Development of the gastrointestinal system

Last updated: February 24, 2023

Development of the gastrointestinal system

GI

GI

Anatomy of the pharynx and esophagus
Anatomy of the oral cavity
Anatomy of the salivary glands
Anatomy of the tongue
Anatomy of the anterolateral abdominal wall
Anatomy of the abdominal viscera: Blood supply of the foregut, midgut and hindgut
Anatomy of the abdominal viscera: Esophagus and stomach
Anatomy of the abdominal viscera: Small intestine
Anatomy of the abdominal viscera: Large intestine
Anatomy of the abdominal viscera: Pancreas and spleen
Anatomy of the gastrointestinal organs of the pelvis and perineum
Anatomy of the abdominal viscera: Innervation of the abdominal viscera
Anatomy of the abdominal viscera: Liver, biliary ducts and gallbladder
Anatomy of the diaphragm
Anatomy of the inguinal region
Anatomy of the muscles and nerves of the posterior abdominal wall
Anatomy of the peritoneum and peritoneal cavity
Anatomy clinical correlates: Anterior and posterior abdominal wall
Anatomy clinical correlates: Viscera of the gastrointestinal tract
Anatomy clinical correlates: Peritoneum and diaphragm
Anatomy clinical correlates: Other abdominal organs
Development of the digestive system and body cavities
Development of the gastrointestinal system
Development of the teeth
Development of the tongue
Gallbladder histology
Esophagus histology
Stomach histology
Small intestine histology
Colon histology
Liver histology
Pancreas histology
Gastrointestinal system anatomy and physiology
Anatomy and physiology of the teeth
Liver anatomy and physiology
Enteric nervous system
Esophageal motility
Gastric motility
Gastrointestinal hormones
Chewing and swallowing
Carbohydrates and sugars
Fats and lipids
Proteins
Vitamins and minerals
Intestinal fluid balance
Pancreatic secretion
Bile secretion and enterohepatic circulation
Prebiotics and probiotics
Cleft lip and palate
Congenital diaphragmatic hernia
Esophageal web
Tracheoesophageal fistula
Pyloric stenosis
Sialadenitis
Parotitis
Oral candidiasis
Ludwig angina
Aphthous ulcers
Temporomandibular joint dysfunction
Dental abscess
Gingivitis and periodontitis
Dental caries disease
Oral cancer
Warthin tumor
Barrett esophagus
Achalasia
Plummer-Vinson syndrome
Mallory-Weiss syndrome
Boerhaave syndrome
Gastroesophageal reflux disease (GERD)
Zenker diverticulum
Diffuse esophageal spasm
Esophageal cancer
Eosinophilic esophagitis (NORD)
Gastritis
Gastric dumping syndrome
Peptic ulcer
Gastroparesis
Cyclic vomiting syndrome
Gastroenteritis
Gastric cancer
Gastroschisis
Omphalocele
Meckel diverticulum
Imperforate anus
Hirschsprung disease
Intestinal atresia
Intestinal malrotation
Necrotizing enterocolitis
Intussusception
Tropical sprue
Small bowel bacterial overgrowth syndrome
Celiac disease
Short bowel syndrome (NORD)
Lactose intolerance
Whipple's disease
Protein losing enteropathy
Microscopic colitis
Crohn disease
Ulcerative colitis
Bowel obstruction
Intestinal adhesions
Volvulus
Gallstone ileus
Abdominal hernias
Femoral hernia
Inguinal hernia
Small bowel ischemia and infarction
Ischemic colitis
Familial adenomatous polyposis
Peutz-Jeghers syndrome
Gardner syndrome
Juvenile polyposis syndrome
Colorectal polyps
Colorectal cancer
Carcinoid syndrome
Irritable bowel syndrome
Diverticulosis and diverticulitis
Appendicitis
Anal fissure
Anal fistula
Hemorrhoid
Rectal prolapse
Inflammatory bowel disease: Pathology review
Salmonella (non-typhoidal)
Clostridium perfringens
Bacillus cereus (Food poisoning)
Listeria monocytogenes
Hepatitis A and Hepatitis E virus
Clostridium botulinum (Botulism)
Leptospira
Pancreatitis: Pathology review
Gallbladder disorders: Pathology review
Pancreatic cancer
Colorectal polyps and cancer: Pathology review

Flashcards

Development of the gastrointestinal system

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Questions

USMLE® Step 1 style questions USMLE

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An investigator is studying the formation of the gastrointestinal tract in the human body. Which of the following is true regarding the formation of midgut derivatives?  

Transcript

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During week 3, the embryo is a flat disc made up of three germ layers: the endoderm, the mesoderm, and the ectoderm.

From the endoderm, which you can think of as being the belly side of this three-layered embryo pancake, a fluid filled bubble called the yolk sac forms and grows alongside the developing embryo.

The digestive system starts forming when the embryo folds along its vertical and horizontal axes—so it rolls up on itself, and turns into a tubular structure that looks a bit like a little shrimp.

Folding also pinches the yolk sac, sort of like squeezing a balloon through a ring, so a part of it goes inside the embryo and forms the primitive gut tube.

The primitive gut tube is initially sealed off at both ends—the buccopharyngeal membrane at the top separates the tube from the primitive mouth, and the cloacal membrane at the bottom separates it from the primitive anus.

This tube is divided into three parts, based on the arterial blood supply.

The first portion is the foregut, and it’s nourished by the celiac artery.

The middle portion, the midgut, is nourished by the superior mesenteric artery.

For a short while, the midgut communicates with the yolk sac through the vitelline duct, which is eventually incorporated into the umbilical cord.

Finally, there’s the last portion, the hindgut, which is nourished by the inferior mesenteric artery.

The hindgut ends with the cloaca, which is the primitive common drainage site for the urinary, genital, and digestive systems.

The foregut gives rise to the superior part of the digestive tube—up to and including the first half of the duodenum, as well as the liver, the gallbladder, and the pancreas.

At the very top of the foregut, starting at the buccopharyngeal membrane, there’s the primitive pharynx, which is initially just five sets of symmetrical pharyngeal arches.

These pharyngeal arches turn into various bones, muscles, and cartilages of the head and neck, and the last two arches give rise to the final pharynx.

Below the pharynx, the foregut gives rise to the esophagus.

In this region, there’s an outpouching of endoderm called the lung bud, and it sprouts from the anterior wall of the foregut.

During week 4, the tracheoesophageal septum forms a barrier that separates the lung bud from the foregut; the anterior compartment develops into the trachea and lungs, and the posterior compartment develops into the esophagus.

The esophageal epithelium and glands derive from the foregut endoderm, whereas the esophageal muscles derive from the surrounding mesoderm.

The epithelium proliferates and initially fills up the lumen of the esophagus, turning it into a solid rod of tissue, but by week 8, a process called recanalization occurs, and the esophagus turns it into the hollow tube we know and love.

Under the esophagus, there’s the primitive stomach which starts out as a small dilation of the foregut.

The stomach has a dorsal, or posterior border, and a ventral, or anterior border.

The dorsal border is anchored to the posterior body wall by a two-layered sheet of mesoderm tissue called the dorsal mesogastrium, and the ventral border is anchored to the anterior body wall by another two-layered sheet, the ventral mesogastrium.

Starting in week 5, the liver grows between the layers of the ventral mesogastrium, and the spleen between the layers of the dorsal mesogastrium.

The dorsal border of the stomach grows a lot faster than the ventral boder and forms the greater curvature of the stomach, while the ventral border becomes the lesser curvature.

Alright, so if we switch to a top-down view of this developing stomach, we see that as it grows, it undergoes a 90-degree, clockwise rotation along its length, pulling the dorsal mesogastrium and ventral mesogastrium with it.

This moves the greater curvature to the left side of the body, and the lesser curvature to the right side, and the stomach now has an anterior and a posterior face.

As the stomach rotates, the ventral mesogastrium becomes the lesser omentum.

The dorsal mesogastrium grows longer and bends as the stomach rotates, forming a peritoneal cavity derivative called the omental bursa between the stomach and the posterior body wall.

The omental bursa communicates with the great peritoneal cavity through a small opening known as the omental foramen.

The omental bursa grows and fills with peritoneal fluid, developing two projections: the upper recess, which extends behind the developing liver, and the lower recess, which extends downwards over the developing intestines.

Eventually, the sheets of dorsal mesogastrium that form the lower recess fuse and form the greater omentum.

Finally, the stomach rotates once more, but this time in a frontal plane—so imagine looking at it from the front now.

Key Takeaways

The gastrointestinal system starts to develop around week 3 of prenatal life. The earliest indication of gastrointestinal development is a thickening in the midline of the embryo that will become the gut tube. This thickening begins to form a groove along its length, and by week 5 of development this groove has divided into 3 sections: foregut, midgut, and hindgut. Each section will give rise to different parts of the gastrointestinal system.

The gastrointestinal system develops from all three germ layers (ectoderm, mesoderm, and endoderm). The ectoderm gives rise to the enteric nervous system; mesoderm gives rise to the connective tissue, including the wall of the gut tube and the smooth muscle, whereas the endoderm gives rise to the epithelial lining of the digestive tract, as well as to all of the associated glands and organs such as the liver, gallbladder, and the pancreas.