Cadmium inhibits acid secretion in stimulated frog gastric mucosa

Andrea Gerbino1, Lucantonio Debellis, Rosa Caroppo

  • 1Department of General and Environmental Physiology, University of Bari, 70126 Bari, Italy. gerbino@biologia.uniba.it

Insights

Cadmium exposure inhibits gastric acid secretion by acting intracellularly on the H+/K+-ATPase, the proton pump. This environmental pollutant

Area of Science:

  • Environmental Toxicology
  • Gastroenterology
  • Cell Physiology

Background:

  • Cadmium is a toxic environmental pollutant with known effects on lungs, liver, and kidneys.
  • Its impact on gastric mucosa physiology remains less understood.

Purpose of the Study:

  • To investigate the mechanisms underlying cadmium's toxic effects on gastric mucosa physiology.
  • To determine how cadmium influences acid secretion and related electrical parameters.

Main Methods:

  • Intact amphibian gastric mucosa mounted in Ussing chambers.
  • Measurement of acid secretion, short-circuit current (Isc), transepithelial potential (Vt), and resistance (Rt).
  • Exposure to varying concentrations of cadmium on serosal and luminal sides, with and without histamine stimulation; use of TPEN and omeprazole.

Main Results:

  • Cadmium (20 µM–1 mM) applied to the serosal side inhibited histamine-stimulated acid secretion.
  • Cadmium increased NPPB-sensitive, chloride-dependent short-circuit current (Isc) only in histamine-stimulated tissues.
  • Cadmium's effects were intracellular, did not involve H2 histamine receptors, Ca2+ signaling, adenylyl cyclase, or carbonic anhydrase, but were blocked by omeprazole.

Conclusions:

  • Cadmium inhibits histamine-stimulated gastric acid secretion by intracellularly targeting the H+/K+-ATPase.
  • These findings elucidate cadmium's gastrotoxic mechanisms and suggest potential therapeutic targets for intoxication.

Related Concept Videos

Acid Suppressive Drugs for Peptic Ulcer Disease: Histamine H2-Receptor Antagonists01:28

Acid Suppressive Drugs for Peptic Ulcer Disease: Histamine H2-Receptor Antagonists

Histamine H2 receptors, which are intricately located on the basolateral membrane of parietal cells, play a crucial role in modulating gastric acid secretion. When released from enterochromaffin-like cells, histamine engages H2 receptors, initiating the cyclic AMP (cAMP) pathway. In this pathway, adenylyl cyclase converts ATP into cAMP, elevating intracellular cAMP levels. The activation of protein kinase A follows, stimulating the proton pump. This stimulation prompts the secretion of hydrogen...
Acid Suppressive Drugs for Peptic Ulcer Disease: Antacids01:31

Acid Suppressive Drugs for Peptic Ulcer Disease: Antacids

In the complex environment of the gastric lumen, excessive acid secretion can lead to the formation or worsening of ulcers within the delicate mucosal layer. Antacids, such as sodium bicarbonate and calcium carbonate, provide relief by neutralizing this acid, transforming it into harmless salt and water. This neutralization process raises the gastric pH from a highly acidic level of 1 to a more basic 3-4, reducing the acidity within the stomach.
However, this neutralization reaction between...
Acid Suppressive Drugs for Peptic Ulcer Disease: Proton Pump Inhibitors01:13

Acid Suppressive Drugs for Peptic Ulcer Disease: Proton Pump Inhibitors

Peptic ulcers, often induced by H. pylori infections or NSAID usage, arise from disruptions in the delicate balance of gastric acid production. Peptic ulcers stem from heightened gastric acid levels due to H. pylori infections or NSAID use. The protective mucus layer diminishes in the presence of these factors, allowing gastric acid to erode the stomach lining and form ulcers.
Gastric acid, a potent cocktail of hydrogen and chloride ions, is produced in specialized parietal cells within the...
Pathophysiology of Peptic Ulcer Disease: Injurious Factors01:22

Pathophysiology of Peptic Ulcer Disease: Injurious Factors

Peptic ulcers are sores on the stomach's inner lining and the upper small intestine, which are the result of disruptions in the mucosal layer that houses parietal cells which produce gastric acid, and chief cells which secrete pepsinogen.
In the antrum region, G cells secrete the gastrin hormone that binds to gastrin-cholecystokinin-B (CCK2) receptors on parietal and enterochromaffin-like (ECL) cells in the fundic glands. Simultaneously, the vagus nerve releases acetylcholine, which binds to M3...
GPCRs Regulate Adenylyl Cylase Activity01:09

GPCRs Regulate Adenylyl Cylase Activity

Some GPCRs transmit signals through adenylyl cyclase (AC), a transmembrane enzyme. AC helps synthesize second messenger cyclic adenosine monophosphate (cAMP). AC catalyzes cyclization reaction and converts ATP to cAMP by releasing a pyrophosphate. The pyrophosphate is further hydrolyzed to phosphate by the enzyme pyrophosphatase, which drives cAMP synthesis to completion. However, cAMP is rapidly degraded to 5′ AMP by the enzymes phosphodiesterase (PDE), preventing overstimulation of cells.
Two...
Mucosal Barrier of the Stomach01:25

Mucosal Barrier of the Stomach

The gastric glands contain parietal cells that secrete hydrochloric acid (HCl) for digestion. The cells secrete HCl because it is highly corrosive and essential for breaking down food. To achieve this, they secrete hydrogen and chloride ions into the lumen of the gastric glands, which combine to form HCl.
Within parietal cells, carbonic acid is first formed through the reaction of water and carbon dioxide. The dissociation of carbonic acid releases bicarbonate and hydrogen ions. The bicarbonate...