–210 billion [2].
Obesity has an impact on several aspects of human physiology
that are critical to the normal functioning of the GI tract. Several
3
R. Lamm · F. Palazzo (*) Department of Surgery, Thomas Jefferson University Hospital, Philadelphia, PA, USA e-mail: Ryan.lamm@jefferson.edu; Francesco.palazzo@jefferson.edu
© Society of American Gastrointestinal and Endoscopic Surgeons (SAGES) 2023 A. D. Patel et al. (eds.), The SAGES Manual of Physiologic Evaluation of Foregut Diseases,
https://doi.org/10.1007/978-3-031-39199-6_3
25
Соседние файлы в папке @xirurgi_2025