In humans, the presence of gallstones is the most common cause of pancreatitis due to the obstruction of the terminal portion of the choledochal, interrupting the flow of pancreatic secretions and causing an intense inflammatory process in the pancreas, with an increase in the concentration of digestive enzymes in the serum and inflammatory mediators1,2.
Two different theories have been proposed to explain the development of acute pancreatitis (AP). The "common channel" theory suggests that the stones present in the gallbladder obstruct the distal common bile duct system, allowing bile secretion to flow retrograde into the pancreatic duct. The second theory (the "duct obstruction" theory) suggests that the obstruction of the pancreatic duct by excess gallstones causes a blockage in the flow of pancreatic secretion to the duodenum, causing ductal hypertension3. Although the mechanisms that lead to acute biliary pancreatitis are not fully understood, the outcome is an intense inflammatory process. Digestive enzyme eruption and pancreas self-digestion lead to histopathological changes, an increase in inflammatory cytokines (IL-1β, IL-6, TNF-α) in ascitic fluid and serum, and an increase in acute phase proteins4,5,6.
Severe acute pancreatitis is a condition that deserves clinical attention due to the involvement of multiple organs and a high mortality risk. Animal models for the reproduction of acute pancreatitis (AP) are important as these explain the pathophysiological mechanisms of the disease and help in monitoring the evolution of inflammatory events, starting from the initial stages of the disease. This is usually not possible in the clinics2,7. In addition, access to pancreatic tissues is easy in preclinical studies, favoring the elucidation of changes linked to clinical conditions8 along with the possibility of working with isogenic species, eliminating undesirable variables, and mirroring clinical similarity with the outcomes observed in the human condition9.
Biliary and non-biliary models for the induction of acute pancreatitis in rats and mice species have been frequently studied in the scientific literature. Non-biliary methods of induction include administration of supramaximal stimulating doses of the cholecystokinin secretagogue or its analog cerulein10; administration of almost lethal doses of L-arginine; or administration of a choline-deficient diet supplemented with ethionine11. Although these methods are easy to reproduce and result in pancreatic inflammation, they do not replicate the mechanisms that in theory trigger AP (i.e., the reflux of bile secretion into the pancreatic duct). The technique that addresses the biliary model is based on the retrograde infusion of bile acids into the pancreatic duct and requires well-trained researchers to carry out this protocol. Several studies have been published using this method in rats (apparently for technical reasons since these experiments involve surgical procedures)12,13. However, the approach in mice may offer more interesting outcomes in the study of inflammation3,14,15. In this study, we will show a checklist of the steps to be followed for the reproduction of severe acute pancreatitis by infusion of sodium taurocholate in C57BL/6 anesthetized mice.
For works that involve the need for experiments with antibodies and analysis of the gene and protein expression, the use of mice is preferable because of the greater arsenal of materials for these animals and the possibility of working with isogenic and knockout species, among others that can be used relevant to studies16. Mice C57BL/6 is an inbred strain of mice originally developed for the study of antitumor activity and immunology. This strain is increasingly being preferred by researchers for being isogenic, allowing for a greater reproducibility of results, which may imply the use of a smaller number of animals in an experiment and less variability of results between the same group17,18.
Perides et al. (2010)14 published a protocol for AP induction in mice by sodium taurocholate infusion. Here we update this model using a higher sodium taurocholate concentration (2.5%) in C57BL/6 mice, with a defined volume and speed of infusion (Figure 1). The maximal level of severity is reached within 12 h of induction in mice. The elevation of the concentration of IL-6 both in the serum and in the peritoneal cavity is correlated with the progression of AP. With practice, the total estimated time from the induction of anesthesia to the completion of the infusion, is 25 min per animal. It is essential that a trained researcher conducts this experiment. To ensure that the solution is properly injected into the common bile duct, perform several pilot training sessions using methylene blue instead of sodium taurocholate.